Trocar catheter assembly and related manufacturing method

The catheter assembly addresses needlestick risks and blood flow control issues by incorporating a locking device and valve opener mechanism, enhancing safety and functionality under high-pressure conditions.

JP7809159B2Active Publication Date: 2026-01-30B BRAUN MELSUNGEN AG
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
JP2024073667
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-12-16
Filing Date
2024-04-30
Publication Date
2026-01-30
Estimated Expiration
2039-12-17

AI Technical Summary

Technical Problem

Existing intravenous catheter assemblies pose risks of needlestick injuries during needle withdrawal and require precise finger pressure application to stop blood flow, while trocar catheter assemblies must withstand high pressures for diagnostic injections.

Method used

A catheter assembly with a locking device and valve opener mechanism that secures a valve within the catheter hub, using components like leaf springs or O-rings to apply a proximal force, enabling safe needle protection and fluid flow control.

Benefits of technology

The assembly reduces the risk of needlestick injuries and ensures reliable blood flow control, while maintaining structural integrity under high pressures.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007809159000001
    Figure 0007809159000001
  • Figure 0007809159000002
    Figure 0007809159000002
  • Figure 0007809159000003
    Figure 0007809159000003
Patent Text Reader

Abstract

To provide catheter assemblies in a peripheral vein, trocar catheter assemblies with a specific discussion of a luer actuation device, and related methods.SOLUTION: There is provided a needle device (100) having a component (124) that provides a function of fixing a valve (120) in a standard diameter sized catheter hub, the valve and / or the component provide or provides proximally directed axial force for returning a valve opener (122) from a distal position within the catheter hub to a proximal position within the catheter hub when a male luer is disconnected from the catheter hub. Various components can be located inside a single hub body catheter hub that can restrict a fluid flow, allow actuation to permit the fluid flow, prevent needlestick injuries, and achieve combinations thereof.SELECTED DRAWING: Figure 5
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] FIELD OF THE DISCLOSURE The present disclosure relates generally to peripheral intravenous catheter assemblies, trocar catheter assemblies with particular discussion regarding luer actuators, and related methods. [Background technology]

[0002] The insertion procedure for an intravenous (IV) catheter assembly involves four basic steps: (1) a healthcare professional inserts the needle and catheter together into a patient's vein; (2) after inserting the needle tip into the vein, the healthcare professional advances the catheter into the patient's vein by pushing the catheter with their fingers; (3) the healthcare professional grasps the hub end (opposite the tip) and removes the needle while applying pressure with their free hand to the patient's skin at the insertion site to stop blood flow through the catheter; (4) the healthcare professional then tapes the exposed end of the catheter (catheter hub) to the patient's skin and connects it to a source of fluid to be administered intravenously to the patient.

[0003] One problem is that immediately after withdrawing the needle from the patient's vein, medical personnel who may be involved in at least two emergency procedures at this time must deal with the task of placing the exposed needle tip in a nearby location and accomplishing the needle withdrawal. In this context, the exposed needle tip poses a risk of accidental needlestick injury, making medical personnel vulnerable to the transmission of various dangerous bloodborne pathogens, including AIDS and hepatitis.

[0004] Another problem is applying finger pressure in the correct location to stop blood flow through the catheter as and after the needle is removed, which in itself poses a risk of needlestick injury if the practitioner's elbow accidentally hits the needle as it is being removed or if the practitioner attempts to reinsert the needle into the catheter while applying finger pressure.

[0005] These trocar catheter assemblies are sometimes used in hospital radiology departments for high-pressure injections for diagnostic purposes. The assemblies must withstand pressures of 3 bar or more. This includes holding the septum in place so that it can be opened and closed multiple times, even after such high pressures are applied. Summary of the Invention

[0006] A needle device is disclosed having components that provide the function of securing a valve to a standard diameter size Luer taper catheter hub. The securing component can be referred to as a locking device and can provide a proximal axial force to return the valve opener from a distal position to a proximal position when the male Luer is disconnected from the catheter hub. Various components can be located inside the single-piece hub body catheter hub. The various components can include components that restrict fluid flow, enable actuation to allow fluid flow, prevent needle damage, and combinations thereof.

[0007] The locking device can include a structure having a surface defining a bore, and at least a portion of the valve opener is disposed in the bore. The portion of the valve opener located in the bore of the locking device can be so positioned in both the ready-to-use position and the actuated position.

[0008] The fixation device can secure a valve within the catheter hub. The valve can be a valve disc. In addition to securing the valve, the fixation device can optionally be configured to apply a proximal force to return a valve opener that has been advanced distally to open one or more valve flaps of the valve from a distal position to a proximal position.

[0009] The fixation device may incorporate one or more leaf springs, may itself be a coil spring such as a canted coil spring, may be an O-ring, or may apply a force against a flexible portion of the valve opener such that the flexible portion provides a proximal force to move the valve opener from a distal position to a proximal position.

[0010] The fixation device can have a body having an outer surface, an inner surface, a proximal end, and a distal end.

[0011] An aspect of the invention is directed to a catheter assembly comprising: a catheter tube having an inner lumen, a distal end opening, and a proximal end attached to a catheter hub, the catheter hub comprising a catheter body having an outer surface and an inner surface defining an internal cavity with at least one shoulder; a needle having a needle tip at its distal end and a proximal end attached to the needle hub, the needle protruding through the catheter hub and the catheter tube and having the needle tip protruding distally of the distal end opening in a ready-to-use position; a valve disposed in the internal cavity of the catheter hub, the valve body including at least one slit, a proximal surface, and a distal surface; and a valve body having a valve body and a valve member disposed in the internal cavity of the catheter hub, the valve body including at least one slit, a proximal surface, and a distal surface. the valve actuator is disposed in the sinus, the valve actuator having a nose section having a bore and a proximal section having at least one gap for fluid flow through or across it, and being slidable between a proximal position inside the internal cavity and a distal position when pushed by a male luer; a fixation device that contacts or is integral with the valve at a proximal surface of the valve body for retaining the valve within the internal cavity of the catheter hub, the fixation device comprising a retainer body having an inner surface forming the bore and including a fluid path, a distal end, and a proximal end; and a needle guard having a protective surface that is disposed on a side of the needle in a ready-to-use position and that is movable to a position distal to the needle tip in a protective position to cover the needle tip from inadvertent needlesticks.

[0012] The distal end of the retainer body can have an inner diameter (ID) in a first dimension and a proximal end having an ID in a second dimension that is larger than the first dimension.

[0013] The distal end of the retainer body can have an inner diameter (ID) in a first dimension and a proximal end having an ID in a second dimension that is smaller than the first dimension.

[0014] The fixation device may be a retainer, a retaining ring, a retaining skirt, an O-ring, or a canted coil spring.

[0015] A further aspect of the present invention is a catheter assembly comprising: a catheter tube having an inner lumen, a distal end opening, and a proximal end attached to a catheter hub, the catheter hub comprising a catheter body having an outer surface and an inner surface defining an internal cavity with at least one shoulder; a needle having a needle tip at its distal end and a proximal end attached to the needle hub, the needle protruding through the catheter hub and the catheter tube and having the needle tip protruding distally of the distal end opening in a ready-to-use position; a valve disposed in the internal cavity of the catheter hub, the valve body including at least one slit and at least two flaps, a proximal surface, and a distal surface; and a valve actuator disposed in the internal cavity of the catheter hub, the valve actuator having a nose section having a bore, at least one gap for fluid flow through or across the nose section. a valve actuator having a proximal section having a valve actuator slidable between a proximal position and a distal position inside an internal cavity when pushed by a medical instrument; a retainer body having an inner surface forming a bore and including a fluid path, a distal end, and a proximal end, wherein the distal end of the retainer body contacts or is integral with the valve at a proximal surface of the valve body to retain the valve within the internal cavity of the catheter hub, and the proximal end of the retainer body is located distal to at least one shoulder on the catheter body and is limited from proximal displacement by the at least one shoulder, or the retainer body has an interference fit with the catheter hub to retain the valve within the internal cavity of the catheter hub; and a needle guard having a protective surface disposed on a side of the needle in a ready-to-use position and movable to a position distal to the needle tip in a protective position to cover the needle tip from an inadvertent needlestick.

[0016] The nose section of the valve opener can have a radially continuous surface. The nose section can have a slip or a gap so that the body is not continuous around the entire circumference. The proximal section can be located proximal to the nose section. The proximal section of the valve actuator can have a gap or a fluid path. The proximal section can have two spaced apart plunger elements.

[0017] Another aspect of the present invention is a catheter assembly comprising: a catheter tube having an inner lumen, a distal end opening, and a proximal end attached to the distal end of a catheter hub, the catheter hub comprising a catheter body having an outer surface and an inner surface forming an internal cavity with at least one shoulder; a needle having a needle tip at its distal end and a proximal end attached to the needle hub, the needle protruding through the catheter hub and the catheter tube and having the needle tip protruding distally of the distal end opening in a ready-to-use position; and a valve having a disk-shaped valve body including at least one slit and at least two flaps, a proximal surface, and a distal surface, disposed in the internal cavity of the catheter hub. a valve actuator disposed in an internal cavity of the catheter hub, the valve actuator having a nose section with a bore and a proximal section with at least one gap for fluid flow through or across it, the valve actuator being slidable between a proximal position inside the internal cavity and a distal position when pushed by a medical instrument; a fixation device including a metallic retainer body having a fluid path, a distal end, and a proximal end, the distal end of the retainer body contacting a proximal surface of the disk-shaped valve body to hold the valve between the distal end of the catheter hub and the fixation device within the internal cavity of the catheter hub; and a needle guard having a protective surface disposed on a side of the needle in a ready-to-use position and movable to a position distal to the needle tip in a protective position to cover the needle tip from an inadvertent needlestick.

[0018] The nose section of the valve actuator can be a contoured nose section having a surface that compresses at least two flaps against the interior of the catheter hub, or at least deflects the valve flaps distally and axially compresses the valve against a shoulder of the catheter hub.

[0019] More generally, the nose sections of the valve actuators disclosed herein can deform the valve to impart stored energy to the valve. The nose sections of the valve actuators disclosed herein can deflect the valve or bias the valve to impart stored energy to the valve.

[0020] A still further aspect of the present invention is a catheter assembly comprising: a catheter tube having an inner lumen, a distal end opening, and a proximal end attached to a catheter hub, the catheter hub comprising a catheter body having an outer surface and an inner surface defining an internal cavity with at least one shoulder; a needle having a needle tip at its distal end and a proximal end attached to the needle hub, the needle protruding through the catheter hub and the catheter tube and having the needle tip protruding distally of the distal end opening in a ready-to-use position; and a catheter assembly having at least one slit, a proximal surface, and a distal surface disposed in the internal cavity of the catheter hub. a valve having a valve body including a surface; a valve actuator disposed in an interior cavity of the catheter hub, the valve actuator having a distal nose section with a bore and a proximal section having at least one gap for fluid flow through or across it, the valve actuator being slidable between a proximal position and a distal position inside the interior cavity when pushed by a male luer tip of a medical device; and a canted coil spring disposed on a side of a proximal surface of the valve, the canted coil spring including a plurality of coils configured to be compressed by the valve actuator when the valve actuator is pushed to the distal position by the male luer and to expand to return the valve actuator to the proximal position.

[0021] The catheter assembly may include a needle guard having a protective surface that is positioned on the side of the needle in the ready-to-use position and that can be moved to a position distal to the needle tip in the protective position to cover the needle tip from an inadvertent needle stick.

[0022] Another aspect of the present invention is a catheter assembly comprising: a catheter tube having an inner lumen, a distal end opening, and a proximal end attached to a catheter hub, the catheter hub comprising a catheter body having an outer surface and an inner surface defining an internal cavity with at least one shoulder; a needle having a needle tip at its distal end and a proximal end attached to the needle hub, the needle protruding through the catheter hub and the catheter tube and having the needle tip protruding distally of the distal end opening in a ready-to-use position; a valve disposed in the internal cavity of the catheter hub, the valve body including at least one slit and at least two flaps, a proximal surface, and a distal surface; and a valve actuator disposed in the internal cavity of the catheter hub. a valve actuator having a distal nose section with a bore, a proximal section with at least one gap for fluid flow through or across it, and slidable between a proximal position inside the internal cavity and a distal position when pushed by a medical instrument; and a retaining skirt section formed of the valve, having an outer surface directly facing the inner surface of the catheter hub and an inner surface directly facing the nose section of the valve actuator, wherein the retaining skirt section is sized and shaped to be compressed between the inner surface of the catheter hub and the nose section of the valve actuator when the valve actuator is pushed to the distal position by the male luer tip of the medical instrument, and to expand to return the valve actuator to the proximal position when the male luer tip of the medical instrument is disengaged.

[0023] The skirt section can be sized and shaped to be deformed or biased by the nose section of the valve actuator when the valve actuator is pushed to a distal position by the male Luer tip of the medical device, and the skirt section expands to return the valve actuator to a proximal position when the male Luer tip of the medical device is disconnected. The skirt section can be sized and shaped to change from a first size to a second size smaller than the first size by the nose section of the valve actuator when the valve actuator is pushed to a distal position by the male Luer tip of the medical device, and the skirt section expands to return the valve actuator to a proximal position when the male Luer tip of the medical device is disconnected. The changing size can be any dimension of the skirt section that undergoes a physical transformation.

[0024] The valve disc can have two or more valve flaps, such as three valve flaps, sized and shaped to be deformed, biased, or deflected by the nose section of the valve actuator when the valve actuator is pushed to a distal position by the male Luer tip of the medical instrument, and the two or more valve flaps expand or unbias the valve actuator to return to a proximal position when the male Luer tip of the medical instrument is disconnected. The valve flaps can be sized and shaped to change from a first size to a second size smaller than the first size by the nose section of the valve actuator when the valve actuator is pushed to a distal position by the male Luer tip of the medical instrument, and the valve flaps expand or bias the valve actuator to return to a proximal position when the male Luer tip of the medical instrument is disconnected. The changing size can be any dimension of the valve flap that undergoes physical deformation, such as being straight until bent and assuming a smaller physical profile.

[0025] A still further aspect of the present invention is a catheter assembly comprising: a catheter tube having an inner lumen, a distal end opening, and a proximal end attached to a catheter hub, the catheter hub comprising a catheter body having an outer surface and an inner surface forming an internal cavity with at least one shoulder; a needle having a needle tip at its distal end and a proximal end attached to the needle hub, the needle protruding through the catheter hub and the catheter tube, the needle having a needle tip protruding distally of the distal end opening in a ready-to-use position; and a valve having a disk-shaped valve body disposed in the internal cavity of the catheter hub. a valve having at least one slit, at least two flaps, a proximal surface, and a distal surface; a valve actuator disposed in an interior cavity of the catheter hub, the valve actuator having a nose section, a proximal section having at least one gap for fluid flow through or across it, and being slidable between proximal and distal positions inside the interior cavity when pushed by a medical instrument; and a fixation device having a metallic retainer body, the retainer body having a fluid path, a distal end, a proximal end, and one or more leaf springs configured to apply a proximally directed axial force vector to the nose section of the valve actuator.

[0026] The catheter body of the catheter hub according to the present invention can be made from a single hub body having an outer diameter surface that is substantially smaller than the luer thread.

[0027] The unitary hub body can have a distal end with a catheter tube extending therefrom and a proximal end with a female luer. The unitary hub body can be formed as a single piece.

[0028] A fingertip depression protrusion can be incorporated and can extend from the top of the catheter hub beyond the outer diameter of the luer thread.

[0029] Another feature of the present invention is a catheter assembly in which a proximal axial force is applied to the valve opener by the fixation device, the valve, or both the fixation device and the valve to move the valve opener from a distal position to a proximal position.

[0030] The present invention can include methods of making or using a catheter assembly in which a proximal axial force is applied to the valve opener by the fixation device, the valve, or both the fixation device and the valve to move the valve opener from a distal position to a proximal position.

[0031] The present invention may further include methods for making and using the catheter assemblies provided herein.

[0032] Yet another aspect of the present invention is a catheter assembly comprising: a needle attached to a needle hub; a catheter tube attached to the catheter hub; a valve and valve actuator disposed inside an interior of the catheter hub, the valve comprising a split disc valve portion; and a locking device holding the valve inside the interior, wherein the valve actuator is movable toward the valve to open the split disc valve portion in an open valve position and movable away from the valve to allow the split disc valve portion to return repeatedly to a closed valve position; and wherein the needle protrudes through the valve, valve actuator, catheter hub, and catheter tube in a ready-to-use position.

[0033] The fixation devices disclosed herein can be positioned proximally adjacent to or integral with the valve to retain the valve within the catheter hub.

[0034] The retaining ring or fastening device of the present invention may include one or more leaf springs.

[0035] The retaining ring or fastening device of the present invention may include a flange and two or more leaf springs extending from the flange.

[0036] At least one leaf spring of the fixation device can extend proximally from the inner diameter of the flange, proximally from a location radially outer than the inner diameter, or proximally from a location radially inner than the inner diameter.

[0037] The proximal end of the at least one leaf spring can be flared or bent radially outward away from a centerline extending longitudinally through the fixation device.

[0038] The catheter assembly can have a catheter hub including a wall having an outer surface and an inner surface forming a bore, and a luer thread or lug at the proximal luer opening.

[0039] The outer circumference of the catheter hub's outer surface can be smaller than the outer diameter of the luer thread or lug.

[0040] The valve actuators described herein can be movable into the valve when the male luer tip is connected to the catheter hub and movable away from the valve when the male luer tip is disconnected from the catheter hub. The valve actuator can be moved from a distal position to a proximal position by a force vector generated by the valve, a force vector generated by the fixation device, or by both the valve and the fixation device.

[0041] The valve is capable of undergoing at least three actuation cycles, each actuation cycle including movement of the valve opener towards the valve to deflect the valve flap and away from the valve as the valve closes.

[0042] A further aspect of the present invention is a catheter assembly comprising: a catheter tube having an inner lumen, a distal end opening, and a proximal end attached to a catheter hub, the catheter hub comprising a catheter body having an outer surface and an inner surface defining an internal cavity with at least one shoulder; a needle having a needle tip at its distal end and a proximal end attached to the needle hub, the needle protruding through the catheter hub and the catheter tube and having the needle tip protruding distally of the distal end opening in a ready-to-use position; a valve having a valve body, the valve body located in the internal cavity of the catheter hub and having at least one slit, a proximal surface, and a distal surface abutting a first shoulder on the distal surface of the valve; and a valve retainer for retaining the valve within the internal cavity of the catheter hub. the valve actuator comprises: a fixation device in abutting contact with the proximal surface of the body and the internal cavity of the catheter hub, the fixation device comprising an elastomeric material having elastic properties that store energy when deformed; and a valve actuator disposed in the internal cavity of the catheter hub, the valve actuator having a nose section with a bore for fluid flow and a proximal section having a structure with at least one void for fluid flow through or across it, the valve actuator being slidable between a proximal position and a distal position within the internal cavity when pushed by a male luer, the valve actuator having a protrusion for abutting against a second shoulder to limit proximal movement of the valve actuator, and the valve actuator having a transition section disposed proximal to the nose section and at least one actuation element disposed proximal to the transition section.

[0043] The fixation device can abut the interior cavity of the catheter hub by interference with the inner diameter of the catheter hub, without an internal shoulder to abut against.

[0044] The fixation device can abut against the interior cavity of the catheter hub by abutting against an internal shoulder.

[0045] The fixation device can be an O-ring that includes a circular cross-section, an elliptical cross-section, or a polygonal cross-section. A particular polygonal cross-section can include a square cross-section or a rectangular cross-section having four sides.

[0046] The valve actuator structure may include two spaced apart actuating elements.

[0047] A stabilizing element can connect two actuating elements to one another, forming an opening therethrough distal to the stabilizing element. In some examples, a second stabilizing element can connect two actuating elements to one another, forming a second opening therethrough.

[0048] The needle guard can be at least partially positioned within the through opening of the valve actuator. The needle guard can be at least partially positioned within the second through opening of the valve actuator.

[0049] The nose section of the valve opener or actuator can be moved away from the O-ring before advancing the valve actuator with the male luer tip.

[0050] The nose section of the valve opener or actuator can be spaced away from the fixation device before advancing the valve actuator with the male luer tip.

[0051] The valve may include a plurality of valve flaps, and the plurality of valve flaps and the securing device may have stored energy when deformed by the valve actuator.

[0052] The stored energy of both the multiple valve flaps and the locking device can exert a proximal force on the valve actuator to move the valve actuator from a distal position to a proximal position.

[0053] A further aspect of the present invention is a catheter assembly comprising: a catheter tube having an inner lumen, a distal end opening, and a proximal end attached to a catheter hub, the catheter hub comprising a catheter body having an outer surface and an inner surface forming an inner cavity; a needle having a needle tip at its distal end and a proximal end attached to the needle hub, the needle protruding through the catheter hub and the catheter tube and having the needle tip protruding distally of the distal end opening in a ready-to-use position; a valve having a valve body located in the inner cavity of the catheter hub and having at least one slit and at least two flaps, a proximal surface, and a distal surface abutting a first shoulder on the distal surface of the valve; and a valve disposed in the inner cavity of the catheter hub. a valve actuator having a nose section with a bore for fluid flow and a proximal section with a structure having at least one void for fluid flow through or across it, the valve actuator being slidable between a proximal position and a distal position within an internal cavity when pushed by a medical instrument; and a fixation device including a ring body having a flange having an outer diameter, an inner diameter, and a thickness between a proximal surface and a distal surface, the ring body having at least one leaf spring extending proximally and adjacent the inner diameter of the flange, the flange contacting the proximal surface of the valve and the internal cavity of the catheter hub, the leaf spring being spaced from the inner surface and the nose section at the proximal position of the valve actuator, the at least one leaf spring having a length, width, and thickness, the thickness of the spring being approximately equal to the thickness of the flange.

[0054] The securing device may be an eyelet with a flange and at least two leaf springs extending from the flange, or may be three, four, five, or more leaf springs.

[0055] The at least one leaf spring can extend proximally from an inner diameter of the flange of the eyelet, proximally from a location radially outer of the inner diameter, or proximally from a location radially inner of the inner diameter.

[0056] The flange of the fixation device can have an arcuate cross-section such that the distal surface has a convex surface and the proximal surface has a concave surface.

[0057] The fixation device can include at least one leaf spring extending proximate to an inner diameter of a flange having an arcuate cross section.

[0058] The fixation device can remain inside the internal cavity of the catheter hub by interference with the inner surface of the catheter hub. Optionally, the fixation device can abut an inner shoulder of the catheter hub so as to remain inside the catheter hub.

[0059] The flange and the leaf springs can be formed from the same metal sheet. The flange and the leaf springs can be integrally formed. The flange can have a thickness and each leaf spring can have a thickness, the thickness of the flange and the thickness of each leaf spring being the same or nearly the same within the thickness of the manufacturing tolerances of the metal sheet.

[0060] A needle guard is disposed between the two actuation elements of the valve actuator. The needle guard can have at least one arm and a proximal wall having a periphery that defines an opening.

[0061] The change in needle profile can engage the periphery of the proximal wall of the needle guard.

[0062] A pair of slits or notches may be located on either side of at least one leaf spring of the eyelet.

[0063] The notch may extend across the outer arc of the flange of the eyelet in at least two places.

[0064] The notch may be aligned along a different radius than the at least one leaf spring.

[0065] The fixation device may include three spaced apart leaf springs extending proximally adjacent the inner diameter of the flange.

[0066] The eyelet flange may have at least two notches in its outer diameter, with three spaced apart leaf springs, each notch extending across at least two points on the outer arc of the flange.

[0067] The length of the leaf spring provided with the locking device may be shorter than the length of the nose section, and the leaf spring may only contact the nose section when pressed by the valve actuator, and not contact any other part or parts of the valve actuator.

[0068] A still further aspect of the invention may include a catheter assembly comprising: a catheter tube having an inner lumen, a distal end opening, and a proximal end attached to a distal end of a catheter hub, the catheter hub comprising a catheter body having an outer surface and an inner surface forming an internal cavity with at least one shoulder; a needle having a needle tip at its distal end and a proximal end attached to a needle hub, the needle protruding through the catheter hub and the catheter tube and having the needle tip protruding distally of the distal end opening in a ready-to-use position; and a valve having a valve disc and a skirt section extending from the valve disc, the valve disc having at least one slit and at least two flaps, a proximal surface, and a distal surface, the skirt section having a wall having an outer surface and an inner surface forming a skirt interior, and a skirt proximal end surface, the valve having a first distal surface. a valve actuator disposed in the internal cavity of the catheter hub with a nose section contacting a proximal end face of the skirt and the skirt section contacting the internal cavity; and a valve actuator disposed in the internal cavity of the catheter hub, the valve actuator having a nose section having an actuating end at a distal-most end and a bore for fluid flow, two spaced-apart shoulders located proximal to the actuating end, each shoulder of the valve actuator having an abutment edge, and a proximal section having at least one gap for fluid flow through or across, the valve actuator being slidable between proximal and distal positions within the internal cavity when pushed by a medical instrument, the nose section being at least partially disposed within the skirt in the ready-to-use position, wherein the abutment edges of the two spaced-apart shoulders of the valve actuator are located proximal to a proximal end face of the skirt in the ready-to-use position to push against the skirt section when the valve actuator is advanced by the male luer tip.

[0069] A needle guard having a protective surface is positioned on the side of the needle in the ready-to-use position and is movable to a position distal to the needle tip in the protective position to shield the needle tip from an inadvertent needle stick.

[0070] The skirt section may have a generally cylindrical shape with a beveled cross-section, and the proximal end face may be located at the proximal end of the beveled cross-section.

[0071] The skirt section of the valve can abut a second shoulder inside the interior cavity of the catheter hub.

[0072] The wall of the skirt section may have a thickness, and the skirt proximal end face may be exposed radially inward of the second shoulder.

[0073] The nose section of the valve actuator can have a first slope extending into the transition section, and the transition section can have a second slope, the second slope and the first slope having different slope values.

[0074] The nose section of the valve actuator can have a first taper that extends into the transition section, and the transition section can have a constant diameter section with no taper.

[0075] The valve disc can have a first portion having a first thickness and a second portion having a second thickness, the first thickness being greater than the second thickness.

[0076] One or more slits for forming two or more valve flaps can be formed through the second portion of the valve disc having the second thickness.

[0077] Yet another aspect of the present invention is a catheter assembly comprising: a catheter tube having an inner lumen, a distal end opening, and a proximal end attached to a catheter hub, the catheter hub comprising a catheter body having an outer surface and an inner surface defining an internal cavity with at least one shoulder; a needle having a needle tip at its distal end and a proximal end attached to the needle hub, the needle protruding through the catheter hub and the catheter tube, the needle having a needle tip protruding distally of the distal end opening in a ready-to-use position; and a valve having a disk-shaped valve body disposed in the internal cavity of the catheter hub to provide at least one the valve having at least one slit and at least two flaps, a proximal surface, and a distal surface; a valve actuator disposed in an internal cavity of the catheter hub, the valve actuator having a nose section and a proximal section having at least one gap for fluid flow through or across it, the valve actuator being slidable between a proximal position inside the internal cavity and a distal position when pushed by a medical instrument; and a fixation device disposed proximal to the valve, the fixation device comprising a metal ring body having a fluid path, a distal end, a proximal end, and at least one leaf spring, the at least one leaf spring formed in the metal ring body and extending proximally inside the proximal curved lip.

[0078] The ring body of the fixation device can have a proximal edge with at least two cuts formed therethrough to form at least one leaf spring.

[0079] The fixation device may include three spaced apart leaf springs.

[0080] The at least one leaf spring may be hinged or pivotable about the metal ring body of the fixation device or flange.

[0081] The at least one leaf spring is separated from the metal ring body by at least one slit or notch.

[0082] The fixation device can have a proximal section spaced between two adjacent leaf springs, and the proximal section can have a width greater than the width of either of the leaf springs.

[0083] The at least one leaf spring can be spaced from the inner surface of the catheter hub when the fixation device is positioned inside the catheter hub to support or fix the valve.

[0084] The at least one leaf spring may be spaced from the nose section of the valve actuator at a proximal position of the valve actuator and may contact the nose section of the valve actuator at a distal position of the valve actuator.

[0085] There can be two or more leaf springs formed by cutting at least four notches or notches through the proximal edge of the ring body. When the proximal edge of the ring body is cut or trimmed, a proximal section can be formed at the proximal end of the ring body. The proximal section can be located between two adjacent leaf springs. The one or more proximal sections of the ring body allow the curved lip of the ring body to flex during installation of the fixation device into the catheter hub or upon contact with the nose section of the valve actuator.

[0086] The fixation device can embody an eyelet having a flange and two or more leaf springs extending from the flange, the flange having an outer diameter and an inner diameter, and at least one notch can be formed in the outer diameter, the notch extending through two spaced apart points along an arc of the outer diameter.

[0087] The fixation device can embody an eyelet having a flange and two or more leaf springs extending from the flange, the flange having an outer diameter and an inner diameter, and at least one notch formed in the inner diameter, the notch extending through two spaced apart points along an arc of the inner diameter, and the leaf springs can be positioned between the two spaced apart points along the arc of the inner diameter.

[0088] The catheter assemblies described herein may also be referred to as needle devices or trocar catheter assemblies. The device or assembly may include a catheter hub having a catheter tube, a needle hub with a needle attached thereto, and the needle protruding through the lumen of the catheter hub and the catheter tube.

[0089] The vent plug can be located at the proximal end of the needle hub. The plug can be attached to the proximal opening of the needle hub.

[0090] A still further aspect of the present invention is a catheter assembly comprising a catheter tube having an inner lumen, a distal end opening, and a proximal end attached to the distal end of a catheter hub, the catheter hub comprising a catheter body having an outer surface and an inner surface forming an internal cavity with at least one shoulder; a needle having a needle tip at its distal end and a proximal end attached to the needle hub, the needle capable of protruding through the catheter hub and the catheter tube, the needle tip protruding distally of the distal end opening in a ready-to-use position; a valve having a valve disc disposed in the internal cavity of the catheter hub, the valve disc having at least one slit and at least two flaps, a proximal surface, and a distal surface, the distal surface in contact with the at least one shoulder; a skirt section extending from the valve disc, the skirt section having a wall having an outer surface and an inner surface forming a skirt interior, and a skirt proximal end surface, the skirt section capable of contacting the internal surface of the catheter hub. Alternatively, the fixation device can be disposed proximal to the valve disc, and can include a metal ring body having a fluid path, a distal end, a proximal end, and at least one leaf spring having a free end extending proximally inward of the proximal end, and the fixation device secures the valve from proximal displacement. The valve actuator can be disposed in the internal cavity of the catheter hub, and can include a nose section at its distal end and a proximal section proximal to the nose section. The nose section includes a bore for fluid flow and an actuation end at the distal-most end of the nose section. The proximal section can have at least one void for fluid flow therethrough or across it. The valve actuator can be disposed proximal to the internal cavity and slidable to a distal position within the internal cavity when pressed by a medical instrument. When a skirt section is present, the nose section is at least partially disposed inside the skirt section in the ready-to-use position. Alternatively, when a fixation device is present, the nose section can be located inside the metal ring body in the ready-to-use position.When the skirt section is present, two spaced abutment surfaces are located proximal to the actuation end of the valve opener and proximal to the skirt proximal end face in the ready-to-use position, the abutment surfaces being sized and shaped to abut against the skirt proximal end face when the valve actuator is in the distal position, or when the locking device is present, at least one leaf spring is spaced from and biases against the nose section when the valve actuator is in the distal position.

[0091] The needle guard may be positioned to the side of the needle in the ready-to-use position and transition to a position distal to the needle tip in the protective position, providing a protective surface to shield the needle tip from an unintentional needle stick.

[0092] The skirt section may include a bevel-shaped cross-section, and the skirt proximal end surface may be located at a proximal end of the bevel-shaped cross-section.

[0093] The nose section of the valve actuator can have a first slope extending into the transition section, the transition section can have a second slope, and the second slope and the first slope can have different slope values.

[0094] The valve disc can have a first portion having a first thickness and a second portion having a second thickness, and the first thickness can be greater than the second thickness.

[0095] At least one slit can be formed through the second portion of the valve.

[0096] At least one stabilizing element can have a first end connected to a first plunger element of the valve actuator and a second end connected to a second plunger element of the valve actuator, and the stabilizing element can further have a distal edge and a proximal edge.

[0097] The distal end may have a tapered edge, which may originate closer to the outer surface than the inner surface.

[0098] The needle guard can include a proximal wall having a periphery that defines an opening, and at least one arm extending distally of the proximal wall, the at least one arm including an elongated arm portion, a distal wall, and an elbow disposed between the elongated arm portion and the distal wall, and a single bend can be disposed between the elongated arm portion and the distal wall to form a smooth or flat profile at the elbow where the needle guard meets the distal edge.

[0099] The catheter hub can include a side port having an elongate body with a bore, the elongate body can extend at an angle relative to the catheter body. A tube can be connected to the side port at a first end of the tube. A fluid connector can be connected to a second end of the tube. The fluid connector can be a needleless valve.

[0100] A grip paddle having a body can extend transversely of the axis defined by the needle.

[0101] The distal edge of the stabilizing element can include a tapered edge that begins near the outer surface of the stabilizing element and slopes toward the inner surface of the stabilizing element.

[0102] A needle guard with a single bend or a single change of direction in one or both arms of the needle guard may be particularly useful with a valve opener having a stabilizing element.A needle guard with a single bend or a single change of direction in one or both arms of the needle guard may be particularly useful with a valve opener having a stabilizing element with a distal edge having a tapered edge.The tapered edge and the single bend or change of direction can minimize catch or snag points between the needle guard and the valve opener during retraction of the needle guard after successful venipuncture.

[0103] The present invention further includes a method for manufacturing a catheter assembly. The method can include attaching a catheter tube having an inner lumen, a distal opening, and a proximal end to a distal end of a catheter hub, the catheter hub including a catheter body having an outer surface and an inner surface forming an internal cavity with at least one shoulder. The method can further include attaching a needle having a proximal end and a needle tip at the distal end to the needle hub, the needle protruding through the catheter hub and the catheter tube and having a needle tip protruding distally of the distal opening in a ready-to-use position. The method can further include disposing a valve having a valve disc in the internal cavity of the catheter hub, the valve disc having at least one slit and at least two flaps, a proximal surface, and a distal surface, the distal surface contacting the at least one shoulder. The method may further include extending a skirt section from the valve disc, the skirt section having a wall with an outer surface and an inner surface forming a skirt interior, and a skirt proximal end surface, the skirt section contacting the inner surface of the catheter hub; or may further include disposing a locking device within the internal cavity of the catheter hub and proximal to the valve disc, the locking device comprising a metal ring body having a fluid path, a distal end, a proximal end, and at least one leaf spring having a free end extending proximally inward of the proximal end, the locking device locking the valve from proximal displacement.The method may further include disposing a valve actuator within the internal cavity of the catheter hub, the valve actuator having a nose section at a distal end and a proximal section proximal to the nose section, the nose section having a bore for fluid flow and an actuation end at a distal-most end of the nose section, the proximal section having at least one void for fluid flow therethrough or across, the valve actuator having a proximal position within the internal cavity and being slidable to a distal position within the internal cavity when pushed by a medical instrument, and when a skirt section is present, the nose section is slidable to a distal position within the skirt within the ready-to-use position. The nose section is at least partially disposed inside, or if a locking device is present, the nose section is disposed inside the interior of the metal ring body in the ready-to-use position, and if a skirt section is present, two spaced abutment surfaces are disposed proximal to the actuation end of the valve opener in the ready-to-use position and proximal to the skirt proximal end surface, the abutment surfaces being sized and shaped to abut against the skirt proximal end surface when the valve actuator is in the distal position, or if a locking device is present, at least one leaf spring is spaced from the nose section and biases against the nose section when the valve actuator is in the distal position.

[0104] The needle bevel of the needle tip can protrude distally from the distal opening of the catheter tube or the catheter tube opening in the primed position. The primed position can be a position where the assembly or device can be used to perform an injection or puncture. The needle hub can be coupled to the catheter hub at the proximal opening of the catheter hub, which can have an internally threaded luer or luer slip.

[0105] The catheter hub may incorporate one or more surface features, such as a push tab and ribs for pushing the catheter into a patient's vein and over the needle. The needle hub may similarly incorporate surface features for a more secure grip when puncturing the vein and withdrawing the needle from the catheter. Unless otherwise indicated, the various components of the catheter device or assembly may be fabricated from conventional materials using conventional techniques.

[0106] In an example, a pair of wings can be incorporated into the body of the catheter hub, each extending laterally of the longitudinal axis of the catheter hub in opposite directions at the bottom of the catheter hub, which can be used by the practitioner, for example, with adhesive tape or an adhesive bandage, to secure the catheter hub to the patient after successful venipuncture.

[0107] Valves and valve openers can be incorporated into the catheter hub to control fluid flow through the catheter hub, for example to control infusion or aspiration through the catheter hub. A needle guard or tip protector, which can have a surface or wall to prevent inadvertent contact with the needle tip when the needle is removed from the catheter tube and catheter hub after successful venipuncture, can be incorporated into the catheter device or assembly.

[0108] A needle guard or tip protector can embody a structure having one or more components to prevent inadvertent contact with the needle tip. For example, a needle guard can be attached to the needle shaft. The needle guard may have a structure or wall that extends from the side of the needle to a position proximal to the needle tip and moves to a position distal to the needle tip to cover or shield the needle tip from inadvertent contact. In an example, the needle guard may be one of the types described in U.S. Pat. No. 10,166,370.

[0109] The catheter hub has a body with an exterior surface and an interior surface that defines an interior cavity. One or more shoulders or lips may be incorporated into the interior of the hub and can be used to mount a valve opener, a valve, and / or a needle guard in a ready-to-use position. The needle guard can be positioned inside the catheter hub by a nose section of the needle hub that can protrude into the proximal opening of the catheter hub.

[0110] The needle assembly or catheter assembly can include a catheter hub including an interior having a valve, a valve opener, and a needle guard disposed therein in a ready-to-use position. In some instances, the needle guard is optional and can be omitted. In other instances, the needle guard can be positioned substantially outside the catheter hub. For example, the fingers or a portion of the fingers of the needle guard can be positioned inside the catheter hub, while the remaining structure of the needle guard can be positioned outside the catheter hub.

[0111] The catheter device or assembly of the present invention can include a device or structure for securing or retaining the valve inside the catheter hub, which can be generally referred to as a securement device, securement ring, or securement element. The securement device, ring, or element can have structures embodying a retainer, a retaining ring, a retaining skirt, an O-ring, among others, of various possible cross sections such as circular, oval, square, rectangular, or a canted coil spring.

[0112] The locking device may be formed separately from the valve or may be part of the valve, such as being used with, integrated with, or integrally formed with the valve. Unless the context dictates otherwise, the term locking device can refer to any of the structures described above and their equivalents for securing the valve inside the catheter hub, and can optionally include features for cooperating with or generating a force vector to return the valve opener from a distal position to a proximal position. In an example, the locking device is positioned in line with the valve, valve opener, and needle guard.

[0113] In certain instances, the fixation device has a bore or opening for receiving a needle and contacts both the valve and the interior of the catheter hub to limit proximal movement of the internal interior valve, to assist in returning the valve opener from a distal position to a proximal position, or for both purposes as described further below. The valve opener, or a portion of the valve opener, can be positioned inside the bore of the fixation device in both the ready-to-use position of the catheter assembly and in a use position, such as after successful venipuncture, as described further below.

[0114] The needle guard can include a metal body having spring or resilient properties, a proximal wall, and at least one or two arms extending distally of the proximal wall. A contour change can be formed in the needle shaft proximal and near the needle tip and can engage a periphery forming an opening in the proximal wall to limit distal movement of the needle guard off the needle, but allow the tip to enter the needle guard. The contour change can include a crimp, stack of material, sleeve, or any other increase in diameter that would be larger than the opening in the proximal wall.

[0115] The valve, valve opener or valve actuator, locking device, and needle guard can be sized, shaped, or otherwise configured to be housed within the catheter hub, which can have a one-piece hub body, such as an integrally formed, unitary hub body, having a proximal opening with a female luer and a distal end with a catheter tube extending therefrom. The open proximal end can optionally include external threads or lugs. In other examples, the catheter hub can be made from a multi-part hub body. For example, the catheter hub can have a first hub body attached, such as by bonding or welding, to a second hub body to form the catheter hub body.

[0116] In an example, the valve actuator may include a nose section at the distal end of the actuator body. The nose section may be an elongated structure, generally cylindrical, or may have a draft or taper terminating in an actuation end for pushing into the valve to open the slit in the valve, as described further below. The actuation end of the nose section may have a blunt distal end face or may have a sharp edge. A flow path may extend through the nose section for fluid flow. The nose section may have a wall surface with a continuous circumferential or continuous peripheral section that forms a lumen or flow path. The wall of the nose section may be without a void or slit, such as a cylinder with a continuous wall. The nose section may form a bore.

[0117] The wall of the nose section may be continuous. However, one or more through-holes may be incorporated into the nose section to allow fluid to flow through or across it, such as for flushing. The bore of the nose section may have a constant bore diameter or may vary with the taper of the nose section. In some examples, a plurality of spaced slits and / or openings may be provided in the nose section, such as through the wall of the nose section, to allow flow or fluid egress.

[0118] The two actuation or plunger elements can extend proximally from the nose section. For example, the two plunger elements can be integrally formed with the nose section and can extend proximally from the nose section. A gap or space can be provided between the two plunger elements, which can form a retention space.

[0119] A needle guard or tip protector can be disposed within the retention space or between the two plunger elements. In an example, the two plunger elements can each include at least two longitudinal edges, which can be spaced apart from one another. The longitudinal edges of the plunger elements can be aligned with the longitudinal axis of the valve opener. A gap or space can be provided between the two plunger elements to serve as a flow path for fluid to flow through or across as it passes through the catheter hub.

[0120] In other examples, there can be two or more voids or channels formed by the valve opener for fluid flow. In yet other examples, the two plunger elements can be connected to each other by two bridges such that the proximal end of the valve opener is a continuous wall structure formed by portions of the two plunger elements and the two bridges. In some examples, a single plunger element is used with the valve opener.

[0121] In examples, a protrusion can extend outward from an outer surface of one or both plunger elements. A protrusion can extend from the outer surface of each plunger element. Each protrusion can resemble a tab with a generally flat edge for abutting a shoulder or lip formed inside the catheter hub. The tab surface and protrusion orientation can allow the valve actuator to be inserted inside and installed within the catheter hub, as described further below. The protrusion can be sized and shaped to abut or contact a shoulder in the catheter hub to limit proximal movement of the valve opener or actuator.

[0122] In examples, a transition section extends from the nose section and widens as the body of the valve opener extends axially in the proximal direction. Two actuating elements can extend from the transition section. Alternatively, the two actuating elements can extend from the nose section without a transition section. Some embodiments can utilize other shapes for the nose section, such as a cuboid, a rectangle, a cone, a pyramid, a chamfered shape, etc.

[0123] In examples, the valve actuator or valve opener has a longitudinal axis and one or more actuating elements extend axially or parallel to the longitudinal axis. In certain examples, two actuating elements are diametrically opposed to one another along the longitudinal axis. In other examples, the two actuating elements can diverge from one another as they extend proximally. In yet other examples, the two actuating elements can converge toward one another as they extend proximally.

[0124] The spacing between the two plunger elements can be linear, converging, or diverging, forming a retention space therebetween. As shown, the two actuating elements form an outer diameter that is larger than the diameter of the nose section. For example, the diameter formed by the two actuator elements at the proximal end can be larger than the diameter formed by any portion of the nose section except for the protrusion. In some examples, the diameter formed by the two actuator elements is only larger than the actuating end of the nose section.

[0125] In some examples, the nose section of the valve actuator is provided with a shaped contour having distinct lines or curves, such as by forming a recess in the nose section with the distinct contour lines or curves. One or more surfaces of the contoured nose section can then be used to compress the valve, causing the valve to rebound and urge the contoured nose section proximally, returning the valve actuator to a proximal position.

[0126] In some examples, the valve actuator or opener is made from a rigid material such as plastic or metal, and the nose section of the valve actuator incorporates a more flexible section, also understood to be more flexible than the rest of the valve actuator. For example, the flexible section can be a strip or band of material that is softer than the base material used to make the valve actuator. The flexible section can be added to the valve actuator, such as an elastomeric band, or can be molded with the valve actuator. The soft, flexible section can aid in returning the valve actuator from a distal position to a proximal position.

[0127] In examples, the actuation element is flexible and deflectable so that it can break or bend when pressed by a male luer tip, such as a syringe tip or male luer tip adapter. The actuation element can be deflectable by selecting a material with the required elastic properties. In other examples, the actuation element can be deflectable by incorporating one or more weakened sections, for example, by incorporating structurally thin sections, by incorporating notches, by using a small cross-section compared to other sections of the same elongated actuation element, or a combination thereof. Alternatively, the actuation element can be flexible and deflectable by selecting a material with the required elastic properties and by incorporating one or more weakened sections.

[0128] In yet other examples, each actuation element has two or more different cross-sectional profiles or configurations along its length. For example, an elongated plunger element can have a square profile positioned adjacent to a crescent-shaped profile.

[0129] In examples, the actuation element is rigid and not deflectable or deformable when subjected to a load, such as when pushed by a male luer tip. Additionally, one or more stabilizing elements can be incorporated to increase the rigidity of the two actuation elements. Each of the two actuator elements can include a cross-sectional profile at least at a proximal end that overlaps the push end of the male tip, such that the male tip can push the valve actuator into the valve, as described further below. The stabilizing element can be located distal to the proximal edge of the actuator element or have a proximal edge that is flush with the proximal edge of the actuator element.

[0130] The nose section of the valve actuator can be configured to engage the valve to open the valve flaps and the slits formed therebetween when an axial force is applied by the male tip to the actuator element, such as during insertion of a male luer connector of an IV drip line or administration set, moving the valve actuator into the valve and deflecting the valve flaps.

[0131] Generally, the nose section of a valve opener is rigid relative to the more flexible valve, allowing the nose section, more specifically the actuating end of the nose section, to actuate the valve, such as by deflecting one or more flaps and opening one or more slits in the valve. The nose section can be made of an incompressible material, such as a metal material, a rigid plastic, or a hard elastomer, to press the valve open. However, the nose section can also include a more flexible section. For example, an elastic band, strip, or section can be incorporated into or with the nose section.

[0132] A pair of opposing bands or stabilizers can be incorporated that connect the two actuating elements at a location along the length of the actuating elements between the nose section and the proximal ends of the actuating elements. In some examples, the stabilizers can be positioned at the proximal ends of the two actuating elements such that the proximal edges of the stabilizers are approximately flush with the proximal end faces of the actuating elements. The two stabilizer elements or bands can be referred to in elevation as a first or upper stabilizer element and a second or lower stabilizer element.

[0133] In one embodiment, the stabilizer or stabilizer element has an arcuate wall, forming an arc that generally follows the interior contour of the catheter hub and connects one actuating element to the other. The stabilizer or stabilizer element can form a substantially continuous cylindrical portion on the body of the valve actuator, the body being formed by the two stabilizer elements and the two actuating elements and spaced from the nose section of the valve actuator. In other words, the valve actuator can be elongated and have radially continuous sections and sections with relief or through passages through the walls of the actuator that are not radially continuous.

[0134] In an example, the stabilizer forms a circumferentially or radially continuous body section of the valve actuator that is spaced apart from a circumferentially or radially continuous body section of the nose section. Two stabilizers or stabilizer elements, also called bands, can be joined together with two plunger elements to form a ring structure.

[0135] Optionally, the two stabilizers may be slightly axially offset and angled from one another along the length of the valve actuator. In some embodiments, there may be one, three, or a different number of actuating elements or stabilizers. For example, there may be two actuating elements, but only one stabilizer or band. In an example, the stabilizer or stabilizer element and valve actuator with the protrusion are fabricated from plastic, such as by plastic injection molding.

[0136] The stabilizer can help the valve actuator remain centered within the catheter hub during movement of the actuator or actuator element, such as when the nose section is pushed by the male luer tip to open a slit in the valve. By remaining centered, the nose section can better align with the valve disc, such as with a slit in the valve disc, allowing for smooth actuation of the valve. The stabilizer can also provide engagement with the interior of the catheter hub via friction to prevent the actuator from sliding proximally after removal of the male luer tip. However, as noted above, a protrusion can be incorporated with the valve actuator to cooperate with an internal shoulder or lip in the catheter hub to retain the valve actuator within the catheter hub.

[0137] In one embodiment, the nose section is configured to remain engaged with the valve disc after actuation of the valve and removal of the male luer tip. For example, the nose section can wedged between one or more slits in the valve disc and be held there by friction. The valve actuator, such as the nose section, can be provided with surface features, such as indentations, grooves, or barbs, to maintain engagement between the actuator and the valve after actuation and removal of the male luer tip.

[0138] Preferably, the valve actuator does not engage the valve after removal of the male luer tip. Preferably, the valve actuator is movable from a distal position pressed against the valve to a proximal position spaced from or only minimally contacting the valve but allowing the valve flaps to return or close the slit.

[0139] When the valve opener returns to the proximal position after removal of the male Luer tip, the valve can close to prevent or restrict fluid flow across the valve. The valve can be reopened by distally displacing the valve opener with a male medical device, such as a syringe tip or administration set tip. The valve opener can move to a distal position within the valve to open two or more valve flaps, such as when pressed by the male Luer tip, and return to a proximal position when the male Luer tip is removed, allowing the valve flaps to relax or close at the slits, thereby allowing the valve to undergo multiple actuation cycles. In examples, the valve can undergo two or more actuation cycles. For example, the valve can undergo at least two actuation cycles, at least three actuation cycles, at least four actuation cycles, at least five actuation cycles, or more. Each actuation cycle can include movement of the valve actuator into or to a distal position to deflect the valve flaps, and movement of the valve actuator away from the valve or to a proximal position.

[0140] At least one relief passage, opening, or through-passage can be provided between the transition section of the valve actuator and the proximal end of the valve actuator. The transition section can be understood as the section proximal to the actuation distal end, or from the nose section to the two stabilizers. In an example, two relief passages or through-passages are incorporated to provide clearance so that the interior or central portion of the valve actuator can be in open communication with the inner surface of the catheter hub. In other words, between the continuous section of the nose section and the continuous peripheral section formed by the two stabilizers and plunger element, referred to as the stabilizer ring, there are one or two relief passages, through-passages, or openings for fluid flow, such as for flushing. The through-passages or relief passages can also be utilized to retain a needle guard, as discussed further below and when incorporated.

[0141] The stabilizing ring of the valve actuator can have an inner diameter smaller than the diameter formed by the diagonal sections or elbows of the two arms of the needle guard when the two arms are urged outward by the sides of the needle shaft in the ready-to-use position, so that during installation of the needle guard into the retention space of the valve actuator, the diagonal sections or elbows of the needle guard can deflect past the stabilizing ring and into the open area formed by the relief passage or through opening.

[0142] When the tip protector is positioned between the two plunger elements, the two distal walls of the needle guard, more specifically the two diagonal sections or elbows of the needle guard, are positioned within the relief passages and can engage guard engagement surfaces on the inner surface of the catheter hub. This allows the needle guard to protrude from the retention space of the valve actuator through the two relief passages and engage the guard engagement surfaces on the catheter hub. Thus, in the ready-to-use position and during needle retraction after successful venipuncture, the needle guard can be retained within the catheter hub until the tip of the needle moves proximal to the two distal walls of the needle guard, at which point the needle guard can close over the trocar tip and the distal end of the needle guard, with the stabilizing ring, has a diameter smaller than the inner diameter of the valve opener and can be removed along with the needle.

[0143] An undercut or recessed section can be provided in the interior cavity of the catheter hub to accommodate the two diagonal sections or elbows of the needle guard. Thus, the needle guard can be prevented from sliding proximally during needle retraction after successful venipuncture by a shoulder in the recessed section or by some other surface feature on the interior of the catheter hub, such as a guard-engaging surface on the interior of the catheter hub. Optionally or alternatively, the distal edge of one or both stabilizers can provide a restraining surface to prevent premature activation of the needle guard during needle retraction before the needle tip has moved proximal to the two distal walls of the needle guard. In addition to a distal edge, each stabilizer can have a proximal edge.

[0144] If the needle guard is retained by the distal edges of one or both of the stabilizers, the inner surface of the catheter hub may omit the engagement feature or features for accommodating the elbow of the needle guard. In an example, the needle guard may engage the distal edges of one or both of the two stabilizers and may engage with one or more engagement features formed on the inside of the catheter hub, such as a groove, lip, or shoulder.

[0145] In some examples, one or both stabilizer elements can have a slit or channel, thus dividing the arcuate stabilizing or stabilizer element into two segments. Even when one or both stabilizer elements have a slit, the stabilizing ring, which can be a non-continuous ring, as well as a ring with one or more slots formed therethrough, can still provide a retention structure that interacts with the two elbows to prevent premature activation of the needle guard during needle retraction before the needle tip has moved proximal to the two distal walls.

[0146] The retention surfaces of the stabilizer element, such as the distal edges, may be referred to as restriction points, choke gaps, or choke points because they provide a rigid structure that prevents the needle guard from moving proximally unless or until the needle guard is first radially actuated to collapse and reduce its radial profile, and then slide proximally to the choke point. In an example, a choke point may restrict one or two elbows of the needle guard from moving proximally until the elbows deflect to reduce the radial profile of the needle guard. In an example, once the radial profile of the needle guard is reduced, the needle guard may slide through a bore formed by the stabilization ring from a position distal to the stabilization ring to a position proximal to the stabilization ring.

[0147] The valve opener can be made from a metal or plastic material. If made from a metal material, the valve opener can be formed by bending or deep drawing, and the arc-shaped cross-section of the actuating element can provide additional rigidity when pressed by a male luer. Each actuating element can include at least two longitudinal edges, and ribs can be provided along one or both of the longitudinal edges to further add structural rigidity. One or more gaps can be provided between any two actuating elements. The gaps can provide space for fluid flow through the gap or space, such as during blood flushing or IV infusion. The gaps between the actuating elements can form a retention space for accommodating a tip protector.

[0148] In some embodiments, as described further below, most or most if not all of the tip protector fits within the retention space formed by the body of the actuator between the two plunger elements in the ready-to-use position. This configuration allows for a more compact catheter hub, as less longitudinal space is required within the hub to fit both the valve actuator and tip protector longitudinally in-line, or if the two only partially overlap axially.

[0149] Aspects of the present invention, including the use of the fixation devices and various other components described above, can be used with or on commercially available needle gauges, such as 24 gauge to 14 gauge needles.

[0150] If the tip protector only engages with the distal edge of the relief passage or through passage in the actuator, no deformation or change in diameter is required on the inner wall of the catheter hub, and the tip protector can be positioned further proximally in the female Luer taper section while still complying with the International Luer standard for conical fittings, further shortening the overall length of the catheter hub.

[0151] A bulb usable in the present invention can have a first portion having a first thickness and a second portion having a second thickness, measured perpendicular to an inner plane passing through a diameter of the bulb, that is less than the first thickness. The second portion having the second thickness can have a substantially constant thickness, but can optionally include a thickness that varies along a cross section of the bulb.

[0152] In examples, the second portion is formed by recessing the distal surface of the bulb, the proximal surface of the bulb, or both surfaces, while the first portion retains substantially the full width or thickness of the bulb between the proximal and distal surfaces. In examples, the recess in the second portion can embody an undercut formed in the bulb.

[0153] The surface appearance between the first and second portions may resemble a three-leaf clover. The three-leaf clover may be present on the distal surface, the proximal surface, or both surfaces of the valve. In other examples, the appearance of the proximal and / or distal surfaces may have a variety of contours, just as a three-leaf clover may have a variety of curves, lines, and edge contours.

[0154] In some examples, slits are formed through the thinner second portion of the valve to form valve flaps between adjacent valve slits. In some examples, there can be two or more slits forming one or more valve flaps. For example, the first and second portions of the valve can form a four-leaf clover, which can have four slits and four valve flaps. Preferably, the valve can have three slits and three valve flaps. The slits begin at approximately the center of the valve and extend radially outward toward the outer periphery of the valve, but can extend short of the outer periphery. The length of each slit can be varied to form different sized valve flaps. The length of the slits can be selected to provide desired valve flaps and valve flap deflections when pressed by the nose section of the valve opener, such as when pressed by the actuating distal end of the valve opener.

[0155] The valve may be integrally formed from a single material. Alternatively, the valve may be formed from different materials in various portions of the valve, such as for increased stiffness or flexibility. The valve may be made from a medical-grade elastomer or thermoplastic elastomer (TPE). Embodiments of the valve may be made according to the example valve disclosed in PCT Application No. PCT / EP2017 / 070934, published as PCT Publication WO2018 / 033626(A1), the contents of which are expressly incorporated herein by reference as if fully set forth.

[0156] The locking device can be a retaining ring, which can have an annular wall structure with an outer surface and an inner surface that defines a bore. In some embodiments, the locking device for securing the valve inside the catheter hub can be a retaining skirt, an O-ring, or a spring. The valve, valve opener or valve actuator, and locking device can vary in shape, style, and characteristics, but can perform the described functions described herein in other manners.

[0157] The valve can be a valve disc as described above having at least one slit forming at least two flaps. The valve disc can have three or more slits or split disc valve portions forming three or more flaps, and the surface of the disc can have surface characteristics and thickness that vary along the cross section of the valve disc. In another example, the valve can have a valve disc and a skirt extending proximally from the proximal surface of the valve disc.

[0158] The catheter hubs provided herein can have the valve, valve opener, locking device, and needle guard disposed inside the internal cavity of the hub body, which can be a single hub body having a distal end with a catheter tube extending therefrom and a proximal opening with a female luer. The valve can be disposed distal to the locking device, a portion of the valve opener can be disposed within the bore of the locking device, and the needle guard can be disposed within the valve opener's retention space. In other examples, the needle guard can be omitted or disposed outside the retention space, such as in a housing that is different or separable from the catheter hub.

[0159] In an example, the interior of the catheter hub is provided with one or more shoulders or ledges, which can be understood as structural lips or stops formed on the inner wall. The one or more shoulders can provide an engagement or stop point for a component disposed within the internal cavity to prevent the component from moving or falling out of the interior of the catheter hub. As shown, a valve can be disposed within the annular groove and can abut against one of the shoulders to prevent proximal displacement of the valve. The valve can also abut against a shoulder of the catheter hub distal to the valve to prevent distal displacement of the valve's periphery.

[0160] A fixation device or retaining ring in the form of an annular ring can be positioned adjacent to the valve, with the proximal end of the fixation device abutting another shoulder inside the internal cavity of the catheter hub to prevent or limit proximal displacement of the fixation device.

[0161] In some examples, the fixation device has a beveled, triangular, or sloped cross-section with the higher beveled portion distally and tapering as it extends proximally. The fixation device may be made from a medical-grade plastic material, such as by plastic injection. In other examples, the fixation device may be made from a metal material, such as by stamping and then forging, pressing, or machining. In other examples, the fixation device may be made from an elastomeric material, such as an O-ring, to provide a proximal force to the valve opener when compressed between the nose section of the valve opener and the inner wall of the distal catheter hub. The O-ring can be deflected or deformed by the valve opener to create stored energy in the O-ring, which can then exert a proximal force on the valve opener when the stored energy is released.

[0162] The distal end of the fixation device, the higher portion of the bevel, can abut the proximal surface of the valve, and the proximal end of the fixation device, the narrower portion of the bevel, can abut one of the shoulders of the internal cavity. This arrangement of the fixation device can help retain the valve from proximal displacement within the catheter hub. In some instances, the valve can be secured or supported inside the catheter hub by the fixation device without relying on a separate shoulder abutting the proximal edge of the valve.

[0163] In examples, the fixation device can have slight interference when it first enters the proximal open end of the catheter hub and can have a sized fit or slight interference fit with the catheter hub in the final installed position shown. In yet other examples, the fixation device can be retained inside the catheter hub and can secure the valve from proximal displacement with only an interference fit with the catheter hub, without a separate shoulder abutting the proximal end of the fixation device.

[0164] The fixation device can be a retaining ring having a generally triangular cross section. In other examples, the cross section can have a different shape, such as a complex shape.

[0165] In addition to securing the valve within the catheter hub, the retaining ring or locking device can also function as a return mechanism to assist the valve opener in returning or moving from a distal position to a proximal position. For example, when the valve opener is advanced by the male luer tip to open the slit in the valve, the retaining ring can assist in returning the valve opener to the proximal position after the male luer tip is removed from the proximal opening of the catheter hub.

[0166] In some instances, the locking device simply locks the valve from proximal movement while the resilience of the valve returns the valve opener from the distal position to the proximal position after the male luer tip is removed from the proximal opening of the catheter hub.

[0167] In some examples, the cross section of the fixation device can be selected to be a shape other than triangular. In other examples, the shaped cross section of the retaining ring can be formed as a retaining skirt and be part of the valve. For example, the valve can be formed with both the valve disc and the retaining skirt, such as by being integral or integrally formed therewith.

[0168] In the illustrated example, the length of the valve opener is selected so that the actuating end at the distal end of the nose section just contacts the valve disc of the valve and the proximal edges of the two plunger elements just contact the nose section of the needle hub in the ready-to-use position. In other examples, the actuating end may be slightly spaced from or pressed slightly against the valve disc, but not substantially deflect the valve flaps to allow them to close the valve slit.

[0169] In an example, the retention space of the valve opener can be sized and shaped to accommodate a needle guard. The needle guard can be disposed between two plunger elements of the valve opener. The needle guard can have a proximal wall and two arms disposed distally of the proximal wall, and can be disposed within the retention space of the valve opener with two elbows of the needle guard disposed distally of the two stabilizing elements. Thus, when the needle is retracted proximally, the two elbows are stopped from moving proximally beyond the two distal edges of the two stabilizing elements, which can act as choke points.

[0170] The radial dimension of the needle guard at the two elbows can be larger than the inner dimension of the stabilization ring, and therefore can be physically stopped by the distal edges of the two stabilizer elements. After successful venipuncture, the needle can be removed from the catheter tube and catheter hub, and the needle tip moves proximal to the two distal walls of the needle guard, which then allows the two arms of the needle guard to move inward or fold, reducing the radial dimension of the two elbows. At approximately the same time, the change in profile near the needle tip can abut against the periphery that forms the opening in the proximal wall of the needle guard, and further retraction of the needle causes the needle guard to be removed along with the needle.

[0171] In an example, when the needle guard is located inside the catheter hub, the interior of the catheter hub can be enlarged near the two elbows. For example, the inner diameter of the catheter hub at the two elbows can be larger than the inner diameter of the catheter hub at the proximal wall of the catheter hub. This space can be incorporated to provide an escape path or additional space for the needle guard in the standby position. That is, when an escape path is incorporated, it provides space for the two arms so that they are not compressed or biased inward to the same extent at the two elbows in the ready-to-use position compared to when the escape path is not provided. This can reduce drag between the needle shaft and the two curved ends at the ends of the two distal walls during needle retraction after needle insertion.

[0172] The valve opener is retained within the internal cavity of the catheter hub and displacement from the proximal opening can be limited by providing at least one side protrusion on the valve opener to interact with one of the shoulders in the internal cavity. The cross-sectional dimension of the valve opener at the at least one protrusion can be greater than the cross-sectional dimension at the shoulder of the catheter hub, thereby presenting a physical stop to prevent proximal displacement of the valve opener from the proximal opening of the catheter hub.

[0173] If the valve opener moves proximally, such as by the elbow of the needle guard pressing proximally against the distal edges of the two stabilizing elements during needle retraction but before the needle tip moves proximally of the two distal walls, the protrusion can abut one of the shoulders on the catheter hub, thereby limiting the overall proximal movement. In an example, the valve opener can be provided with two protrusions, one on each actuation element, to interact with the shoulders, which can be annular in configuration.

[0174] Following needle removal, the multiple valve flaps can recoil or return to a relaxed (loose) state, closing the slit and restricting proximal and distal flow through the valve. The actuating end of the valve actuator nose section can be located within the bore formed by the locking device prior to actuation, but spaced apart from or not in contact with the locking device. The tapered surface of the nose section can also be spaced apart from the locking device. This space or void can allow the valve actuating element to move forward in the distal direction when pushed by the male luer tip, before striking or contacting the locking device.

[0175] In some instances, the male luer tip abuts the female luer of the catheter hub, stopping further distal advancement of the male luer tip into the catheter hub before the nose section of the valve actuator contacts or presses against the inside of the fixation device.

[0176] The actuation tip of the valve actuator can contact the proximal surface of the valve after removal of the needle. In other examples, the actuation tip can be slightly spaced from the proximal surface of the valve after removal of the needle.

[0177] As shown, the nose section of the valve opener can have a proximally increasing taper that can be spaced apart from the tapered surface of the beveled section of the locking device. The size and shape of the nose section can be arranged to contact or space apart from the beveled section of the locking device. Alternatively or additionally, the size and shape of the locking device can be configured to contact the nose section of the valve actuator as the valve actuator advances into the valve and deflects the valve flap.

[0178] In examples, the nose section may incorporate an elastic section or band, such as an elastic band, strip, or strip, that can create a slight interference when the valve opener advances distally to open the valve and the nose section abuts the fixation device.

[0179] If the longitudinal axis of the catheter hub is considered the X-axis and the Y-axis is orthogonal to the X-axis, then the shape of the nose section can be selected to deflect the valve flap distally and generate a force vector having both an X and a Y component. A force vector acting in the X-direction, an X-component force vector, or a proximal force vector can be utilized to facilitate return of the valve opener from a distal position where the actuating end is pressed into the valve and deflects the valve flap to the proximal position as shown.

[0180] The valve flap of the valve, or both the valve flap and the locking device of the valve, can generate a force vector against the nose section of the valve opener to return the valve opener from the distal position to the proximal position. In yet another example, another portion of the valve other than the valve flap can apply a proximal force to move the valve from the distal position to the proximal position.

[0181] In an example, the region or portion within the catheter hub adjacent to the open proximal end may be a female Luer, understood to have a structure formed in accordance with the ISO standard for female Luers. The proximal edges of the two plunger elements of the valve opener may be recessed from the proximal open end of the catheter hub but may be located within the female Luer. Thus, when the male Luer tip is inserted into the female Luer, the male Luer tip may push the two plunger elements distally, forcing the valve opener into the valve and opening the valve, e.g., deflecting a valve flap distally and opening one or more slits.

[0182] A male luer tip can be inserted into the open proximal end of the catheter hub and the valve opener advanced into the valve to open the valve flap and open fluid communication between the male luer tip and the lumen of the catheter tubing. In practice, the male luer tip can be the syringe tip or the male tip of an IV infusion line or administration set attached to an IV bag.

[0183] Fluid can be withdrawn or aspirated proximally from the catheter hub or injected distally through the catheter tube. The male luer tip can have a threaded collar for engaging a lug or male threads on the catheter hub to further maintain the valve actuator in a distal position to open the valve.

[0184] In an example, the valve opener is configured to move distally when advanced by the male luer tip. The amount or distance the valve opener moves distally should be sufficient to allow the actuation end and nose section to deflect the valve flap distally, opening the slit in the valve and subsequently opening fluid communication between the male luer tip and the catheter tube. In the illustrated example, the actuation end of the valve opener moves distally of the valve flap, which is compressed between the interior of the catheter hub and the tapered surface of the nose section, or at least deflected distally by the nose section. The valve flap can be deformed by the tapered surface of the nose section. In other examples, the actuation end moves a distance equal to or short of the end of the valve flap, still opening the valve flap and allowing free flow in both the proximal and distal directions.

[0185] When the male luer tip is withdrawn, such as when changing an IV fluid bag attached to it, the distal force exerted by the male luer tip on the proximal edges of the two plunger elements is removed or stopped, and the female luer is not occupied by any external object, allowing the valve opener to return to its proximal position, now vacated by the male luer tip.

[0186] In an example, the resilience of the valve allows the valve flap to spring back (recoil) to a more relaxed state. This rebound action of the valve flap and the shape of the nose section of the valve opener allow the valve flap to impart a force vector to the nose section to move the valve opener from a distal position to a proximal position.

[0187] The force vector generated by each of the valve flaps in the nose section of the valve opener as the valve flaps rebound includes a force component that is generally parallel to the longitudinal axis of the catheter hub, also referred to herein as the X-component force vector or proximal force vector. Thus, the X-component force vector generated by the valve flaps can move the valve opener from a distal position where the actuation end and nose section deflect the valve flaps of the valve distally to open the valve, to a proximal position where the actuation end and nose section no longer deflect the valve flaps.

[0188] In some examples, the nose section of the valve actuator is provided with a shaped contour having distinct lines or curves, such as by forming recesses in the nose section with distinct contour lines or curves. One or more surfaces of the contoured nose section can then be used to compress the valve. The valve can be compressed to create multiple compression points. For example, the contoured nose section can be structured to compress or distally deflect the valve flaps, such that the valve flaps can generate a force vector against the nose section when the male luer tip is removed and the valve flaps are allowed to return to their relaxed state.

[0189] The contoured nose section can also axially compress one or more portions of the valve against the distal shoulder, such that the valve exerts an opposing axial return force when the male luer tip is removed. Thus, the valve alone can push the valve opener proximally upon removal of the male luer tip as the valve rebounds under compression by the contoured nose section alone or by multiple point sections of the contoured nose section.

[0190] In examples, the valve opener may deflect, deform, or bias the valve, such as deflecting, deforming, or biasing another portion or portions of the valve, such as the valve flap and skirt segment extending from the valve disc, such that when the other portion or portions, such as the valve flap and skirt segment, return to their relaxed or unbiased state, they exert a proximal force on the valve opener, moving it from a distal position to a proximal position.

[0191] In some examples, interference between the beveled cross section of the fixation device and the nose section generates a force vector on the nose section of the valve opener that includes an X-component force vector. For example, the valve opener can incorporate an elastic band or one or more elastic strips that are compressed, deformed, or biased by the fixation device when the nose section is advanced into the fixation device by the male luer tip to provide stored energy. Thus, in addition to the return force generated by the valve flap of the valve at the nose section of the valve opener, the interference between the fixation device and the nose section of the valve opener generates a return force that contributes to proximal movement of the valve opener from a distal position where the actuation end and nose section deflect the valve flap of the valve distally to a proximal position where the actuation end and nose section no longer deflect the valve flap.

[0192] In the proximal position, the valve opener is located inside the catheter hub, and a valve flap typically closes a slit to stop or restrict fluid flow in the proximal and / or distal directions. In some examples, the nose section can be recessed, and an elastic strip or band is placed within the recess to form a valve opener with a rigid section and a more flexible section. In other examples, the nose section is co-molded or insert molded with an elastomeric strip or band. An elastic strip or band incorporated into the nose section can allow the valve actuator to press against a rigid portion or component of the fixation device to generate a return force after removal of the male luer tip.

[0193] Aspects of the present invention may therefore be understood to include a catheter assembly or needle device comprising a catheter hub having a distally extending catheter tube, the catheter hub comprising a body having an outer surface and an inner surface forming an internal cavity. A valve and valve opener may be disposed within the internal cavity. In an example, a locking device having a body forming a bore is disposed proximal to the valve. A valve flap of the valve may provide a proximal return force to return the valve opener from a distal position to a proximal position.

[0194] Additionally or alternatively, the valve can be axially compressed, deformed, or biased against the distal shoulder, and the valve provides an axially directed force against the nose section to return the valve opener upon removal of the male luer tip. In an example, the locking device can provide interference with the valve opener, such as an elastomeric portion of the valve opener, when the valve opener is advanced distally by the male luer tip to open a valve flap of the valve, and the interference can provide a force vector that includes a force vector extending approximately parallel to the longitudinal axis of the catheter hub to return the valve opener from a distal position to a proximal position when the male luer tip is removed from the catheter hub.

[0195] A valve, valve flap, or skirt section of a valve can be deflected, biased, or deformed by a first structure, such as a valve opener, that moves into the valve without the need for a second structure opposite the first structure, although a second structure can optionally be incorporated. For example, a valve flap can be deflected by a valve opener without a shoulder or rigid surface opposite the valve flap to stop the deflection. Other objects can be deflected, biased, or deformed without an opposing structure, such as a leaf spring that is deflected, biased, or deformed by the nose section of a valve opener, or a spring ring that is expanded by insertion of a tapered section of the nose section.

[0196] In some examples, the nose section is spaced apart from or does not abut the locking device, and the return force is provided solely by the valve. The locking device can further provide a locking function to secure the valve within the catheter hub and prevent the valve from being inadvertently displaced proximally so as to be dislodged from the catheter hub. The catheter hub can include a catheter hub, a valve, a valve opener, a locking device, and a needle protruding through the catheter tube. The needle can be attached to the needle hub at a proximal end of the needle.

[0197] The valve opener can move to a distal position within the valve to open two or more valve flaps, such as when pressed by a male luer tip, and return to a proximal position when the male luer tip is removed to allow the valve flaps to relax or close to closure at the slit, so that the valve can undergo multiple actuation cycles. In examples, the valve can undergo two or more actuation cycles. For example, the valve can undergo at least two cycles, at least three cycles, at least four cycles, at least five cycles, or more.

[0198] In examples, the proximal surface of the valve can include an annular slit or annular channel. The annular slit can be recessed from the outer periphery of the valve. The annular slit can be in a first portion of the valve, which is a thicker portion of the valve than a second portion of the valve. The annular slit can be provided to receive the distal end of a fixation device.

[0199] The fixation device can be a retaining ring with a distal end that protrudes into the annular slit. In an example, the distal end of the fixation device can be pressed into the annular slit and held therein by compression or interference. In another example, the fixation device can be held within the annular slit using an adhesive or bond. In yet another example, the annular slit is an annular channel that does not grip the fixation device on both the inner and outer surfaces of the fixation device. For example, the outer surface of the fixation device can press against the annular channel but is spaced from the annular channel on the inner surface of the fixation device. This alternative configuration allows the fixation device to push the valve outward against the catheter hub without also requiring an annular slit to grip both the inner and outer surfaces of the distal end of the fixation device.

[0200] The retaining ring can have a length between the proximal and distal ends of the retaining body and a wall with a curved body portion of generally constant wall thickness at the proximal end of the retaining ring. The wall can have an interior that forms a bore for accommodating the nose section of the valve opener and for allowing fluid flow, such as for flushing.

[0201] The walls of the fixation device can be generally cylindrical except for the proximal end. In an example, the proximal end of the retaining ring can have an outwardly curved lip to secure the retaining ring against an inner shoulder of the catheter hub. When positioned against the inner shoulder, the fixation device can help secure the valve against proximal displacement. The valve can be secured or supported against distal movement by positioning a distal surface of the valve against a shoulder of the catheter hub.

[0202] The locking device and the nose section of the valve opener can be spaced apart from one another at the valve opener's proximal position. The gap or spacing between the two provides clearance for the valve opener to move distally and open the valve, such as to deflect the valve flap, before contacting or striking the locking device. The actuating end of the valve actuator's nose section can be positioned within the bore formed by the locking device but spaced apart from or not in contact with the locking device. The tapered surface of the nose section can also be spaced apart from the locking device. This space or gap allows the valve actuation element to move forward in the distal direction before striking or contacting the locking device. The actuating end can contact the proximal surface of the valve. In other examples, the actuating end can be slightly spaced apart from the proximal surface of the valve.

[0203] A male luer tip can be inserted into the open proximal end and a valve opener can be advanced into the valve to open the valve flaps and open fluid communication between the male luer tip and the lumen of the catheter tube. The male luer tip can have a threaded collar for engaging a lug or external threads on the catheter hub to further maintain the valve actuator in a distal position and open the valve.

[0204] In an example, the valve opener is configured to move distally when the male luer tip is advanced. The amount or distance the valve opener moves distally should be sufficient to allow the actuating end and nose section to deflect the valve flap distally to open the slit, which in turn opens fluid communication between the male luer tip and the catheter tube. The actuating end of the valve opener can move distally of the valve flap, which can be compressed or deformed by the tapered surface of the nose section, or the valve flap can at least be deflected or deformed distally by the nose section of the valve opener. The actuating end can move a distance equal to or short of the end of the valve flap, but sufficient to open the valve for free flow in both directions.

[0205] The curved lip on the fixation device can act like a biasing member. Thus, when the nose section of the valve actuator or opener is pressed against the curved lip at the proximal end of the fixation device, the curved lip presses the nose section against an elastomeric band, strip, section, or the like incorporated into the nose section, imparting a pair of component forces or force vectors to the nose section of the valve opener, including a force acting generally parallel to the longitudinal axis of the catheter hub. In another example, the nose section moves away from the fixation device when the male luer tip abuts the female luer of the catheter hub. The valve in that situation can provide the return force necessary to return the valve opener from the distal position to the proximal position, and the valve opener can omit the flexible section of the nose section.

[0206] When the male luer tip is withdrawn, such as when changing an IV fluid bag attached to it, the distal force exerted by the male luer tip on the proximal edges of the two plunger elements is removed or stopped, and the female luer is not occupied by any external object, allowing the valve opener to return to its proximal position and be retracted by the male luer tip.

[0207] In an example, the resilience of the valve allows the valve flap to spring back (recoil) to a more relaxed state, such as moving to a proximal position. This rebound action of the valve flap and the shape of the nose section of the valve opener allow the valve flap to impart a force vector to the nose section to move the valve opener from a distal position to a proximal position.

[0208] Aspects of the present invention may therefore be understood to include a catheter assembly or needle device comprising a catheter hub having a distally extending catheter tube, the catheter hub comprising a body having an outer surface and an inner surface forming an internal cavity. A valve and valve opener may be disposed within the internal cavity. In an example, a fixation device having a body forming a bore is disposed proximal to the valve to secure the valve within the catheter hub.

[0209] In an example, the locking device provides interference with the valve opener as it is advanced distally by the male luer tip. In another example, the male luer tip abuts the female luer of the catheter hub before the nose section of the valve opener contacts the locking device. The valve opener is configured to open a valve flap of the valve.

[0210] In examples, interference, deflection, biasing, or compression of the valve flap by the valve opener provides force vectors, including a force vector extending generally parallel to the longitudinal axis of the catheter hub, to return the valve opener from a distal position to a proximal position when the male luer tip is removed from the catheter hub.

[0211] The fixation device can also provide a return force to the nose section, such as a flexible insert on the valve opener, an elastic band, or an area of ​​the nose section having material to provide additional proximal return force. In some examples, the fixation device can incorporate a structure with elastic properties that stores energy when biased, deformed, or deflected by the valve opener and then releases the stored energy to generate a proximal force on the valve opener, moving it from a distal position to a proximal position.

[0212] As described herein, movement from a distal position to a proximal position, or vice versa, requires physically measurable movement.

[0213] The locking device can further provide a locking function for securing the valve within the catheter hub and preventing inadvertent proximal displacement of the valve so as to disengage it from the catheter hub. The catheter hub can include a catheter hub, a valve, a valve opener, a locking device, and a needle protruding through the catheter tube. The needle can be attached to the needle hub at a proximal end of the needle.

[0214] The valve can undergo multiple actuation cycles because the valve opener can move to a distal position within the valve to open two or more valve flaps, such as when pressed by a male luer tip, and return to a proximal position when the male luer tip is removed to allow the valve flaps to relax or close to closure at the slit. In examples, the valve can undergo more than one actuation cycle. For example, the valve can undergo at least two actuation cycles, at least three cycles of actuation, at least four actuation cycles, at least five actuation cycles, or more. Each actuation cycle can be defined as movement of the valve actuator toward and away from the valve to deflect the valve flaps.

[0215] In a further example, the fixation device may be a retaining ring having a distal end with an outwardly curved lip forming a flange for abutting or contacting the proximally facing surface of the valve, and a wall or body that tapers proximally from a first dimension to a second, larger dimension. Thus, the wall in this embodiment may resemble a bevel with a higher portion at the distal location that tapers as it extends proximally.

[0216] The proximal end of the fixation device can include a proximal edge that can be sized to abut or press against an inner shoulder of the catheter hub. When positioned against the inner shoulder, the fixation device can help secure the valve against proximal displacement. Alternatively, if there is a slight interference fit between the proximal and / or distal ends of the fixation device and the inner diameter of the catheter hub, no shoulder is needed to secure the fixation device internally. The valve can be secured or supported from distal movement by being positioned against a shoulder on the distal surface of the valve.

[0217] The locking device and the nose section of the valve opener can be spaced apart from one another at a proximal position of the valve opener, with the gap or spacing between the two providing clearance for the valve opener to move distally to open the valve, such as to deflect the valve flap before closing the gap and contacting or impacting the locking device.

[0218] In the proximal position of the valve actuator, the actuating end of the nose section of the valve actuator can be located within the bore formed by the retainer but spaced apart from or not in contact with the retainer. The tapered surface of the nose section can also be spaced apart from the retainer. This space or gap allows the valve actuation element to move forward in the distal direction before impacting or contacting the retainer. The actuating end of the valve actuator can contact the proximal surface of the valve. In other examples, the actuating end can be slightly spaced apart from the proximal surface of the valve.

[0219] A male luer tip can be inserted into the open proximal end and the valve opener advanced into the valve to open the valve flaps and open fluid communication between the male luer tip and the lumen of the catheter tube.

[0220] In examples, the valve opener is configured to move distally when advanced by the male luer tip. The amount or distance the valve opener moves distally should be sufficient to allow the actuation end and nose section to deflect the valve flap distally to open the slit and, in turn, open fluid communication between the male luer tip and the catheter tube. In examples, the actuation end of the valve opener moves distally of the valve flap, and the valve flap is compressed or deformed between the interior of the catheter hub and the tapered surface of the nose section, or the valve flap is deflected distally by the nose section of the valve opener.

[0221] In some examples, the nose section of the valve actuator is provided with a shaped contour having distinct lines or curves, such as by forming recesses in the nose section with distinct contours or curves. One or more surfaces of the contoured nose section can then be used to compress the valve, causing the valve to recoil and urge the contoured nose section proximally, returning the valve actuator to a proximal position. For example, the one or more contoured surfaces can axially compress, deform, or bias the valve against a distal shoulder to create stored energy, such that the valve provides an axially directed return force upon removal of the male luer tip. In some examples, the actuation end is equal to or short of the end of the valve flap, but travels a distance sufficient to open the valve for free flow in both directions.

[0222] In examples, the ramps of the locking device act like a biasing member. For example, when the nose section is pressed against the ramp structure of the locking device by the male luer tip, the locking device exerts an opposing biasing force on the nose section of the actuator, such as against a flexible section located in the nose section. Thus, when the nose section is pressed against the ramps in the interference, the ramps of the locking device impart a pair of force components or force vectors to the nose section, including a force acting generally parallel to the longitudinal axis of the catheter hub. In some examples, the nose section is spaced from the locking device when the male luer tip abuts the female luer of the catheter hub.

[0223] When the male Luer tip is withdrawn, such as when changing an IV fluid bag attached to the male Luer tip, the distal force exerted by the male Luer tip on the proximal edges of the two plunger elements is removed or stopped, and the female Luer is not occupied by any external object. This allows the valve opener to return to its proximal position, to be retracted by the male Luer tip. In an example, the resilience of the valve allows the valve flaps to recoil to a more relaxed state.

[0224] This rebound effect of the valve flap and the shape of the nose section of the valve opener allow the valve flap to impart a force vector to the nose section to move the valve opener from a distal position to a proximal position. Additionally, the ramp structure of the fixation device can apply a return force to the nose section, such as to a flexible section disposed on the nose section, to move the valve opener in a proximal direction and return the valve opener to the proximal position.

[0225] Aspects of the present invention may therefore be understood to include a catheter assembly or needle device comprising a catheter hub having a distally extending catheter tube and a needle attached to the needle hub, the needle extending through the catheter hub and the catheter tube. The catheter hub comprises a body having an outer surface and an inner surface defining an interior cavity.

[0226] The valve and valve opener can be disposed inside the internal cavity. In an example, a fixation device having a body forming a bore is disposed proximal to the valve and fixes the valve within the catheter hub. The fixation device can provide interference with the valve opener when the valve opener is advanced distally with the male luer tip to open a valve flap of the valve, and this interference matches vectors, including a force vector extending approximately parallel to the longitudinal axis of the catheter hub, to return the valve opener from a distal position to a proximal position when the male luer tip is removed from the catheter hub.

[0227] The locking device can further provide a locking function to secure the valve within the catheter hub and prevent the valve from being inadvertently displaced proximally so that it does not become dislodged from the catheter hub and provide a return force to the valve opener.

[0228] In an example, the retaining ring has a ring body having a first or distal end and a second or proximal end. The ring body can have a substantially constant outer dimension along its length, which can be substantially cylindrical. Internally, the ring body can have a smaller inner diameter at the distal end than at the proximal end, and a wall thickness that decreases in dimension from the distal end to the proximal end.

[0229] The inner surface of the ring body can form a bore, which is configured to accommodate the valve opener. Fluid flow can flow through the bore. The bore of the locking device can compress or bias the nose section of the valve opener to apply a pair of force components, as described above. In another example, the locking device is sized and shaped to space from the nose section when the male luer tip abuts the female luer of the catheter hub. In an example, the locking device is formed from a medical-grade plastic material. In another example, the locking device can be formed from a medical-grade elastomeric material or a thermoplastic elastomer material (TPE). Alternatively, the locking device can be made from a metal material by stamping and bending, machining, or the like.

[0230] The cross section of the ring body can have a beveled shape or a sloped surface on the inner surface of the ring body. Furthermore, the sloped surface can have a constant slope. In other examples, the slope of the sloped surface is not constant. For example, there can be one or more bumps or inflection points to create a non-linear profile. Whether or not it has a constant slope, the profile can be selected to create compression, bias, or interference with the nose section of the valve opener, such as a flexible section of the nose section, when the valve opener is pressed against the fixation device. The compression, bias, or interference with the valve opener can be configured to create a force vector that includes a force generally parallel to the longitudinal axis of the valve opener. This, in turn, aids in moving the valve opener from a distal position to a proximal position.

[0231] In examples, the proximal surface of the valves provided herein can have an annular slit or annular slot for receiving the distal end of the fixation device. In some examples, the annular slot can be an annular channel with a gap that does not grip both the inner and outer surfaces of the distal end of the fixation device. The fixation device can be made from a thin-walled cylinder, such as a metal or plastic material, and the proximal end can be curved outward to terminate in a curved lip, similar to rounded corners.

[0232] The inner surface of the ring body of the fixation device can define a bore configured to receive the valve opener and compress or bias the nose section of the valve opener, such as against a flexible section of the nose section, to impart a pair of force components, as described above. The rounded corners of the curved lip can be configured to compress the nose section of the actuator and impart a pair of force components. In another example, the fixation device is sized and shaped to space from the nose section when the male luer tip abuts the female luer of the catheter hub.

[0233] The curved lip of the fixation device can have an outer diameter that is smaller than the outer diameter of the valve. Depending on the internal configuration of the catheter hub, the size of the curved lip can be adjusted so that when placed inside the catheter hub, the curved lip abuts or contacts an internal shoulder of the catheter hub to secure the retaining ring within the internal cavity of the catheter hub.

[0234] In examples, the ring body of the fixation device has a distal end with a curved lip forming a flange with a generally flat wall for abutting the surface of the valve, such as abutting the proximal surface of the valve. The ring body of the fixation device can have a generally constant wall thickness that tapers outward from a first diameter at the distal end just proximal to the flange to a second, larger diameter at the proximal end, which has a proximal edge for abutting or contacting an internal shoulder of the catheter hub to retain the fixation device within the catheter hub.

[0235] The wall surface can have an inclined surface, such as a bevel. The inner surface of the ring body of the fixation device forms a bore, the bore configured to receive the valve opener. The bore can compress or bias the nose section of the valve opener, such as a section of the nose section incorporating an elastic strip, band, or material to impart a pair of force components to the valve opener. In another example, the fixation device is sized and shaped to space from the nose section when the male luer tip abuts the female luer of the catheter hub.

[0236] A canted coil spring can be used with the catheter assembly or device. The canted coil spring has multiple interconnected coils that are all canted along approximately the same direction. The spring can be made of a metallic material. The canted coil spring can have a length configuration with two free ends. The canted coil spring can also be in a ring configuration with the two ends of the spring length connected. Canted coil springs are well known in the spring art, and it is understood that the coils of the canted coil spring are radially deflectable or compressible relative to the ring centerline.

[0237] The fixation device can incorporate a canted coil spring in a spring ring configuration that can abut the proximal surface of the valve and can abut an internal shoulder within the catheter hub to secure the spring ring within the hub.

[0238] The proximal surface of the valve can have a mating recess for mating with or supporting the distal arc of the canted coil spring. At the proximal position of the valve opener, the coils of the canted coil spring contact both the inner surface of the catheter hub and / or valve and the nose section of the valve opener. In other examples, the coils can be spaced from the surface of the nose section, such as not contacting the nose section, at the proximal position of the valve opener.

[0239] When a male luer tip of a medical instrument is inserted into the catheter hub to open or deflect a valve flap of the valve, the canted coil spring is compressed by the nose section of the valve opener. Each of the multiple coils of the canted coil spring can be compressed by the nose section of the valve opener such that when compressed radially about the spring ring centerline, the coils of the canted coil spring are compressed.

[0240] Because the coil tends to uncompress or recoil, compression of the coil generates a force vector on the nose section. The force vector generated on the nose section includes a force generally parallel to the longitudinal axis of the valve opener. When the coil is compressed along one side by the valve, or when the coil is compressed along one side by the catheter hub, a distal axial force vector is opposed to the proximal valve surface of the valve, and a proximal force vector is opposed to the valve opener.

[0241] When the male tip is removed, the spring coils expand and press against the nose section, exerting a pair of force components that include a proximal axial force vector. This, in turn, can help push the valve opener proximally, returning it to its proximal position and returning the valve to its closed position. The force generated by the spring ring 244 to move the valve opener after removal of the male Luer tip can be added to the force generated by the valve flaps of the valve returning to a relaxed or closed state to close the valve slit after removal of the male Luer tip. The proximal force can return the valve opener from a distal position to a proximal position within the catheter hub after the male medical device is disconnected from the catheter hub.

[0242] In another example, the valve can be provided with an integral or integrally formed locking device. The integral or integrally formed locking device can be a retaining skirt section having a triangular cross section. The additional surface area on the exterior of the skirt section, or locking device, can help further retain the valve within the catheter hub when the needle is removed and when the valve opener is pushed by the male luer tip to open the valve.

[0243] The skirt section can be sized such that when the valve opener is pushed distally by the male luer tip, the triangular cross-section of the skirt can be compressed, deformed, or biased by the tapered nose section and the interior of the catheter hub. Thus, when a male tip, such as the male luer of a syringe or the tip of an administration set, is removed, the triangular skirt can expand and impart a pair of component forces to the nose section that include a proximal axial force vector. This, in turn, helps push the valve opener proximally, returning it from a distal position to its proximal position and enabling the valve to return to its closed position.

[0244] In yet another example, a fixation device according to aspects of the invention has a ring body having a distal end with a curved lip forming a flange with a generally flat wall for abutting the surface of the valve. The ring body has a generally constant wall thickness that tapers outward from a first diameter at the distal end just proximal to the flange to a second, larger diameter at the proximal end, with a proximal edge that can abut or contact an inner shoulder of the catheter hub to retain the fixation device within the catheter hub. Alternatively, the shoulder can be eliminated and the proximal edge can form an interference fit with the inner edge of the catheter hub.

[0245] The wall of the ring body can have an inclined surface, such as a bevel. The inner surface of the ring body of the fixation device defines a bore configured to receive the valve opener and compress or bias a nose section of the valve opener to provide the pair of force components as described above.

[0246] In this embodiment, two or more leaf springs, for example, three to eight, can be provided as part of the retaining ring for retaining the valve. Alternatively, only one leaf spring can be incorporated. The leaf spring can be formed by forming a symmetrical three-sided notch in the ring body and bending the notch inward to form the leaf spring. However, the notch can be other than a three-sided notch, such as a partial circular notch, or the notch can be asymmetrical or a larger, multi-sided notch with three sides. While a three-sided notch is preferred, any number of notches can be used to form the leaf spring in the fastener, generating a force vector on the valve opener. After forming one or more notches, the bending direction of the notch to form the leaf spring is a direction that allows the one or more leaf springs to contact the nose section of the valve actuator.

[0247] The leaf spring can be sized so that when the valve opener is pushed distally by the male luer tip, the leaf spring is deformed, deflected, or biased by the tapered nose section of the valve opener, such that when the male tip is removed, the leaf spring expands or de-biases to impart a pair of force components to the nose section that include a proximal axial force vector.

[0248] The biasing force of the leaf spring helps push the valve opener proximally, returning it from a distal position to its proximal position and allowing the valve to return to its closed position. The force of the leaf spring can be added to the force generated by the valve flaps of the valve returning to their relaxed or closed position to close the valve slit after removal of the male luer tip. In embodiments having one or more leaf springs, the nose section can be rigid without any flexible section or sections that may optionally be included.

[0249] In embodiments, the fixation device may be a retaining ring, which may include an integrally or integrally formed flexible flap or leaf spring. The fixation device may embody eyelets through which one or more leaf springs extend from the flange.

[0250] A fixation device having an eyelet configuration can be used with the catheter assemblies described herein. The fixation device has a flange for a ring body having an outer diameter (OD) and an inner diameter (ID) that form an opening. The flange can have a thickness that can be the thickness of the metal sheet used to form the eyelet. The thickness of the flange and the thickness of the leaf springs can be the same or approximately the same. If the flange and leaf springs are integrally formed from a single metal sheet, the thickness of the flange and the thickness of each leaf spring can be the same within the manufacturing tolerance of the thickness of the metal sheet.

[0251] In the eyelet embodiment, no cylindrical or elongated hollow body extends from the flange. Instead, two or more leaf springs, e.g., three to eight leaf springs, or at least one leaf spring, can extend directly from the flange. The drawings show four leaf springs integrated into the flange, each at approximately 90 degrees from the adjacent leaf spring. However, three leaf springs or a different number may be present. The leaf springs may be evenly spaced along the flange contour. The leaf springs may help center the valve actuator relative to the slit in the valve.

[0252] The leaf springs can extend proximally from the flange ID, and each leaf spring can terminate in a proximal edge that can be flat or rounded.

[0253] The leaf springs can be evenly or nearly evenly spaced along the flange ID. The leaf springs can stretch at or away from the boundary of the flange ID, such as, for example, due to bending to form the leaf springs or from slits or notches used to create and recess each leaf spring from the flange ID.

[0254] Each leaf spring can have a width and length sufficient to generate a component force on the nose section of the valve opener, and collectively all of the leaf springs can generate a proximal force that can move the valve opener from a distal position to a proximal position after removal of the male luer tip.

[0255] A pair of internal notches or slits can be provided in the flange ID and on both side edges of each leaf spring to allow each leaf spring to have a bend with a bend radius recessed from the flange ID. In other examples, the pair of internal notches can be omitted from the flange ID, and the proximal bend at each bend can be angular (square) or right-angled. Alternatively, if no internal notch or insufficient internal notch is incorporated, the bend radius can extend somewhat inward of the flange ID.

[0256] The locking ring of the eyelet embodiment, like the other locking rings discussed elsewhere herein, can be configured to lock a valve inside the catheter hub. The valve can be supported on its distal surface by an inner shoulder and on its proximal surface by a flange of the locking ring, which can be supported by a proximal inner shoulder of the flange. Thus, the valve can be secured or supported inside the interior of the catheter hub distally by the shoulder and proximally by a locking device, such as a flange of the locking device.

[0257] In the proximal position of the valve opener, the actuating end of the valve opener can contact the proximal surface of the valve or can be spaced a relatively small distance from the proximal surface of the valve. Regardless of whether there is contact between the valve opener and the valve in the proximal position of the valve opener, the nose section can be positioned within the boundary formed by the leaf spring but not contact the leaf spring. For example, in the proximal position of the valve opener, the nose section can be spaced from both the leaf spring and the flange. The spacing allows the valve opener to move distally into the valve to open the valve flap before the nose section contacts the leaf spring.

[0258] In an example, the flange of the fixation device can incorporate one or more relief passages or notches on the flange OD. The relief passages can reduce interference between the flange OD and the internal bore of the catheter hub during installation of the fixation device within the catheter hub. For example, the relief passages on the OD allow the flange OD to be more flexible and allow the portion formed by the notches to flex independently as needed.

[0259] Each notch in the flange OD can be formed as a straight line intersecting two points on the arc of the flange OD. In some examples, each notch can have a curved shape, a curved line and at least one straight line cut, or a complex curved line cut. In examples, a notch can be provided in each leaf spring in the flange OD. In other examples, the notch can be positioned so as not to align with the location of the leaf spring, such as not being located directly on the OD portion at the same ID location as the leaf spring. In still other examples, there can be more or fewer notches than the number of leaf springs.

[0260] In the distal position of the valve opener, the nose section can protrude through the valve slit to deflect the valve flap distally and compress the valve flap between the nose section and the inner surface of the catheter hub, or the valve flap can be deflected or deformed distally by the nose section of the valve opener without being compressed against the inner surface.

[0261] The actuating end of the valve opener can be distal to the distally deflected valve flap, or in other instances, the actuating end can be located at approximately the same axial position as the deflected valve flap or proximal to the valve flap, yet still allow fluid to flow proximally or distally across the valve.

[0262] The leaf springs can be positioned on the flange such that when the valve opener is pushed distally by the male luer tip, the leaf springs are biased radially outward by the tapered nose section of the valve opener. In an example, the proximal edge of each leaf spring is spaced from the interior of the catheter hub when biased by the nose section of the valve opener. In another example, the proximal edge can contact the interior surface of the catheter hub.

[0263] The biased leaf spring and biased valve flap create stored energy that can then push against the nose section of the valve opener to move the valve opener proximally when the male luer tip is removed to release the stored energy.

[0264] When the male tip is removed from the catheter hub, the leaf spring can be contracted or unbiased to apply a pair of force components to the nose section that include a proximal axial force vector. The biasing force of the leaf spring can urge the valve opener proximally, returning the valve opener from a distal position to its proximal position and facilitating returning the valve to its closed position.

[0265] The force generated by the leaf spring of the locking device of the valve opener may be added to the force generated by the valve flaps of the valve in the valve opener as they return to their relaxed or closed position to close the valve slit after removal of the male luer tip. In embodiments having one or more leaf springs in the locking device, the nose section of the valve opener can be rigid without any flexible section or sections that may optionally be included.

[0266] The valve can undergo multiple actuation cycles because the valve opener can move to a distal position within the valve to open two or more valve flaps, such as when pressed by the male luer tip, and return to a proximal position when the male luer tip is removed to allow the valve flaps to relax or close the slits. In examples, the valve can undergo two or more actuation cycles. For example, the valve can undergo at least three cycles, at least four cycles, at least five cycles, or more. Each actuation cycle can include movement of the valve opener into and away from the valve to deflect the valve flaps.

[0267] In alternative eyelet embodiments, the flange of the fixation device or ring, which can have an ID, OD, and thickness, can be molded to have an arc or curved cross-section. That is, the distal and proximal surfaces of the flange are arc-shaped or curved. In an example, the distal surface of the flange has a convex shape and the proximal surface of the flange has a concave shape. The molded flange can facilitate installation because the insertion direction of the fixation device and arc-shaped flange along the cross-section allows the flange OD to smoothly ride against the inner surface during installation. The curved cross-section can also strengthen the flange against deformation during installation.

[0268] The relief passages or notches in the flange OD of the eyelet do not have to be aligned with the leaf springs. Using the hour hands of a clock for reference, the leaf springs can be located at the 2, 4, 8, and 10 o'clock positions along the flange ID, while the cutouts can be located at the 3, 6, 9, and 12 o'clock positions along the flange OD. In other examples, the locations of the leaf springs along the flange ID and the notches along the flange OD can vary. Also, the number of leaf springs and notches can vary, such as having two leaf springs and three notches, or three leaf springs and two notches.

[0269] Due to the curved or arcuate cross-section of the alternative eyelet embodiment, the leaf spring can be bent to form a leaf spring with a proximally free end without the need to include a notch or slit along the flange ID, although a slit or notch may be incorporated to aid or facilitate bending of the tab to form the leaf spring.

[0270] In yet another example, the catheter assembly can utilize a fixation device that embodies a retaining ring made from an elastomeric material. For example, the fixation device can be made from an elastomeric material, such as an O-ring, that can have stored energy when biased or deformed. Thus, when the elastomeric material releases its stored energy, it can impart a proximal force to the valve opener, moving the valve opener from a distal position to a proximal position.

[0271] In an example, an elastomeric material, which may be an O-ring, can be compressed between the nose section of the valve opener and the interior wall of the catheter hub at the distal portion of the valve opener. The locking device can have a structure that embodies an O-ring with a variety of possible cross sections, such as circular, oval, or polygonal, such as square, rectangular, or triangular. The locking device can be an elastomeric ring with a circular cross section. The locking device can be formed separately from the valve and used in conjunction with the valve to secure the valve inside the interior of the catheter hub.

[0272] A valve used with a catheter hub can be distally secured or supported by an internal shoulder inside the catheter hub, which prevents or limits distal axial displacement of the valve periphery, while still allowing the valve flaps to deflect distally when pressed by a valve opener. The valve can be proximally secured or supported by a retaining ring or elastomeric ring in this embodiment. The elastomeric ring can abut against an internal shoulder inside the catheter hub to secure the elastomeric ring, and therefore the valve, against proximal displacement.

[0273] The locking device and the nose section of the valve opener can be spaced apart at a location proximal to the valve opener, with the gap or spacing between the two providing clearance for the valve opener to move distally to open the valve, such as to deflect the valve flap, before closing the gap and contacting or impacting the locking device against the valve opener.

[0274] The actuating end of the nose section of the valve actuator can be positioned within the bore formed by the retainer but spaced apart from or not in contact with the retainer. The tapered surface of the nose section can also be spaced apart from the retainer. This space or gap allows the valve actuation element to move forward in the distal direction before impacting or contacting the retainer. The actuating end of the valve actuator can contact the proximal surface of the valve. In other examples, the actuating end can be slightly spaced apart from the proximal surface of the valve.

[0275] Male luer tips usable herein can have a threaded collar for engaging lugs or male threads on the catheter hub to maintain the valve actuator in a distal position and open the valve.

[0276] In examples, the valve opener is configured to move distally when advanced by the male luer tip. The amount or distance that the valve opener moves distally should be sufficient to allow the actuation end and nose section to deflect the valve flap distally to open the slit, which in turn opens fluid communication between the male luer tip and the catheter tube.

[0277] In examples, the actuating end of the valve opener can move distally of the valve flap and the valve flap can be compressed between the interior of the catheter hub and the tapered surface of the nose section, or the valve flap can be deflected or deformed distally by the nose section of the valve opener without being compressed. In some examples, the actuating end can move a distance equal to or short of the end of the valve flap but still be able to open the valve sufficiently for free flow in both directions.

[0278] In examples, the elastomeric ring of the fixation device acts like a biasing member. For example, when the nose section is pressed against the fixation device, compressing or biasing the fixation device between the nose section and the inner surface of the catheter hub, stored energy is imparted to an elastomeric material, which may embody an O-ring, that can exert opposing biasing forces against the nose section of the actuator. Thus, when the nose section is pressed against the elastomeric ring, the elastomeric ring can impart a pair of component forces or force vectors to the nose section that can include a force acting generally parallel to the longitudinal axis of the catheter hub in the proximal direction.

[0279] When the male luer tip is withdrawn, such as when changing an IV fluid bag attached to it, the distal force exerted by the male luer tip on the proximal edges of the two plunger elements is removed or stopped, and the female luer is not occupied by any external object, allowing the valve opener to return to its proximal position, now retracted by the male luer tip.

[0280] In examples, the resilience of the valve allows the valve flap to spring back (recoil) to a more relaxed state, such as closing a slit or moving to close a valve disc. This resilience of the valve flap and the shape of the nose section of the valve opener allow the valve flap to impart a force vector to the nose section to move the valve opener from a distal position to a proximal position. Additionally, as described above, the resilience of the fixation device can exert a return force on the nose section to move the valve opener in a proximal direction.

[0281] Aspects of the present invention can therefore be understood to include a catheter assembly or needle device comprising a catheter hub having a distally extending catheter tube and a needle attached to the needle hub, with the needle extending through the catheter hub and the catheter tube. The catheter hub can comprise a body having an outer surface and an inner surface forming an internal cavity. The valve and valve opener can be disposed within the internal cavity. In an example, a fixation device having a body forming a bore can be disposed proximal to the valve to fix the valve within the catheter hub.

[0282] The fixation device can provide interference to or bias the valve opener when the valve opener is advanced distally by the male luer tip to open the valve flap of the valve, or vice versa, when the male luer tip is removed from the catheter hub, the interference provides a force vector that includes a vector extending proximally and approximately parallel to the longitudinal axis of the catheter hub to return the valve opener from a distal position to a proximal position.

[0283] The locking device can further provide a locking function to secure the valve within the catheter hub and prevent the valve from inadvertently displacing proximally out of the catheter hub. Otherwise, if the valve were to be displaced from the interior of the catheter hub, it would not be able to close properly, potentially causing blood leakage. The locking device can be an elastomeric material. The material preferably ranges between 30 and 70 Shore A hardness. It can also have a Shore A hardness less than 30 or greater than 70. In an example, the elastomeric material is an O-ring. In a particular example, the O-ring can have a circular cross-section.

[0284] The valve can undergo multiple actuation cycles because the valve opener can move to a distal position within the valve to open two or more valve flaps, such as when pressed by a male luer tip, and return to a proximal position when the male luer tip is removed to allow the valve flaps to relax or close the slits. In examples, the valve can undergo two or more actuation cycles. For example, the valve can undergo at least three cycles, at least four cycles, at least five cycles, or more. Each actuation cycle can include movement of the valve opener toward the valve to deflect the valve flaps and movement away from the valve to allow the flaps to close.

[0285] In further catheter assembly embodiments, the elastomeric material, which may be an O-ring, may have a generally square or polygonal cross section.

[0286] In a further embodiment according to this aspect of the invention, the valve is provided with an integral or integrally formed locking device. In an example, the integral or integrally formed locking device can be a retaining skirt section formed with the valve disc. The skirt section can have a substantially constant thickness and a proximal end face, which can be sized to abut or contact the inner shoulder of the catheter hub to secure the valve within the catheter hub from proximal movement. The proximal end face of the skirt section can have a sufficient thickness such that a portion of the skirt section is exposed radially from the inner shoulder. This exposed portion of the skirt section can enable or provide a target against which the valve opener can press to compress, deform, or bias the skirt section.

[0287] The valve can have a valve disc and an integral skirt. In an example, the valve disc and skirt section are integrally formed. The skirt section can be viewed as a generally cylindrical length with an open proximal end. The valve disc can have multiple slits or valve disc slit sections that form multiple valve flaps. In an example, the axial wall thickness of the valve disc can be substantially constant, without separate first and second sections as shown elsewhere in this description. However, separate first and second sections can be incorporated into a valve having a valve disc and skirt section.

[0288] In embodiments, rather than incorporating a substantially constant thickness along the length of the skirt section, the skirt section may incorporate a beveled surface along its cross section. For example, a valve having a valve disc may have separate first and second portions and may have a skirt section with a beveled cross section.

[0289] In an alternative embodiment, the valve opener can have a body including a nose section, two plunger elements, two protrusions, and two stabilizing elements, similar to other valve openers described elsewhere herein. In this alternative embodiment, a transition section is provided proximal to the nose section. The transition section can include a pair of opener shoulders, each having an abutment edge. The two opener shoulders can be spaced apart from one another, and the two abutment edges can be located on different sides of the nose section and at approximately the same axial location or position on the valve opener so that the valve opener is pushed into the valve at approximately the same time as it is advanced by the male luer tip.

[0290] Each opener shoulder can include a ramp or sloping surface extending proximally to the abutment edge. Each ramp can have a constant or compound slope. The two opener shoulders can be located adjacent to the landing section at the transition section of the valve opener. Raised lips or ribs can be carefully and sufficiently provided on the body of the valve opener for added stability and / or strength.

[0291] The outer diameter (OD) of the landing section can be approximately constant. In an example, the length of the landing section can have the same OD along its length. In yet another example, there can be a slight increasing or decreasing slope. A sloped surface on the landing section can be implemented so long as the landing section does not abut or interfere with the skirt section and / or weaken the transition section, thereby allowing it to operate as a valve opener. The bores of the nose section and landing section can have approximately constant inner diameters (ID).

[0292] Distal to the landing section, externally, the nose section can have a generally frusto-conical configuration. The tapered surface of the nose section can enable the valve flaps to apply a pair of force components that can include a proximal force to return the valve opener to its proximal position after removal of the male luer tip.

[0293] The two abutting edges of the two opener shoulders can press against the proximal surface of the skirt section of the valve as the male luer tip pushes the valve opener distally into the valve. The overlapping surfaces of the skirt section and the opener shoulder can indicate interference or compression of the skirt section between the distal shoulder of the catheter hub and the abutting edges of the valve opener. Thus, when the valve is opened by the valve opener, the valve flaps are compressed between the nose section of the valve opener and the inner surface of the catheter hub, or the valve flaps are deflected or deformed distally by the nose section of the valve opener, and the skirt section is compressed or deformed between the distal shoulder of the catheter hub and the two abutting edges of the valve opener.

[0294] In some examples, the two opener shoulders with tapered surfaces and abutting edges may be omitted or modified. For example, the nose section may extend directly to the stepped shoulder of the transition section without a tapered shoulder. Without the tapered shoulder, the abutting surface of the stepped shoulder may compress the skirt section. In other examples, the tapered shoulder may have a different shape, such as being approximately square or having a square surface without a tapered surface so that the abutting edge is approximately flush with the shoulder itself. In other words, the abutting edge may have a valve actuator on either side of the nose section without a tapered shoulder.

[0295] When the abutting edges and tapered shoulders are omitted, the end faces of the two stepped shoulders can compress the skirt section. The size and shape of the stepped shoulders and nose section can be adjusted to compress the skirt section when the tapered shoulders are omitted. When using an alternative valve opener that does not have tapered shoulders, the abutting edges of the two stepped shoulders can press directly against the proximal end face of the valve.

[0296] Compression, deflection, deformation, or biasing of various surfaces or portions of the valve when actuated by the valve opener can create stored energy within the valve. When the male luer tip is removed from the female luer of the catheter hub, the stored energy can be released in the form of the valve flap and skirt section returning to a more relaxed state. As a result, the valve flap can exert a proximal force against the nose section, and the skirt section can exert a proximal force against two abutting edges, moving the valve opener from a distal position to a proximal position.

[0297] The valve can undergo multiple actuation cycles because the valve opener can move to a distal position within the valve, such as when pressed by the male luer tip, to open two or more valve flaps of the valve, and the valve opener can return to a proximal position when the male luer tip is removed to allow the valve flaps and skirt section to relax or close the slit. In examples, the valve can undergo two or more actuation cycles. For example, the valve can undergo at least three cycles, at least four cycles, at least five cycles, or more. Each actuation cycle can include movement of the valve actuator toward and away from the valve to deflect the valve flaps.

[0298] A valve, such as a valve flap or skirt section of a valve, can be deflected, biased, or deformed by a first structure, such as a valve opener, moving against the valve without the need for a second structure opposite the first structure, although a second structure can optionally be incorporated. For example, a valve flap can be deflected distally by a valve opener as the valve opener moves distally. Thus, the valve flap can be deflected distally by a valve opener with or without a shoulder or some other rigid surface located distally of the valve flap. If a shoulder or rigid surface is present, the valve flap can still be deflected distally by a valve actuator and compressed between the nose section and the shoulder or rigid surface. Other objects, such as a leaf spring that is deflected, biased, or deformed by the nose section of a valve opener, or a C-ring or helical spring that is expanded by insertion of a tapered section of the nose section, can be deflected, biased, or deformed without an opposing structure.

[0299] Aspects of the present invention may be understood to include a catheter assembly or needle device comprising a catheter hub having a distally extending catheter tube, the catheter hub comprising a body having an outer surface and an inner surface forming an internal cavity. The valve and valve opener may be disposed within the internal cavity. In an example, the locking device may comprise a body forming a bore located inside the catheter hub and proximal to the valve. In an example, the locking device may be integrally formed with the valve and may be a skirt section. For example, the valve disc may be integrally formed with the valve skirt or skirt section, and the valve skirt may function as a locking device to hold the valve disc within the catheter hub.

[0300] The valve flap of the valve can apply a proximal return force to return the valve opener from the distal position to the proximal position. Furthermore, the valve opener can include one or more abutment edges for axially compressing, deforming, or biasing the skirt section against the distal shoulder of the catheter hub. In other words, the valve skirt or skirt section can have a length, and the valve opener can compress or deform the valve skirt to open the valve and reduce the length of the valve skirt from a first length to a shorter second length during actuation of the valve opener to the distal position. When the skirt section is reduced in length by the valve actuator, the skirt section receives stored energy. Thus, when the stored energy is released, such as at one or more abutment edges of the valve opener, the skirt section can provide a proximal, axially directed force against the valve opener to return the valve opener to the proximal position upon removal of the male Luer tip.

[0301] In an example, the fixation device can provide interference with the valve opener, such as an elastomeric portion of the valve opener, when the valve opener is advanced distally by the male Luer tip to open a valve flap of the valve, e.g., when the nose section deflects the valve flap distally, and the deflection can provide a force vector, including a force vector extending proximally and generally parallel to the longitudinal axis of the catheter hub, to return the valve opener from the distal position to the proximal position when the male Luer tip is removed from the catheter hub. In an example, the interference, bias, deflection, or compression provides stored energy to the skirt section of the valve. The stored energy can be released to push one or more abutment surfaces of the valve opener in the proximal axial direction.

[0302] The valve opener can have multiple surfaces, such as a nose section and one or more abutment edges, to deform the valve at multiple distinct positions of the valve and provide stored energy to the valve. The deformed surfaces of the valve can include the valve flap and other surfaces of the valve different from the valve flap. For example, in addition to the valve flap, the skirt section can be axially compressed by the valve opener.

[0303] The catheter hub can include a catheter hub, a valve, a valve opener, a locking device, and a needle that protrudes through the catheter tube. The needle can be attached to the needle hub at a proximal end of the needle.

[0304] In yet another embodiment of the needle assembly or catheter assembly, the catheter hub, catheter tubing, valve, valve opener, and fixation device may be similar to those shown and described elsewhere, with a few exceptions. In this embodiment, an annular slit or annular channel with an enlarged gap may be provided in the proximal surface of the valve to accommodate the distal end of the fixation device. That is, the enlarged gap of the annular channel in this embodiment can contact the outer surface of the ring body of the fixation ring but cannot contact the inner surface of the ring body due to the enlarged gap. The ring body may also contact the end or distal surface of the annular channel to control or set the depth of the annular channel relative to the ring body. This configuration allows the fixation device to retain the valve inside the catheter hub while relaxing the tolerances or simplifying the manufacturing requirements for forming or creating the annular channel, since the inner surface of the ring body does not need to be gripped by the annular channel. The channel is also easier to form using standard molding techniques than cutting a portion of the valve disc.

[0305] The ring body of the retaining ring can have a wall having a length between its proximal and distal ends with a substantially constant wall thickness, and a curved body portion at the proximal end of the retaining ring. The wall of the ring body can have an inner surface forming a bore for receiving the nose section of the valve opener.

[0306] The walls of the fixation device can be generally cylindrical, except for a curved body portion at the proximal end. In examples, the proximal end of the retaining ring can have an outwardly curved lip to secure the retaining ring against an optional internal shoulder of the catheter hub. When positioned against the internal shoulder, the fixation device can help secure the valve against proximal displacement. The valve can be secured or supported from distal movement by being positioned against a shoulder of the catheter hub on the distal surface of the valve. In some examples, the curved lip of the retaining ring has an interference fit with the interior of the catheter hub without a shoulder.

[0307] The fixation device may include one or more leaf springs. The fixation device may include four leaf springs, spaced equally apart from one another at approximately the 2, 6, 8, and 10 o'clock positions. However, the leaf springs may be located at different arcuate positions on the ring body. In an example, the leaf springs may be formed by making at least two cuts in the proximal edge of the ring body. As shown, the leaf springs are formed from two generally parallel cuts to allow for bending the metal to form the leaf spring and forming the two side edges of the leaf spring at the proximal end of the ring body.

[0308] In one example, all of the leaf springs incorporated into the fixation device can be formed in the same manner, such as by utilizing two generally parallel cuts. In other examples, the cuts can be non-parallel. In still other examples, different leaf spring combinations can be implemented. For example, a ring body can have two proximally located leaf springs with cuts formed through the proximal end of the ring body and two leaf springs formed between the distal and proximal ends of the ring body.

[0309] In examples, the cuts to form the leaf springs may be made through the proximal edge of the ring body, or may be made near but distal to the proximal edge of the ring body.

[0310] In still other examples, fewer than four leaf springs can be implemented, such as three, two, or one leaf spring, or more than four leaf springs, such as five, six, or seven. Additionally, the spacing between cuts can be varied to change the width or size of the leaf spring, which can change the spring force or bias generated by the leaf spring.

[0311] The cut through the proximal end to form the leaf springs can have the advantage of creating a proximal section between two adjacent leaf springs. The proximal section can deflect or flex when sliding the fixation device into the catheter hub to secure the valve. The ability of the proximal section to deflect or flex can reduce the insertion force required to install the fixation device. As with the above and other embodiments, there can be a notch instead of a slit between the leaf springs and the proximal end of the ring body. This can increase the flexibility of both the leaf springs and the proximal end of the ring body.

[0312] The locking device and the valve opener nose section can be spaced apart from one another at the valve opener proximal position. A gap or spacing between the two can provide clearance for the valve opener to move distally to open the valve, such as to deflect a valve flap, before contacting or striking the locking device. In the illustrated state, the actuating end of the valve actuator nose section can be located within a bore formed by the locking device but can be spaced apart from or not contacting the locking device.

[0313] The actuation end and nose section can be spaced apart from a cylinder formed by the plurality of leaf springs. This space or gap can allow the valve actuation element to move forward in a distal direction, such as before striking the leaf springs or before impacting or contacting the fixation device. The actuation end can contact a proximal surface of the valve in the ready-to-use position. In other examples, the actuation end can be slightly spaced apart from the proximal surface of the valve.

[0314] In the example, the valve opener is configured to move distally when advanced by the male luer tip. The amount or distance the valve opener moves distally should be sufficient to allow the actuating end and nose section to deflect the valve flap distally, opening the slit and subsequently opening fluid communication between the male luer tip and the catheter tube. In the example shown, the actuating end of the valve opener moves distally of the valve flap, which can be compressed between the interior of the catheter hub and the tapered surface of the nose section, or the valve flap can be distally deflected or deformed by the nose section of the valve opener, with or without compression. As shown, the actuating end moves equal to or short of the end of the valve flap, but a distance that opens the valve sufficiently for free flow in both directions.

[0315] In examples, the tapered surface of the nose section biases or urges the plurality of leaf springs radially outward, providing stored energy to the leaf springs. The curved lip can act as a biasing member. Thus, upon release of the leaf springs, the leaf springs impart a pair of component forces or force vectors to the nose section of the valve opener, including a force acting proximally and generally parallel to the longitudinal axis of the catheter hub.

[0316] When the male Luer tip is withdrawn, such as when replacing an IV fluid bag attached to the male Luer tip, the distal force exerted by the male Luer tip on the proximal edges of the two plunger elements is removed or stopped, and the female Luer is not occupied by an external object. This allows the valve opener to return to its proximal position and be retracted by the male Luer tip. In an example, the valve's resilience allows the valve flap to spring back (recoil) to a more relaxed state by releasing its stored energy. This resilience of the valve flap and the shape of the valve opener's nose section may allow the valve flap to impart a force vector to the nose section, moving the valve opener from a distal position to a proximal position. Additionally, one or more leaf springs acting on the nose section may also exert a proximal force to further assist in returning the valve opener to its proximal position.

[0317] The valve opener can move to a distal position within the valve to open two or more valve flaps, such as when pressed by a male luer tip, and the valve opener can return to a proximal position when the male luer tip is removed to allow the valve flaps to relax or close to closure at the slit, so that the valve can undergo multiple actuation cycles. In examples, the valve can undergo two or more actuation cycles. For example, the valve can undergo at least three cycles, at least four cycles, at least five cycles, or more. Each actuation cycle can include movement of the valve actuator toward the valve to deflect the valve flaps and movement away from the valve to allow the valve flaps to close.

[0318] A further aspect of the present invention is a catheter assembly having an elongate body formed at an acute angle relative to the longitudinal axis of the hub body, the catheter hub having a hub body with a proximally facing side port. The side port may be integrally formed with the hub body of the catheter hub. A catheter hub with a side port may be referred to as, or sometimes referred to as, a one-piece catheter, as described further below.

[0319] An integrated catheter with a side port can have components located inside the catheter hub similar to other catheter hubs described elsewhere herein. For example, the catheter hub of an integrated catheter assembly can have a valve, valve opener, locking device, and needle guard located inside the catheter hub. Optionally, the locking device can be integrally formed with the valve. Optionally, the needle guard can be located outside the catheter hub, such as in a third hub separate from the catheter and needle hubs.

[0320] The side port can have a bore with an inlet opening. The bore of the side port can be in fluid communication with the interior cavity of the catheter hub and the lumen of the catheter tube. In an example, the bore of the side port can be in fluid communication with an interior chamber or cavity distal to the valve and the catheter lumen.

[0321] After successful venipuncture and removal of the needle and needle hub from the catheter hub, one or more flaps of the valve can close, isolating the internal cavity into a distal chamber distal to the valve and a proximal chamber proximal to the valve. A side port can be isolated from the proximal chamber of the internal cavity by the valve. However, when a needle is placed within the catheter tube and the needle deflects one or more of the valve flaps, it can be in fluid communication with the proximal chamber.

[0322] A tube can be connected to the side port and a fluid connector can be connected to the opposite end of the tube.

[0323] The vent plug, like the other vent plugs described herein, can be connected to the proximal opening of the needle hub. An optional paddle grip can be incorporated into the needle hub, which can be used with a catheter hub. If incorporated, the paddle grip can provide a closer grip to the puncture site during needle insertion into a vein. Generally, the closer to the puncture site, the more accurate the puncture. If incorporated, the paddle grip can be integrally formed with the needle hub.

[0324] The paddle grip can embody a generally flat structure that extends to the side of the needle hub and can have a length that extends distally. The paddle grip can have a knobby or curved outer contour with rounded outer edges, or can have other shapes. Surface textures or gripping features can be incorporated into the paddle grip to facilitate gripping.

[0325] The paddle grip may be adjustable for left-handed or right-handed users by rotating the needle hub about the longitudinal axis of the needle. In some examples, the paddle grip may be formed with a clip ring that can slide onto the needle hub. The clip ring may be adjustable or rotatable about the needle hub so that the position of the paddle grip can be changed as desired by the practitioner. An exemplary adjustable paddle grip is disclosed in U.S. Patent Application Publication No. 2017 / 0173304 A1, the contents of which are expressly incorporated herein by reference.

[0326] The valve and valve opener can be located inside the catheter hub of the integrated catheter. The valve can embody the valve shown in FIG. 13 and can be held between a distal shoulder and a proximal shoulder. The valve can have two or more slits and two or more flaps, for example, three slits and three flaps or four slits and four flaps. The valve can have a valve disc with a constant thickness or a variable thickness.

[0327] The valve opener can be positioned proximal to the valve and can include a nose section having an actuation end for pushing into the valve to open one or more slits in the valve disc and deflect two or more flaps. The valve opener can include at least one plunger element, and more preferably two spaced apart plunger elements, having one or more gaps therebetween for fluid flow.

[0328] The stabilizing element can be connected or attached to the two plunger elements. The two stabilizing elements can be connected to the two plunger elements at opposing side edges of the plunger elements. The two stabilizing elements and the two plunger elements can form an inner opening that is small compared to the dimensions of the needle guard at the two elbows when biased by the needle, as described above. Thus, when the needle biases the two arms of the needle guard apart, the needle guard is prevented from moving proximally of the two stabilizing elements due to the difference in size.

[0329] In the example, the elbow of the needle guard is positioned distal to the two stabilizing elements and distal to the inner shoulder within the catheter hub. Thus, as previously described, in addition to the two stabilizing elements, the needle guard can be held inside the catheter hub by the proximal shoulder in the ready-to-use position and during needle retraction until the needle tip moves proximal to the two distal walls of the two arms.

[0330] A length of tubing can be attached to a side port at a first end of the tubing and a fluid connector at a second end of the tubing. The fluid connector can embody a number of different devices, such as a plug septum or a needleless valve. In an example, the fluid connector is a needleless valve comprising a housing with a movable piston disposed therein. The housing can have an inlet opening with a female luer for receiving a male luer tip, such as a syringe tip. A syringe can be used to open the fluid connector without a needle by compressing the piston.

[0331] When inserted into the inlet opening of the fluid connector, the male luer tip of the syringe can compress the piston to open a fluid pathway between the inlet and outlet of the housing. The outlet of the housing is connected to the tubing. Thus, fluid, such as a medication, supplement, or drug, dispensed from the syringe through the male luer tip can flow through the needleless valve or fluid connector, from the outlet of the housing into the tubing, then through the side port, into the distal chamber of the catheter hub, and then into the lumen of the catheter tubing and into the patient's body.

[0332] In use, the catheter assembly with the side port of the integrated catheter assembly, if incorporated, can be grasped using a paddle grip and then inserted into a vein by the needle tip and the distal end of the catheter tubing. In the absence of a paddle grip, the practitioner can grasp the needle hub and, in some cases, the catheter hub together. Primary blood flashback can be seen when blood flows through the needle and into the needle hub. Once primary flashback is confirmed, the practitioner can then pull the needle proximally, allowing blood to flow between the needle and the catheter tubing to check for secondary blood flashback.

[0333] If a secondary blood flashback is observed, the user can further insert the catheter assembly into the vein by pushing the catheter tube further into the vein to access the blood vessel. The needle and needle hub can then be completely removed from the catheter tube and catheter hub. Retracting the needle moves the needle tip proximal to the two distal walls of the needle guard, allowing the two arms of the needle guard to move together and release from the stabilizing element. Once the contour change engages the opening in the proximal wall of the needle guard, further needle retraction removes the needle guard from the catheter hub. If the needle is withdrawn straight from the catheter hub, the contour change may not engage the opening in the proximal wall of the needle guard.

[0334] After removal of the needle from the integrated catheter, the valve's multiple valve flaps can recoil or return to their relaxed state, closing the slit and restricting proximal and distal flow through the valve. In examples, the working end of the valve actuator or opener nose section is proximal to the valve in the valve opener proximal position and can be spaced apart from the proximally-facing surface of the valve and from the fixation device, if incorporated.

[0335] The tapered surface of the nose section is also spaced from the locking device, if installed. This spacing or gap between the nose section and the locking device, if installed, allows the valve actuation element to move distally forward when pushed by the male luer tip before striking or contacting the locking device. This arrangement provides room for the valve opener to displace distally to open the valve. In an example, distal advancement of the valve opener can be stopped when the male luer tip abuts the female luer of the catheter hub at the luer fit, as described elsewhere herein. The actuating end of the nose section can be spaced from the proximal surface of the valve in the ready-to-use position, with the needle tip extending distally of the distal opening of the catheter tube and proximal to the valve opener. In another example, the actuating end can contact the proximal surface of the valve before being advanced distally by the male luer tip.

[0336] In an example, an IV infusion line of an IV administration set can be connected to the catheter hub of the integrated catheter through a proximal opening in the catheter hub. With the catheter hub occupied by the IV administration set, a fluid connector connected to the catheter hub through tubing and a side port can be used to infuse medication into the patient via a syringe or the like. Alternatively, an IV infusion line of the IV administration set can be connected to the fluid connector, and a proximal opening in the catheter hub can be used to infuse medication via a syringe or the like.

[0337] A valve opener according to a further aspect of the invention can include a transition section having a taper formed of several angled segments. In other examples, the transition section can embody a smooth curve or a single angled taper that increases from the nose section in a proximal direction. The nose section of the valve opener distal to the transition section can be generally frusto-conical in shape and have a through opening for fluid flow. The tapered surface of the nose section can enable a valve flap of the valve to apply a pair of force components, which can include a proximal force, to return the valve opener to its proximal position after removal of the male luer tip.

[0338] In an example, two stabilizing elements are incorporated into the valve opener. Each stabilizing element can be connected to two plunger elements. Compared to the stabilizing element of FIG. 33, at least one of the stabilizing elements of the alternative valve opener can have a width defined between a distal edge and a proximal edge that can vary along the length of the bridge forming the stabilizing element. For example, the stabilizing element can have a width between a first end and a second end, or between two ends attached to two plunger elements, that can be narrower near the two ends and wider near the middle of its length.

[0339] The wider portion of the stabilizing element can range from 25% to 75% of the length of the stabilizing element. However, like the valve opener of FIG. 33, one or both stabilizing elements can have the same width along their entire length, similar to the bridge forming the stabilizing element of FIG. 33. In some examples, the wider portion can be centered between the two ends of the stabilizing element. In some examples, a notch or recess can be incorporated into the proximal edge of one or both stabilizing elements.

[0340] In an example, the distal edge of the wider portion of the stabilizing element can have a tapered edge. The taper of the tapered edge should begin at or near the outer surface of the stabilizing element and slope toward the inner surface of the stabilizing element. In other words, the tip of the tapered edge should be closer to the outer surface of the stabilizing element than to the inner surface of the stabilizing element. A configuration with a tapered edge can facilitate removal of the needle guard. If two stabilizing elements are incorporated, the distal edges of both of the two stabilizing elements can incorporate a tapered edge.

[0341] In some examples, each of the two stabilizing elements of the valve opener can have the same width along its length, and both stabilizing elements with constant width can have tapered distal edges. For example, the distal edges of the two stabilizing elements can have tapered edges. In some examples, the valve opener can have two stabilizing elements, one with the same width along its length and one with a wider portion at a central location along its length. One or the other, or both, of the stabilizing elements can have tapered distal edges. In other examples, the distal edges of one or both of the two different stabilizing elements can have typical square or straight top and bottom edges, which can also allow for needle guard release.

[0342] The two plunger elements can have portions that extend proximally of the proximal edge of the stabilizing element. In some examples, the proximal edges of the two plunger elements and the proximal edge of the stabilizing element, or the proximal edges of both stabilizing elements, can terminate along approximately the same vertical plane. In embodiments in which the proximal edges terminate along approximately the same plane, the distal edge of the stabilizing element can be extended distally, such as by increasing the width of the stabilizing element. Variation in the position of the distal edge can be used to control the interaction between the needle guard and the stabilizing element.

[0343] A needle guard according to a further aspect of the invention includes a proximal wall having a periphery that forms an opening for receiving a needle and engaging a contoured change formed with the needle. Two arms can extend distally from the proximal wall. Each arm can have a distal wall and an elbow located between the distal wall and the elongated arm portion of the arm.

[0344] Ribs or tabs can be incorporated into various portions of the needle guard to provide additional rigidity or stiffness. Tabs or ribs can be provided on the edge of the proximal wall, each of the two elongated arm portions, and the distal wall. In a preferred embodiment, each distal wall is provided with a curved lip so that the curved lip abuts the side of the needle when the needle is positioned between the two arms. Curved lips can be incorporated with the needle guard to prevent the needle from abutting the edge of the distal wall, which allows for scraping of the needle, but the needle guard can also have a flat outer surface instead of a curved lip. In some examples, tabs or ribs can be omitted from the distal wall, such as the curved lip of the first arm or the longer arm.

[0345] The two arms of the needle guard intersect each other along the side view shown in both the retracted or needle-exposed position and the needle guard or protected position. In other examples, the two arms can extend distally of the proximal wall on each side of the needle shaft, but do not intersect the needle shaft.

[0346] When the needle no longer biases the two arms of the needle guard, allowing the two arms to approach each other, a dimension measured between the two elbows decreases compared to the dimension at the two elbows when the arms were biased by the needle. The needle can be retracted proximally until the change in profile abuts the periphery that forms the opening in the proximal wall. The periphery of the proximal wall can have a dimension smaller than the maximum cross-sectional dimension of the change in profile. This allows the needle to move proximally and engage the periphery to remove the needle guard along with the needle.

[0347] The two arms of the needle guard can have two different lengths. Thus, in the protective position, the two distal walls can overlap when looking down the needle shaft. In an example, the angle between the distal wall and the elongated arm portion of the first arm can be greater than the angle between the distal wall and the elongated arm portion of the second arm.

[0348] In this example, each elongated arm portion of the two arms may be substantially straight or linear, possibly bending or flexing slightly to the respective elbow when biased by the needle. A single radius bend is then provided to form each elbow and each distal wall. Another single radius bend can be provided to form each curved lip. At the elbow, the single radius bend can have a simple or complex curve. However, unlike the needle guards of FIGS. 4 and 5, which have at least two bends and two changes in direction between the elongated arm portions of the arms and the distal wall of each arm, the present needle guard can have a single bend and a single change in direction between the elongated arm portions and the distal wall of each arm.

[0349] The single bend and single change in direction create a smooth or flat profile between the elongated arm portion and the elbow. The flat profile in the arm should be positioned to minimize or reduce interference with the edge of the stabilizing element of the valve opener, such as sagging or jamming. Therefore, there can be additional bends or changes in direction in each arm downstream of the first bend that forms the elbow, provided that the transition between the elongated arm portion and the first bend to form the elbow is generally flat or smooth to eliminate potential snag points that could cause sticking or binding over the typical range of angles at which the needle is oriented during removal. Generally, during use, the needle is withdrawn straight from the catheter hub along the same axis. In extreme cases, the needle can be withdrawn at an angle until it contacts the top proximal opening of the catheter hub. If the needle is withdrawn at an angle higher than simply contacting the proximal opening of the catheter hub, this is abusive use and may result in needle bending.

[0350] The arms of the needle guard can have a smooth or flat profile between the elongated arm portion and the elbow, with only a single bend or change in direction. As shown, each elongated arm section of the first and second arms can have sections with different arm widths. Each arm can also include a notch with a hook-like lip. The notches in the two arms allow the arms to straddle the needle to provide lateral stability as the needle transitions from a ready-to-use position with the needle tip exposed to a protected position with the needle tip protected.

[0351] Each of the needle guards described herein can be formed from a stamped metal sheet, such as a stamped stainless steel sheet, using a stamping and bending process to form the needle guard in the shape shown.

[0352] When the needle tip retracts proximally between the two distal walls of the needle guard after successful venipuncture, the bias of the needle on the two arms is removed, allowing the two arms to approach or even contact each other. This reduces the dimension measured at the two elbows, thus allowing the needle guard to move proximally through the opening formed by the two stabilizing elements and the two plunger elements. However, while retracting the needle and needle guard through the opening, the practitioner may inadvertently tilt the needle during proximal retraction. When this occurs, the needle guard may contact the distal edge of one or both stabilizing elements during retraction, thereby capturing contact between the needle guard and the stabilizing elements and potentially becoming stuck. This, in turn, prevents removal of the needle guard through the opening.

[0353] It has been found that when the needle guard arm has two or more bends or changes in direction at the transition between the elongated arm portion and the elbow, the multiple changes in direction can catch the distal edge of one stabilizing element during retraction of the needle guard through the opening during needle removal. This requires the user to reposition the angle of the needle relative to the longitudinal axis of the catheter hub to a value less than maximum angle A during needle retraction to avoid the needle guard getting caught and preventing retraction. In contrast, when the needle guard is used with a valve opener having one or two stabilizing elements, a single bend or change in direction between the elongated arm portion and the elbow results in a smooth or flat profile that does not easily catch on the distal edge of one or both stabilizing elements during needle retraction.

[0354] Thus, retraction through the opening can be facilitated by utilizing a needle guard with arms that have a single bend or change in direction, creating a smooth or flat profile that does not easily snag on the distal edge. Thus, the user can position the needle at a maximum angle B relative to the longitudinal axis of the catheter hub during retraction to avoid snagging and impeding retraction. This is shown visually in Figures 47 and 48 for discussion purposes. For two similarly sized catheter assemblies with similarly sized components but different needle guards, angle B will be greater than angle A because one has one bend or change in direction and the other has two or more bends or changes in direction.

[0355] If the stabilizing element against which the needle guard abuts or contacts during proximal retraction incorporates a tapered edge, the transition between the elbow and the elongated arm portion of the needle guard is less likely to catch on the tapered distal edge. Thus, even if the needle guard has two or more bends at the elbow and the catheter assembly has a stabilizing element with a tapered edge, a user holding the same size catheter assembly can hold the needle at a larger angle A' higher than angle A. Similarly, if the needle guard has only one bend or one change in direction to create a smooth or flat profile that does not easily catch on the distal edge, a user holding the same size catheter assembly can hold the needle at a larger angle B' higher than angle A. Generally speaking, angle B' for a needle guard with a single bend or change in direction and a valve opener with a stabilizing element with a tapered edge is larger than angle A' for a needle guard with two or more bends or changes in direction and a valve opener with a stabilizing element with a tapered edge.

[0356] It is further understood that aspects of the present invention include a catheter assembly comprising: a catheter tube having an inner lumen, a distal end opening, and a proximal end attached to a catheter hub, the catheter hub comprising a catheter body having an outer surface and an inner surface defining an internal cavity with at least one shoulder; a needle having a needle tip at its distal end and a proximal end attached to the needle hub, the needle protruding through the catheter hub and the catheter tube and having the needle tip protruding distally of the distal end opening in a ready-to-use position; a valve disposed in the internal cavity of the catheter hub, the valve body including at least one slit, a proximal surface, and a distal surface; and the valve actuator having a nose section with a bore and a proximal section with at least one gap for fluid flow through or across it, the valve actuator being slidable between a proximal position inside the internal cavity and a distal position when pressed by a male luer; and a needle guard having a protective surface disposed on a side of the needle in a ready-to-use position and movable to a position distal to the needle tip in a protective position to cover the needle tip from an inadvertent needle stick, the needle guard having an arm with an elbow between an elongated arm portion and a distal wall, the elbow having a unidirectional transition at a position that allows contact with a stabilizing element of the valve actuator during retraction of the needle guard without catching, impeding, and / or stopping movement of the needle.

[0357] The fixation device can contact or be integral with the valve at the proximal surface of the valve body to retain the valve inside the internal cavity of the catheter hub, and can include a retainer body having an inner surface forming a bore and including a fluid pathway, a distal end, and a proximal end.

[0358] The catheter hub can have a side port attached to the tubing at a first end of the tubing. The fluid connector can be a connector to a second end of the tubing. The fluid connector can include a needleless connector. The catheter assembly can be referred to as an integrated catheter assembly.

[0359] The stabilizing element of the valve opener or actuator can have a distal edge. The distal edge can have a tapered edge. The taper of the tapered edge should begin at or near the outer surface of the stabilizing element and slope toward the inner surface of the stabilizing element. In other words, the tip of the tapered edge should be closer to the outer surface of the stabilizing element than to the inner surface of the stabilizing element.

[0360] The needle guard can have an arm with a single change in direction between the elongated arm portion and the distal wall of the arm, creating a smooth or flat profile at the elbow between the elongated arm portion and the distal wall that does not easily catch on the distal edge of the stabilizing element of the valve actuator.

[0361] Methods of making and using catheter assemblies and their components are within the scope of the present invention. [Brief explanation of the drawings]

[0362] These and other features and advantages of the present devices, systems, and methods will become better understood as they become better understood with reference to the specification, claims, and accompanying drawings. [Figure 1] 1 is a schematic perspective view of a catheter assembly or needle device according to an aspect of the present invention; [Figure 2] FIG. 2 is a partial cross-sectional perspective view of the assembly of FIG. 1. [Figure 3] FIG. 2 is an exploded view of the needle device or catheter assembly of FIG. 1. [Figure 4] FIG. 2 is an enlarged, partial cross-sectional side view of the assembly of FIG. 1. [Figure 5] FIG. 5 is a side view of a cross section of the assembly of FIG. 4 rotated 90 degrees. [Figure 6] FIG. 6 is a cross-sectional side view of the assembly of FIGS. 1-5 with the needle and needle hub removed and the valve opener in its proximal position, such as after successful venipuncture. [Figure 7] FIG. 7 is a cross-sectional side view of the assembly of FIG. 6 with the valve opener in a distal position opening the valve. [Figure 8] FIG. 1 is a cross-sectional side view of an embodiment of a catheter assembly or needle device with the needle and needle hub removed, such as after successful venipuncture, and the valve opener in its proximal position. [Figure 9] FIG. 9 is a cross-sectional side view of the assembly of FIG. 8 with the valve opener in a distal position, opening the valve. [Figure 10] FIG. 10 is a cross-sectional side view of another embodiment of a catheter assembly or needle device with the needle and needle hub removed, such as after successful venipuncture, and the valve opener in its proximal position. [Figure 11] FIG. 11 is a cross-sectional side view of the assembly of FIG. 10 with the valve opener in a distal position, opening the valve. [Figure 12] 1A-1C show cross-sectional side, front, and front perspective views of a fixation device according to an aspect of the present invention. [Figure 13] 1A-1C show cross-sectional side, front, and front perspective views of a valve and fixation device according to an aspect of the present invention. [Figure 14] 10A-10C show cross-sectional side, front, and front perspective views of another fixation device according to an aspect of the present invention. [Figure 15] 1 shows different views of a fixation device in the form of a spring. [Figure 16] 16 is a cross-sectional side view of another embodiment of a catheter assembly or needle device having the fixation device of FIG. 15 with the needle and needle hub removed. [Figure 17] FIG. 17 is a cross-sectional side view of the assembly of FIG. 16 with the valve opener in a distal position opening the valve. [Figure 18] FIG. 10 is a cross-sectional side view of another embodiment of a catheter assembly or needle device with the needle and needle hub removed, such as after successful venipuncture, and the valve opener in its proximal position. [Figure 19] FIG. 19 is a cross-sectional side view of the assembly of FIG. 18 with the valve opener in a distal position opening the valve. [Figure 20] FIG. 10 is a cross-sectional side view of another embodiment of a catheter assembly or needle device with the needle and needle hub removed, such as after successful venipuncture, and the valve opener in its proximal position. [Figure 21] FIG. 21 is a cross-sectional side view of the assembly of FIG. 20 with the valve opener in a distal position opening the valve. [Figure 22] 10A-10C show cross-sectional side, front, and front perspective views of another fixation device according to an aspect of the present invention. [Figure 23] FIG. 10 is a cross-sectional side view of another embodiment of a catheter assembly or needle device with the needle and needle hub removed, such as after successful venipuncture, and the valve opener in its proximal position. [Figure 24] FIG. 24 is a cross-sectional side view of the assembly of FIG. 23 with the valve opener in a distal position opening the valve. [Figure 25] 1 is a perspective view of a fastening device that may embody an eyelet; [Figure 26] 10 is a perspective view of a fastening device that may incorporate eyelets according to a further aspect of the present invention; FIG. [Figure 27] FIG. 10 is a cross-sectional side view of another embodiment of a catheter assembly or needle device with the needle and needle hub removed, such as after successful venipuncture, and the valve opener in its proximal position. [Figure 28] FIG. 28 is a cross-sectional side view of the assembly of FIG. 27 with the valve opener in a distal position opening the valve. [Figure 29] FIG. 10 is a cross-sectional side view of another embodiment of a catheter assembly or needle device with the needle and needle hub removed, such as after successful venipuncture, and the valve opener in its proximal position. [Figure 30] FIG. 30 is a cross-sectional side view of the assembly of FIG. 29 with the valve opener in a distal position opening the valve. [Figure 31]FIG. 10 is a cross-sectional side view of another embodiment of a catheter assembly or needle device with the needle and needle hub removed, such as after successful venipuncture, and the valve opener in its proximal position. [Figure 32A] FIG. 32 is a cross-sectional side view of the assembly of FIG. 31 with the valve opener in a distal position opening the valve. [Figure 32B] This is the same view as FIG. 32A, rotated 90 degrees. [Figure 33] 1 is a perspective view of a valve opener provided in accordance with an aspect of the present invention; [Figure 34] FIG. 1 is a perspective view of a valve including a valve disc and a skirt section. [Figure 35] FIG. 10 is a perspective view of a valve including a valve disc and skirt section provided in accordance with a further aspect of the present invention. [Figure 36] FIG. 10 is a cross-sectional side view of another embodiment of a catheter assembly or needle device with the needle and needle hub removed, such as after successful venipuncture, and the valve opener in its proximal position. [Figure 37] FIG. 37 is a cross-sectional side view of the assembly of FIG. 36 with the valve opener in a distal position opening the valve. [Figure 38a] FIG. 1 is a perspective view of a fixation device comprising multiple leaf springs. [Figure 38b] FIG. 1 is a front view of a fixation device comprising multiple leaf springs. [Figure 39] 10 is a cross-sectional view of an alternative catheter assembly provided in accordance with a further aspect of the present invention, which may include a side port. [Figure 40] 10 is a cross-sectional view of an alternative catheter assembly provided in accordance with a further aspect of the present invention, which may include a side port. [Figure 41] 10 is a cross-sectional view of an alternative catheter assembly provided in accordance with a further aspect of the present invention, which may include a side port. [Figure 42] FIG. 1 is a perspective view of an integrated catheter assembly including a side port connected to a tube that is further connected to a fluid connector. [Figure 43] FIG. 10 is a perspective view of a valve opener or actuator provided in accordance with a further aspect of the present invention. [Figure 44] FIG. 10 is an enlarged cross-sectional view of a stabilizing element with a tapered distal edge. [Figure 45A] 1 shows a needle guard attached to a needle, the needle guard having an arm with a single bend or change in direction. [Figure 45B] 1 shows a needle guard attached to a needle, the needle guard having an arm with a single bend or change in direction. [Figure 46A] 10A-10C show different perspective views of the needle guard in an open position, as if a needle (not shown for clarity) were opening the arms to reveal the features of the needle guard. [Figure 46B] 10A-10C show different perspective views of the needle guard in an open position, as if a needle (not shown for clarity) were opening the arms to reveal the features of the needle guard. [Figure 47] The needle is shown withdrawn from the catheter hub. For simplicity, the catheter tubing is not shown protruding from the distal end of the catheter hub. [Figure 48] FIG. 48 is an enlarged view of a portion of FIG. 47. DETAILED DESCRIPTION OF THE INVENTION

[0363] The present disclosure relates generally to needle devices, and more particularly to a catheter assembly having an improved valve system and related improved methods. The improvements include numerous individual components and combinations of components. In examples, the improvements include structure and functionality for securing a valve within a standard diameter sized catheter hub, providing a proximal axial force for returning a valve opener, also called a valve actuator, from a distal position to a proximal position when a male luer is disconnected from the catheter hub, incorporating one or more components within the single-body catheter hub that can restrict fluid flow, enable actuation to allow fluid flow, and prevent needle damage, and combinations thereof. A single-body catheter hub is understood to be a one-piece catheter hub having a catheter tube extending from the distal end of the hub and a proximal opening at the proximal end for receiving a male medical instrument, such as a male luer tip.

[0364] FIG. 1 shows a catheter assembly 100, also referred to as a needle device or trocar catheter assembly, including a catheter hub 102 with a catheter tube 104, a needle hub 106 with a needle 108 attached thereto, the needle protruding through the lumen of the catheter hub 102 and the catheter tube 104. A vent plug 112 is disposed at the proximal end of the needle hub 106, and more particularly, is attached to the proximal opening of the needle hub 106. A needle bevel of a needle tip 114 protrudes distally from the distal opening of the catheter tube 104, or catheter tube opening 116, in the ready-to-use position of FIG. 1. The needle hub 106 is coupled to the catheter hub 102 at the catheter hub's proximal opening, which may have an internally threaded luer or luer slip. The catheter hub 102 may incorporate one or more surface features, such as a push tab and ribs for pushing the catheter tube 104 and trocar 108 into a patient's vein. The needle hub 106 may similarly incorporate surface features for a more secure grip when puncturing the vein and withdrawing the needle 108 from the catheter tube 104. Unless otherwise indicated, the various components may be fabricated from conventional materials using conventional techniques.

[0365] In an example, a pair of wings may be incorporated into the body 126 of the catheter hub 102, each extending transversely of the longitudinal axis of the catheter hub in opposite directions at the bottom of the catheter hub, which may be used by the practitioner, for example, with adhesive tape or an adhesive bandage, to secure the catheter hub to the patient after successful venipuncture.

[0366] 2 is a partial cross-sectional perspective view of the needle assembly 100 of FIG. 1 with the catheter hub 102 exposed along its length to show the valve 120 and valve opener 122 located inside the catheter hub 102 or inside an internal cavity 123. The valve and valve opener can be incorporated to control fluid flow through the catheter hub, for example, to control infusion or aspiration through the catheter hub, as described further below. Also shown is a needle guard or tip protector 130 located inside the internal cavity 123, which can have a surface or wall to prevent inadvertent contact with the needle tip when the needle is removed from the catheter tubing and catheter hub after successful venipuncture.

[0367] The needle guard or tip protector 130 can embody a structure having one or more components for preventing inadvertent contact with the needle tip. For example, the needle guard 130 can have a structure or wall that moves from a position proximal to the side of the needle shaft and the needle tip to a position distal to the needle tip to cover or shield the needle tip from inadvertent contact. In an example, the needle guard 130 can be one of the types described in U.S. Pat. No. 10,166,370, the contents of which are expressly incorporated herein by reference. Exemplary needle guard aspects are described further below.

[0368] The catheter hub 102 has a body 126 having an exterior surface and an interior surface that defines an interior cavity 123. One or more shoulders or lips 176a, 176b, 176c (FIG. 4) can be incorporated into the interior 123 and can be used to mount the valve opener 122, the valve 120, and / or the needle guard 130 in the ready-to-use position. The needle guard 130 can be positioned inside the catheter hub 102 by a nose section 132 of the needle hub 106 protruding into a proximal opening 136 of the catheter hub 102. As shown, the needle assembly or catheter assembly 100 of FIG. 2 can include a catheter hub 102 with an interior 123 having the valve 120, the valve opener 122, and the needle guard 130 positioned therein in the ready-to-use position. In some examples, the needle guard 130 is optional and can be omitted. In still other examples, the needle guard 130 can be positioned substantially outside the catheter hub. For example, the fingers or portions of the fingers of the needle guard may be located inside the catheter hub, while the remaining structure of the needle guard may be located outside the catheter hub.

[0369] Also shown disposed within the interior 123 of the catheter hub 102 in FIG. 2 is a device or structure 124 for securing or retaining the valve 120 within the catheter hub 102, which may be generally referred to as a securement device, a securement ring, or an element 124. The securement device, ring, or element 124 may have structures embodying a retainer, a retaining ring, a retaining skirt, an O-ring, among others, of various possible cross-sections, such as circular, oval, square, rectangular, or a canted coil spring. The securement device 124 may be formed separately from the valve 120 or may be a part of the valve, such as being used with, integrated into, or integrally formed with the valve. Unless the context dictates otherwise, the term securement device 124 may refer to any of the described structures and their equivalents. In the example, the securement device 124 is disposed in line with the valve 120, the valve opener 122, and the needle guard 130. In certain examples, the locking device 124 has a bore or opening for receiving the needle 108 and contacts both the valve and the interior of the catheter hub 102 to limit proximal movement of the valve 120 inside the interior 123, to assist in returning the valve opener 122 from a distal position to a proximal position, or for both purposes, as described further below. The valve opener or a portion of the valve opener 122 can be positioned within the bore of the locking device 124 in both a ready-to-use position of the catheter assembly, as shown in FIG. 1, and in a use position, such as after successful venipuncture, as described further below.

[0370] As shown, the needle guard 130 can comprise a metal body having spring or resilient properties, a proximal wall 140, and at least one arm or two arms (as shown) extending distally of the proximal wall 140. A change in contour 142 can be formed in the needle shaft proximal and near the needle tip 114 and can engage a periphery forming an opening in the proximal wall 140 to limit distal movement of the needle guard off the needle, but allow the tip 114 to enter the needle guard 130. The change in contour 142 can include a crimp, a stack of material, a sleeve, or any other increase in diameter that is larger than the opening in the proximal wall 140.

[0371] 2 shows that the valve 120, valve opener or valve actuator 122, locking device 124, and needle guard 130 are sized, shaped, and otherwise configured to be received within the interior 123 of the catheter hub 102, which may have a unitary hub body, such as a single, formed, unitary hub body, having a proximal opening with a female luer and a distal end with a catheter tube extending therefrom, and optionally having external threads or lugs (as shown). In other examples, the catheter hub 102 may be made from a multi-part hub body. For example, the catheter hub 102 may have a first hub body attached, such as by gluing or welding, to a second hub body to form the body of the catheter hub 102.

[0372] FIG. 3 is an exploded perspective view of the catheter assembly or needle device 100 of FIG. 1 , along with an exemplary valve 120, an exemplary valve opener 122, and an exemplary locking device 124. Also shown in FIG. 3 are the catheter hub 102, catheter tube 104, needle 108, needle guard 130, needle hub 106, and vent plug 112, which, when combined or assembled, can form the needle device 100 of FIGS. 1 and 2. Also shown is a metal bushing or fitting 146, which is conventional and can be used to secure the proximal end of the catheter tube 104 within the catheter hub 102. In other examples, as described further below, the valve 120, valve opener 122, and / or locking device 124 can be modified from the illustrated embodiment, such as to have different specific structural features. In some examples, the needle guard can be located outside the interior of the catheter hub, or substantially outside the catheter hub, with only fingers or tabs extending partially inside the catheter hub.

[0373] In an example, the valve actuator 122 includes a nose section 150 at the distal end of the actuator body. The nose section 150 can be an elongated structure, generally cylindrical, or can have a draft or taper terminating in an actuation end 180 ( FIG. 7 ) for pushing into the valve 120 to open the valve slit, as described further below. The actuation end of the nose section 150 can have a blunt distal end surface or have sharp edges. A flow path can extend through the nose section 150 for fluid flow. The nose section 150 can have a wall surface with a continuous circumferential or continuous peripheral section that forms a lumen or flow path. The wall of the nose section can be void or slitless, such as a cylinder with a continuous wall. The nose section 150 can form a bore. The bore can have a constant bore diameter or can vary depending on the taper of the nose section. In some examples, a plurality of spaced slits and / or openings may be provided in the nose section, such as through the wall of the nose section, to allow flow or fluid egress.

[0374] Two actuation elements or plunger elements 152 can extend proximally from the nose section 150. For example, the two plunger elements 152 can be integrally formed with and extend proximally from the nose section 150. A void or space can be provided between the two plunger elements 152, which can form a retention space. A needle guard or tip protector 130 can be disposed within the retention space or between the two plunger elements 152. In an example, the two plunger elements 152 can each include at least two longitudinal edges, the edges being spaced apart from one another. The longitudinal edges of the plunger elements 152 can be aligned with the longitudinal axis of the valve opener 122. A void or space can be provided between the two plunger elements to serve as a flow path for fluid to flow through or across as the fluid passes through the catheter hub. In another example, there can be more than one void or space formed by the valve opener for fluid flow. In yet other examples, the two plunger elements can be connected to each other by two bridges such that the proximal end of the valve opener is a continuous wall structure formed by portions of the two plunger elements and the two bridges. In some examples, a single plunger element is used with the valve opener.

[0375] In the example, protrusions 154 extend outward from the outer surface of one or both plunger elements 152. As shown, a protrusion 154 extends from the outer surface of each plunger element 152. Each protrusion 154 resembles a tab with a generally flat edge for abutting against a shoulder or lip formed inside the catheter hub 102. The tab surface and protrusion orientation of the protrusions 154 allow the valve actuator 122 to be inserted into the interior 123 of the catheter hub 102 and seated within the catheter hub, as described further below. The protrusions 154 can be sized and shaped to abut or contact a shoulder 176c in the catheter hub to limit proximal movement of the valve opener or actuator 122.

[0376] In examples, a transition section extends from the nose section 150 and widens as the body of the valve opener extends axially in the proximal direction. Two actuation elements 152 can extend from the transition section. Alternatively, the two actuation elements 152 can extend from the nose section 150 without a transition section. Some embodiments can utilize other shapes for the nose section 150, such as a cuboid, a rectangle, a cone, a pyramid, a chamfered shape, etc.

[0377] In examples, the valve actuator or valve opener 122 has a longitudinal axis, and one or more actuating elements 152 extend axially or parallel to the longitudinal axis. In certain examples, the two actuating elements 152 are diametrically opposed to one another along the longitudinal axis. In other examples, the two actuating elements can diverge from one another as they extend proximally. In yet other examples, the two actuating elements can converge toward one another as they extend proximally. The spacing between the two plunger elements, whether linear, converging, or diverging, can form a retention space therebetween. As shown, the two actuating elements 152 form an outer diameter that is larger than the diameter of the nose section 150. For example, the diameter formed by the two actuator elements 152 at the proximal end is larger than the diameter formed by any section of the nose section 150 except for the protrusion 154. In some examples, the diameter formed by the two actuator elements 152 is only larger than the actuating end of the nose section. In some examples, the nose section of the valve actuator is provided with a shaped contour having distinct lines, such as by forming recesses in the nose section with distinct contour lines or curves. One or more surfaces of the contoured nose section can then be used to compress the valve, causing the valve to rebound and urge the contoured nose section proximally, returning the valve actuator to a proximal position, as discussed further below.

[0378] In an example, the actuation element 152 is flexible and deflectable such that when pressed by a male luer tip, such as a syringe tip or male luer tip adapter, the actuation element 152 can break or bend. The actuation element 152 can be deflectable by selecting a material with the required elastic properties. In other examples, the actuation element 152 can be deflectable by incorporating one or more weakened sections, for example, by incorporating structurally thin sections, by incorporating notches, by using a smaller cross-section compared to other sections of the same elongated actuation element, or a combination thereof. Alternatively, the actuation element 152 can be flexible and deflectable by selecting a material with the required elastic properties and by incorporating one or more weakened sections.

[0379] In yet another example, each actuation element 152 has multiple different cross-sectional profiles or configurations along its length. For example, an elongated plunger element can have a square profile positioned adjacent to a crescent-shaped profile.

[0380] In examples, the actuation elements 152 are rigid and not deflectable or deformable when loaded, such as when pushed by a male luer tip. Additionally, one or more stabilizing elements 158 can be incorporated to increase the rigidity of the two actuation elements 152. As described further below, each of the two actuator elements 152 can include a cross-sectional profile at at least a proximal end that overlaps the push end of the male tip so that the male tip can push the valve actuator into the valve. The stabilizing element 158 ​​can be located distal to a proximal edge 182 ( FIG. 4 ) of the actuator element 152 or have a proximal edge that is flush with the proximal edge of the actuator element.

[0381] The nose section 150 of the valve actuator 122 can be configured to engage the valve 120 to open the valve flaps and slits formed therebetween when an axial force is applied by a male tip to the plunger or actuator element 152, moving the valve actuator 122 into the valve and deflecting the valve flaps, such as during insertion of a male luer connector of an IV drip line or administration set. Generally, the valve opener nose section 150 is rigid relative to the more flexible valve 120, thereby allowing the nose section 150, and more specifically, the actuation end 180 of the nose section ( FIG. 7 ), to actuate the valve 120, for example, deflecting one or more flaps and opening one or more slits in the valve 120. The nose section 150 can be made of a non-compressible material, such as a metallic material, a rigid plastic, or a hard elastomer, to press the valve open.

[0382] The illustrated valve actuator embodiment 122 includes a pair of opposing bands or stabilizers 158 connecting the two actuating elements 152 at a location along the length of the actuating elements between the nose section 150 and the proximal ends of the actuating elements. In some examples, the stabilizers 158 can be positioned at the proximal ends of the two actuating elements 152 such that the proximal edges of the stabilizers 158 are approximately flush with the proximal end faces of the actuating elements 152. The two stabilizer elements or bands 158 can be referred to in elevation as a first or upper stabilizer element and a second or lower stabilizer element.

[0383] In one embodiment, the stabilizer or stabilizer element 158 ​​has an arcuate wall, forming an arc that generally follows the interior contour of the catheter hub 102 and connects one actuation element 152 to the other actuation element 152. The stabilizer or stabilizer element 158 ​​can form a substantially continuous cylindrical portion on the body of the valve actuator, the body being formed by the two stabilizer elements and the two actuation elements and spaced from the nose section 150 of the valve actuator 122. In other words, the valve actuator 122 can be elongated and have radially continuous sections and sections with relief or through passages through the walls of the actuator that are not radially continuous.

[0384] In an example, the stabilizer 158 forms a continuous body section along the periphery or radius of the valve actuator that is spaced apart from the continuous body section of the nose section 150, which is also continuous along the periphery or radius. Two stabilizers or stabilizer elements 158, also called bands, can be joined together with two plunger elements 152 to form a ring structure. Optionally, the two stabilizers 158 can be slightly axially offset and angled from each other along the length of the valve actuator 122. In some embodiments, there can be one, three, or a different number of actuating elements 152 or stabilizers 158. For example, there can be two actuating elements 152 but only one stabilizer or band 158. In an example, the valve actuator 122, including the stabilizers or stabilizer elements 158 and the protrusions 154, is fabricated from plastic, such as by plastic injection molding.

[0385] The stabilizer 158 can help the valve actuator 122 remain centered within the catheter hub 102 during movement of the actuator 122, such as when pushed by the male luer tip to open a slit in the valve. By remaining centered, the nose section 150 can better align with the valve disc 121 of the valve, such as with a slit in the valve disc, allowing for smooth actuation of the valve 120. The stabilizer 158 can also provide engagement with the interior of the catheter hub 102 via friction to prevent the actuator 122 from sliding proximally after removal of the male luer tip. However, as noted above, the protrusion 154 can be incorporated with the valve actuator 122 to cooperate with an internal shoulder or lip 176c on the inside of the catheter hub 102 to hold the valve actuator 122 inside the catheter hub.

[0386] In one embodiment, nose section 150 is configured to remain engaged with valve disc 121 of valve 120 after valve actuation and removal of the male luer tip. For example, nose section 150 can wedged between one or more slits in the valve disc and be held there by friction. To maintain engagement between actuator 122 and valve 120 after actuation and removal of the male luer tip, valve actuator 122, such as nose section 150, can be provided with surface features, such as indentations, grooves, or barbs. Preferably, valve actuator 122 does not engage valve 120 after removal of the male luer tip. Preferably, the valve actuator can be moved from a distal position pressed against the valve to a proximal position spaced from or minimally contacting the valve but allowing the valve flaps to return or close the slits. When the valve opener returns to the proximal position after removal of the male luer tip, the valve can close to prevent or restrict fluid flow across the valve. The valve can be reopened by displacing the valve opener 122 distally with a male medical instrument, such as a syringe tip or administration set tip.

[0387] At least one relief passageway, opening, or throughway 160 is provided between the transition section of the valve actuator 122 and the proximal end of the valve actuator. The transition section can be understood as the section proximal to the actuation distal end, or from the nose section to the two stabilizers. In the example, two relief passageways or throughways 160 are incorporated to provide clearance so that the interior or central portion of the valve actuator 122 can be in open communication with the inner surface of the catheter hub 102. In other words, between the continuous section of the nose section and the continuous peripheral section formed by the two stabilizers 158 and the plunger element 152, referred to as the stabilizer ring 162, there are one or two relief passageways, throughways, or openings 160 for fluid flow, such as flushing. The through openings or relief passageways can also be utilized to retain a needle guard, as described further below.

[0388] The stabilizing ring 162 of the valve actuator 122 can have an inner diameter smaller than the diameter formed by the diagonal sections or elbows of the two arms of the needle guard 130 when the two arms are biased outward by the sides of the needle shaft in the ready-to-use position. Thus, during installation of the needle guard 130 into the retaining space of the valve actuator, the diagonal sections or elbows of the needle guard 130 can deflect past the stabilizing ring 158 and into the open area formed by the relief passage or through opening 160.

[0389] When the tip protector 130 is positioned between the two plunger elements 152, the two distal walls of the needle guard 130, more specifically the two diagonal sections or elbows of the needle guard, are positioned within the relief passages 160 as described above and can engage guard engagement surfaces on the inner surface of the catheter hub. This allows the needle guard 130 to protrude from the retention space of the valve actuator 122 through the two relief passages 160 and engage guard engagement surfaces on the catheter hub. Thus, in the ready-to-use position and during needle retraction after successful venipuncture, the needle guard can be retained inside the catheter hub until the tip of the needle moves proximal to the two distal walls of the needle guard, at which point the needle guard can close off the trocar tip and the distal end of the needle guard 130, at the stabilization ring 162, has a diameter smaller than the inner diameter of the valve opener and can be removed along with the needle.

[0390] An undercut or recessed section can be provided in the interior cavity of the catheter hub 102 to accommodate the two diagonal sections or elbows of the needle guard. Thus, the needle guard 130 can be prevented from sliding proximally during needle retraction after successful venipuncture by a shoulder in the recessed section or by some other surface feature on the interior of the catheter hub, such as a guard engagement surface on the interior of the catheter hub. Optionally or alternatively, the distal edges of one or both stabilizers 158 can provide a restraining surface to prevent premature activation of the needle guard 130 during needle retraction before the needle tip has moved proximal to the two distal walls of the needle guard. In addition to a distal edge, each stabilizer 158 can have a proximal edge. When the needle guard 130 is held by one or both distal edges of the stabilizers 158, the interior surface of the catheter hub 102 can omit an engagement mechanism or mechanisms for accommodating the needle guard elbows. In an example, the needle guard 130 can engage with the distal edges of one or both of the two stabilizers 158 and can engage with an engagement feature formed on the inside of the catheter hub, such as a groove, lip, or shoulder.

[0391] In some examples, one or both stabilizer elements 158 can have a slit or channel, thus dividing the arcuate stabilizing or stabilizer element into two segments. Even when one or both stabilizer elements 158 have a slit, the stabilizing ring 162, which can be a discontinuous ring, as well as a ring with one or more slots formed therethrough, can still provide a retention structure to interact with the two elbows to prevent premature activation of the needle guard 130 during needle retraction before the needle tip has moved proximal to the two distal walls.

[0392] The retention surfaces of the stabilizer elements, such as the distal edges, may be referred to as restriction points, choke gaps, or choke points because they provide a rigid structure that prevents the needle guard from moving proximally unless or until the needle guard first acts radially, collapses, reducing its radial profile, and then slips proximally of the choke point. In an example, a choke point may restrict one or two elbows of the needle guard from moving proximally until the elbows deflect to reduce the radial profile of the needle guard. In an example, once the radial profile of the needle guard is reduced, the needle guard may slip through the bore formed by the stabilization ring 162 from a position distal to the stabilization ring to a position proximal to the stabilization ring.

[0393] The valve opener 122 can be made from a metal or plastic material. If made from a metal material, the valve opener 122 can be formed by bending or deep drawing, and the arc-shaped cross-section of the actuating element 152 can provide additional rigidity when pressed by a male luer. Each actuating element 152 can include at least two longitudinal edges, and ribs can be provided along one or both of the longitudinal edges to further add structural rigidity. One or more gaps can be provided between any two actuating elements 152. The gaps can provide space for fluid flow through the gap or space, such as during blood flushing or IV infusion. The gaps between the actuating elements 152 can form a retention space to accommodate the tip protector 122.

[0394] In some embodiments, as described further below, most or most if not all of the tip protector 130, in the ready-to-use position, fits within the retention space formed by the body of the actuator 122 between the two plunger elements 152. This allows the catheter hub 102 to be more compact, as less longitudinal space is required within the hub to fit both the valve actuator 122 and the tip protector 130 longitudinally in-line, or when the two only partially overlap axially.

[0395] If the tip protector 130 engages only the distal edge of the relief passage or through passage 160 in the actuator 122, no deformation or change in diameter is required on the inner wall of the catheter hub, and the tip protector 130 can be positioned further proximally within the female Luer tapered section while still complying with the International Luer standard for conical fittings, further shortening the overall length of the catheter hub 102.

[0396] An exemplary valve 120 shown according to aspects of the present disclosure can be used with catheter assemblies and hubs having a female luer, as described herein. Referring to FIG. 3 and further to FIG. 4, FIG. 4 illustrates the catheter or needle assembly 100 of FIGS. 1-3, where along a longitudinal cross-section, the present valve 120 can have a first portion 168 having a first thickness and a second portion 170 having a second thickness, measured perpendicular to a mid-plane passing through a diameter of the valve, that is less than the first thickness. The second portion 170 having the second thickness can have a substantially constant thickness, but can optionally include a thickness that varies along the cross-section of the valve in the second portion.

[0397] In examples, the second portion 170 is formed by recessing the distal surface of the valve, the proximal surface of the valve, or both surfaces, while the first portion 168 maintains substantially the full width or thickness of the valve between its proximal and distal surfaces. In examples, the recess in the second portion 170 can embody an undercut formed in the valve. As shown in FIG. 3 , the surface appearance between the first and second portions 168, 170 can resemble a three-leaf clover. The three-leaf clover can be present on the distal surface, the proximal surface, or both surfaces of the valve 120. In other examples, the appearance of the proximal and / or distal surfaces can have various contours, such as a three-leaf clover can have various curves, lines, and edge contours. In examples, slits are formed through the thinner second portion 170 of the valve to form valve flaps between adjacent valve slits. In some examples, there can be two or more slits forming one or more valve flaps. For example, the first and second portions 168, 170 of the valve 120 can form a four-leaf clover, which can have four slits and four valve flaps. Preferably, the valve can have three slits and three valve flaps. The slits begin at approximately the center of the valve and extend radially outward toward the valve's outer periphery, but can extend short of the valve's outer periphery. The length of each slit can be varied to form different sized valve flaps. The slit length can be selected to provide desired valve flaps and valve flap deflections when pressed by the nose section 150 of the valve opener 122, such as when pressed by the actuating distal end of the valve opener 122.

[0398] Valve 120 may be integrally formed from a single material. Alternatively, valve 120 may be formed from different materials in various portions of valve 120, such as for reasons of increased stiffness or flexibility. The valve may be made from a medical-grade elastomer or thermoplastic elastomer (TPE). These and other aspects of valve 120 may be made according to the example valves disclosed in PCT Application No. PCT / EP2017 / 070934, published as PCT Publication WO2018 / 033626(A1), the contents of which are expressly incorporated herein by reference as if fully set forth.

[0399] In this embodiment, the locking device 124 is a retaining ring having an annular wall structure with an outer surface and an inner surface forming a bore. In other embodiments, the locking device for securing the valve inside the catheter hub may be a retaining skirt, O-ring, or spring. The valve 120, valve opener or valve actuator 122, and locking device 124 can vary in shape, style, and characteristics while otherwise performing the functions described herein. The valve 120 can be the valve disc described above having at least one slit forming at least two flaps. As shown, the valve disc can have three or more slits (as shown) forming three or more flaps, and the surface of the disc can have surface features and thicknesses that vary along the cross-section of the valve disc. In another example, the valve can have a valve disc and a skirt extending proximally from the proximal surface of the valve disc.

[0400] FIG. 4 shows a partial cross-sectional view of a catheter assembly or needle device 100 that may embody the catheter assembly of FIG. 3 in an assembled state. The catheter assembly 100 is shown without the needle 108, catheter tubing 104, and a portion of the needle hub 106, and without the vent plug that would normally be located at the proximal opening of the needle hub. The catheter hub 102 is shown having a valve 120, a valve opener 122, a locking device 124, and a needle guard 130 disposed inside an interior cavity 123 of a hub body 126, which may be a unitary hub body having a distal end with a catheter tubing extending therefrom and a proximal opening with a female luer. As shown, the valve 120 is disposed distal to the locking device 124, a portion of the valve opener 122 is disposed within the bore of the locking device 124, and the needle guard 130 is disposed within a retention space 174 of the valve opener 122.

[0401] In the example, the interior of the catheter hub 102 is provided with one or more shoulders or ledges 176a, 176b, 176c, which can be understood as structural lips or stops formed on the interior wall. The one or more shoulders, generally referred to as shoulders 176, can provide an engagement or stop point for a component disposed within the interior cavity 123 to prevent the component from moving or falling out of the interior of the catheter hub. As shown, the valve 120 can be disposed in the annular groove and can abut against one of the shoulders 176a to prevent proximal displacement of the valve 120. As shown, the valve 120 also abuts a shoulder 173 (FIG. 5) of the catheter hub 102 distal to the valve to prevent distal displacement of the valve's periphery.

[0402] A retainer or retaining ring 124 in the form of an annular ring is positioned adjacent to the valve 120, and its proximal end abuts another shoulder 176b within the catheter hub's internal cavity 123 to prevent proximal displacement of the retainer 124. As shown, the retainer 124 has a beveled, triangular, or angled cross-section with the higher bevel at the distal end tapering as it extends proximally. The retainer 124 may be made from a medical-grade plastic material, such as by plastic injection molding. Alternatively, the retainer may be made from a metal material, such as by stamping and then forging, pressing, or machining. Alternatively, the retainer 124 may be made from an elastomeric material, such as an O-ring, to provide a proximal force to the valve opener when compressed, deformed, or biased between the valve opener nose section 150 and the distal inner wall of the catheter hub.

[0403] The distal end of the retainer 124, the higher portion of the bevel, abuts the proximal surface of the valve 120, and the proximal end of the retainer 124, the narrower portion of the bevel, abuts one of the shoulders 176b of the internal cavity 123. This arrangement of the retainer 124 can help retain the valve 120 from proximal displacement within the catheter hub. In some instances, the valve 124 can be secured or supported within the catheter hub by the retainer without relying on a separate shoulder 176 abutting the proximal edge of the valve. In examples, the retainer 124 can have slight interference when initially entering the proximal open end of the catheter hub and can have a dimensional fit or a slight interference fit with the catheter hub in the final installed position shown. In still other instances, the retainer 124 can be retained within the catheter hub and the valve 120 can be secured from proximal displacement solely by an interference fit with the catheter hub, without a separate shoulder abutting the retainer's proximal end.

[0404] The locking device can be a retaining ring 124 having a generally triangular cross-section, as shown. In other examples, the cross-section can have a different shape. As described further below, the retaining ring 124 or locking device can also function as a return mechanism to assist the valve opener 122 in returning or moving from a distal position to a proximal position. For example, when the valve opener 122 is advanced by the male luer tip to open the slit in the valve 120, the retaining ring 124 can assist in returning the valve opener to the proximal position after the male luer tip is removed from the proximal opening of the catheter hub. In some examples, the locking device 124 simply secures the valve from proximal movement while the valve's resilience returns the valve opener from the distal position to the proximal position. In some examples, the cross-section of the locking device can be selected to be a shape other than triangular. In other examples, the molded cross-section of the retaining ring 124 can be formed as a retaining skirt and become part of the valve. For example, the valve 120 can be formed with both the valve disc and the retaining skirt, such as by being integrally or integrally formed therewith.

[0405] In the illustrated example, the length of the valve opener 122 is selected so that the actuation end 180 at the distal end of the nose section 150 just contacts the valve disc of the valve, and the proximal edges 182 of the two plunger elements 152 just contact the nose section 184 of the needle hub 106. In other examples, the actuation end 180 may be slightly spaced from or slightly pressed against the valve disc, but not substantially deflect the valve flaps to allow them to close the valve slit. Note that the valve flaps of the valve will deflect slightly distally due to the presence of the needle.

[0406] In the example, the retention space 174 of the valve opener 122 is sized and shaped to accommodate the needle guard 130. Referring to both Figures 4 and 5, Figure 5 shows the needle device 100 of Figure 4 rotated 90 degrees, with the needle guard 130 positioned between the two plunger elements 152 of the valve opener 122. The needle guard 130, having a proximal wall 140 and two arms 188, 190 disposed distally of the proximal wall 140, is positioned within the retention space 174 of the valve opener 122, with the two elbows 188a, 190a of the needle guard 130 disposed distally of the two stabilizing elements 158. The elbows are located between the distal walls 188b, 190b and the elongated arm portions of the arms. As the needle 108 retracts proximally, the two elbows 188 a, 190 a are stopped from moving proximally beyond the two distal edges 158 a, 158 a of the two stabilizing elements 158, which act as choke points. As previously mentioned, the radial dimension of the needle guard at the two elbows 188 a, 190 a is greater than the inner dimension of the stabilizing ring 162 and is therefore physically stopped by the distal edges of the two stabilizer elements 158. After successful venipuncture, the needle is removed from the catheter tube and the catheter hub and needle tip move proximal to the two distal walls 188 b, 190 b of the needle guard, which allows the two arms 188, 190 of the needle guard to move inward or fold, reducing the radial dimension at the two elbows. At approximately the same time, the change in contour 142 (FIG. 2) near the needle tip abuts the periphery defining the opening 192 in the needle guard's proximal wall 140, and further retraction of the needle causes the needle guard 130 to be removed along with the needle 108.

[0407] In this example, the interior of the catheter hub 102 is enlarged near the two elbows 188a, 190a. For example, the inner diameter of the catheter hub at the elbows is larger than the inner diameter of the catheter hub at the proximal wall 140 of the catheter hub. This space can be incorporated to provide an escape path or additional space for the needle guard in the standby position. That is, when an escape path is incorporated, it provides space for the two arms 188, 190 so that the arms are not compressed or biased inward to the same extent at the elbows 188a, 190a in the ready-to-use position compared to when the escape path is not provided. This reduces the drag between the needle shaft and the two curved ends of the two tip walls 188b, 190b during needle retraction after needle insertion.

[0408] 4 , the valve opener 122 is retained within the internal cavity 123 of the catheter hub 102 and displacement from the proximal opening 136 can be limited by providing at least one side protrusion 154 on the valve opener to interact with one of the shoulders 176 in the internal cavity 123. The cross-sectional dimension of the valve opener at the at least one protrusion 154 is larger than the cross-sectional dimension at the shoulder of the catheter hub 102, thereby presenting a physical stop to prevent proximal displacement of the valve opener 122 from the proximal opening 136 of the catheter hub. As shown, if the valve opener 122 moves proximally, such as by the needle guard elbows 188 a, 190 a pushing proximally against the distal edges 158 a of the two stabilizing elements 158 during needle retraction but before the needle tip moves proximally of the two distal walls, the protrusion 154 can abut the shoulder 176 c to limit the overall proximal movement. In the example, the valve opener 122 may be provided with two protrusions 154, one on each actuation element 158, to interact with the shoulder 176c, which may be annular in configuration.

[0409] 6 is a cross-sectional side view of the needle assembly 100 of FIGS. 4 and 5 with the needle 108, needle guard 130, and needle hub 106 removed from the catheter tube 104 and catheter hub 102, such as after successful venipuncture and placement of the catheter tube 104 within a patient's vein. As shown, the needle guard 130 has been removed along with the needle 108 in the manner described above. After removal of the needle 108, the plurality of valve flaps 194 may return to a recoiled or relaxed state, closing the slits 196 and restricting proximal and distal flow through the valve 120. In the illustrated state, the actuation end 180 of the nose section 150 of the valve actuator 122 is disposed within the bore defined by the locking device 124 but is spaced apart from or does not contact the locking device 124. The tapered surface of the nose section 150 is also spaced apart from the locking device 124. This space or gap allows the valve actuation element 122 to move distally forward when pushed by the male luer tip before striking or contacting the locking device 124. In some instances, the male luer tip abuts against the female luer of the catheter hub, stopping further distal advancement of the male luer tip into the catheter hub before the nose section 150 of the valve actuator contacts or presses against the inside of the locking device 124. The actuation end 180 is shown contacting the proximal surface of the valve 120. In other instances, the actuation end 180 can be spaced from the proximal surface of the valve 120. The actuation end 180 can be spaced from the valve by approximately the same distance as the gap between the protrusion 154 on the valve opener 122 and the inside shoulder of the catheter hub 102.

[0410] As shown, the nose section 150 of the valve opener 102 has a proximally increasing taper that is spaced apart from the tapered surface of the beveled section 198 of the fixation device 124. The size and shape of the nose section 150 can be trimmed to contact or space apart from the beveled section 198 of the fixation device 124. In examples, the nose section 150 can incorporate a resilient section or band, such as an elastic band, strip, or strip, that can create a slight interference when the valve opener 122 advances distally to open the valve 120 and the nose section abuts the fixation device, as described further below with reference to FIG. 7. If the longitudinal axis of the catheter hub 102 is considered the X-axis and the Y-axis is orthogonal to the X-axis, the shape of the nose section 150 is selected to deflect the valve flap 194 distally and generate a force vector having both an X-component and a Y-component. A force vector acting in the X direction, an X-component force vector, or a proximal force vector can be utilized to facilitate return of the valve opener 102 from a distal position in which the actuation end 180 is forced into the valve 120, deflecting the valve flap 194, to the proximal position as shown. As discussed further below, the valve flap of the valve 120, or both the valve flap and the locking device 124 of the valve, can generate a force vector against the nose section 150 of the valve opener 122 to return the valve opener from the distal position to the proximal position. In yet other examples, other portions of the valve other than the valve flap can apply a proximal force to move the valve from the distal position to the proximal position.

[0411] In the example, the region or section within the catheter hub 102 adjacent the open proximal end 136 is a female luer 204, which is understood to have a structure formed in accordance with the ISO standard for female luers. The proximal edges 182 of the two plunger elements 152, 152 of the valve opener 122, which are shown recessed from the proximal open end 136 of the catheter hub 102, are disposed within the female luer 204. Thus, when the male luer tip is inserted into the female luer, the male luer tip pushes the two plunger elements 152 distally, forcing the valve opener 122 into the valve 120 and opening the valve.

[0412] Figure 7 is a cross-sectional side view of the assembly of Figure 6 with a male Luer tip 200 inserted into the open proximal end 136 and advancing the valve opener 122 into the valve 120 to open the valve flap 194 and open fluid communication between the male Luer tip 200 and the lumen of the catheter tubing 104. In practice, the male Luer tip 200 may be the syringe tip or male tip of an IV infusion line or administration set attached to an IV bag. In the configuration of Figure 7, fluid may be withdrawn or aspirated proximally from the catheter hub 102 or injected distally through the catheter tubing. Although not shown, the male Luer tip 200 may have a threaded collar for engaging a lug or external threads 202 on the catheter hub 102 to further maintain the valve actuator 122 in a distal position and open the valve 120.

[0413] In an example, the valve opener 122 is configured to move distally when advanced by the male luer tip 200. The amount or distance that the valve opener 122 moves distally should be sufficient for the actuating end 180 and nose section 150 to deflect the valve flap 194 distally, opening the slit in the valve 120 and opening fluid communication between the male luer tip 200 and the catheter tube 104. In the example shown, the actuating end 180 of the valve opener 122 moves distally of the valve flap, which is compressed between the interior of the catheter hub 102 and the tapered surface of the nose section 150, or the valve flap is deflected or deformed distally by the nose section of the valve opener, with or without compression. In other examples, the actuating end 180 moves a distance equal to or short of the end of the valve flap 194, still opening the valve flap and allowing free flow in both the proximal and distal directions.

[0414] When the male Luer tip 200 is withdrawn, such as when changing an IV fluid bag attached to the male Luer tip 200, the distal force exerted by the male Luer tip 200 on the proximal edges 182 of the two plunger elements 152 is removed or stopped, and the female Luer 204 is not occupied by any external object. This allows the valve opener 122 to return to its proximal position, now retracted by the male Luer tip. In the example, the resilience of the valve 120 allows the valve flap 194 to return to a more relaxed state, such as moving to the position shown in FIG. 6. This resilience of the valve flap 194 and the shape of the nose section 150 of the valve opener 122 allow the valve flap to impart a force vector to the nose section 150, as shown in FIG. 6, to move the valve opener 122 from the distal position shown in FIG. 7 to the proximal position. The force vector generated by each of the valve flaps 194 in the nose section 150 of the valve opener 122 as the valve flap rebounds includes a force component generally parallel to the longitudinal axis of the catheter hub, also referred to herein as the X-component force vector or the proximal force vector. Thus, the X-component force vector generated by the valve flap can move the valve opener 122 from a distal position, where the actuation end 180 and nose section 150 deflect the valve flap of the valve distally to open the valve, to a proximal position, where the actuation end and nose section no longer deflect the valve flap. In some examples, the nose section 150 of the valve actuator 122 is provided with a shaped profile having distinct lines or curves, such as by forming recesses in the nose section with distinct contoured lines or curves. One or more surfaces of the contoured nose section can then be used to compress the valve 120. The valve can be compressed to create multiple compression or bias points. For example, the contoured nose section can compress the valve flaps, or the valve opener can be structured to deflect the valve flaps distally, so that the valve flaps generate a force vector against the nose section when the male luer tip is removed and the valve flaps are allowed to return to their relaxed state.The contoured nose section can also axially compress, deform, or bias a portion or portions of the valve against the distal shoulder, such that the valve exerts an opposing axial return force when the male luer tip is removed, as further described below with reference to Figures 31-32B. Thus, when the valve is compressed, deformed, biased, or deflected to spring back by the contoured nose section alone, or by multiple point sections of the contoured nose section, the valve alone can push the valve opener proximally upon removal of the male luer tip.

[0415] In some examples, interference between the beveled section 198 of the locking device 124 and the nose section 150 generates a force vector on the nose section 150 of the valve opener 122 that includes an X-component force vector. For example, the valve opener can incorporate an elastic band or one or more elastic strips that are compressed or biased by the locking device when the nose section is advanced into the locking device by the male luer tip. Thus, in addition to the return force generated by the valve flap of the valve 120 on the nose section 150 of the valve opener 122, the interference between the locking device 124 and the nose section 150 of the valve opener generates a return force that contributes to the proximal movement of the valve opener 122 from a distal position where the actuation end and nose section deflect the valve flap of the valve distally to a proximal position where the actuation end and nose section no longer deflect the valve flap. In the proximal position, the valve opener 122 is located inside the catheter hub in a manner generally represented by FIG. 6, which shows a valve flap generally closing a slit to stop or restrict proximal and / or distal fluid flow. In some examples, the nose section can be provided with a recess, and an elastic strip or band can be placed within the recess to form a valve opener with a rigid section and a more flexible section. In other examples, the nose section is co-molded or insert molded with an elastomeric strip or band. An elastic strip or band incorporated into the nose section can allow the valve actuator to press against a rigid portion or component of the fixation device to generate a return force after removal of the male luer tip.

[0416] Aspects of the present invention may therefore be understood to include a catheter assembly or needle device comprising a catheter hub having a distally extending catheter tube, the catheter hub comprising a body having an outer surface and an inner surface forming an internal cavity. A valve and valve opener may be disposed within the internal cavity. In an example, a locking device having a body forming a bore is disposed proximal to the valve. A valve flap of the valve may provide a proximal return force to return the valve opener from a distal position to a proximal position. Additionally or alternatively, the valve may be axially compressed or biased against a distal shoulder, the valve providing an axially directed force against the nose section to return the valve opener upon removal of the male luer tip. In an example, the locking device can provide interference with the valve opener, such as an elastomeric portion of the valve opener, when the valve opener is advanced distally by the male Luer tip to open a valve flap of the valve, and the interference can provide a force vector, including a force vector extending approximately parallel to the longitudinal axis of the catheter hub, to return the valve opener from a distal position to a proximal position when the male Luer tip is removed from the catheter hub. In another example, the nose section is spaced apart from or does not abut the locking device, and the return force is provided solely by the valve. The locking device can further provide a locking function to secure the valve within the catheter hub and prevent the valve from inadvertently being displaced proximally so as to be removed from the catheter hub. The catheter hub can include the catheter hub, the valve, the valve opener, the locking device, and a needle protruding through the catheter tube. The needle can be attached to the needle hub at its proximal end.

[0417] The valve can undergo multiple actuation cycles because the valve opener can move to a distal position toward the valve to open two or more valve flaps, such as when pressed by the male luer tip, and return to a proximal position when the male luer tip is removed to allow the valve flaps to relax or close to closure at the slit. In examples, the valve can undergo two or more actuation cycles. For example, the valve can undergo at least three cycles, at least four cycles, at least five cycles, or more. Each actuation cycle can comprise movement of the valve opener toward and away from the valve to deflect the valve flaps.

[0418] 8 and 9, a catheter or needle assembly 100 is provided in accordance with a further aspect of the present invention, shown with the needle and needle hub removed, but which may have the same needle and needle hub as described elsewhere herein. The needle assembly 100 may also incorporate a needle guard as described elsewhere herein.

[0419] In this embodiment, the catheter hub 102, catheter tube 104, valve 120, valve opener 122, and fixation device 124 may be similar to those shown with reference to Figures 6 and 7, with a few exceptions. In this embodiment, the proximal surface of the valve 120 is provided with an annular slit or channel 206. As shown, the annular slit 206 is recessed from the outer periphery of the valve. The annular slit 206 may be provided in the first portion 168 of the valve (Figure 3), which is a thicker portion of the valve than the second portion 170 of the valve. As described further below, the annular slit 206 may be provided to receive the distal end of the fixation device 124.

[0420] In this embodiment, the fixation device 124 is a retaining ring having a distal end 210 that protrudes into the annular slit 206. In an example, the distal end 210 of the fixation device 124 is pressed into the annular slit 206 and held therein by compression or interference. In another example, the fixation device can be held in the annular slit 206 using an adhesive or bonding. In yet another example, the annular slit 206 is an annular channel, and the fixation device is not gripped by both the inner and outer surfaces of the fixation device. For example, the outer surface of the fixation device 124 can press against the annular channel, but is spaced from the annular channel by the inner surface of the fixation device. This alternative configuration allows the fixation device 124 to push the valve 120 outward relative to the catheter hub without also requiring an annular slit to grip both the inner and outer surfaces of the fixation device's distal end.

[0421] The retaining ring 124 of this embodiment can have a length between a proximal end and a distal end, with a wall having a curved body portion of a generally constant wall thickness at the proximal end of the retaining ring. The wall has an interior that forms a bore for accommodating the nose section 150 of the valve opener 122. The wall of the fixation device 124 can be generally cylindrical except for the proximal end. In an example, the proximal end 212 of the retaining ring 124 can have an outwardly curved lip 214 for securing the retaining ring 124 against the inner shoulder 176b of the catheter hub 102. When positioned against the inner shoulder 176b, the fixation device 124 can help secure the valve 120 against proximal displacement. The valve 120 is secured or supported from distal movement by being positioned against the shoulder 173 (FIG. 5) of the catheter hub 102 at the distal surface of the valve.

[0422] The locking device 124 and the nose section 150 of the valve opener 122 are spaced apart from one another in the valve opener proximal position of FIG. 8 . The gap or space between the two provides clearance for the valve opener 122 to move distally and open the valve, e.g., deflect a valve flap, before contacting or striking the locking device 124. In the illustrated state, the actuating end 180 of the nose section 150 of the valve actuator 122 is positioned within the bore formed by the locking device 124 but is spaced apart from or does not contact the locking device. The tapered surface of the nose section is also spaced apart from the locking device. This space or clearance allows the valve actuation element to move forward in the distal direction before striking or contacting the locking device. The actuating end 180 is shown in contact with the proximal surface of the valve 120. In other examples, the actuating end can be slightly spaced apart from the proximal surface of the valve.

[0423] Figure 9 is a cross-sectional side view of the assembly of Figure 8 with a male luer tip 200 inserted into the open proximal end 136 and advancing the valve opener 122 into the valve 120 to open the valve flap 194 and open fluid communication between the male luer tip 200 and the lumen of the catheter tube 104, similar to the embodiment of Figure 7. Although not shown, the male luer tip 200 can have a threaded collar for engaging a lug or external threads 202 on the catheter hub 102 to further maintain the valve actuator 122 in a distal position and open the valve 120.

[0424] In the example, the valve opener 122 is configured to move distally when advanced by the male luer tip 200. The amount or distance that the valve opener moves distally should be sufficient to cause the actuating end 180 and nose section 150 to deflect the valve flap 194 distally, opening the slit and opening fluid communication between the male luer tip 200 and the catheter tube 104. In the example shown, the actuating end 180 of the valve opener 122 moves distally of the valve flap, which is either compressed between the interior of the catheter hub 102 and the tapered surface of the nose section 150, or the valve flap is distally deflected or deformed by the nose section of the valve opener, with or without compression. As shown, the actuating end 180 moves equal to or short of the end of the valve flap 194, but a distance that opens the valve sufficiently for free flow in both directions.

[0425] In the illustrated example, the curved lip 214 acts like a biasing member. Thus, when the nose section 150 is pressed against the curved lip 214 at the proximal end of the fixation device, the curved lip 214 presses against the nose section, such as against an elastomeric band, strip, or section incorporated into the nose section, and imparts a pair of component forces or force vectors to the nose section 150 of the valve opener, including a force acting generally parallel to the longitudinal axis of the catheter hub 102. In another example, the nose section moves away from the fixation device when the male luer tip abuts the female luer of the catheter hub. The valve in that situation can provide the return force necessary to return the valve opener from the distal position to the proximal position.

[0426] When the male Luer tip 200 is withdrawn, such as when changing an IV fluid bag attached to the male Luer tip 200, the distal force exerted by the male Luer tip 200 on the proximal edges 182 of the two plunger elements 152 is removed or stopped, and the female Luer 204 is not occupied by an external object. This allows the valve opener 122 to return to its proximal position and be retracted by the male Luer tip. In an example, the resilience of the valve 120 allows the valve flap 194 to return to a more relaxed state, such as moving to the position shown in FIG. 8. This resilience of the valve flap 194 and the shape of the valve opener's nose section 150 allow the valve flap to impart a force vector to the nose section 150 to move the valve opener 122 from the distal position shown in FIG. 8 to the proximal position shown in FIG. 9, as generally shown in FIG.

[0427] Accordingly, aspects of the present invention are understood to include a catheter assembly or needle device comprising a catheter hub having a distally extending catheter tube, the catheter hub comprising a body having an outer surface and an inner surface forming an internal cavity. A valve and valve opener can be disposed within the internal cavity. In an example, a locking device having a body forming a bore is disposed proximal to the valve and secures the valve inside the catheter hub. In an example, the locking device provides interference with the valve opener as the valve opener is advanced distally by the male luer tip. In another example, the male luer tip abuts the female luer of the catheter hub before the nose section of the valve opener contacts the locking device. The valve opener is configured to open a valve flap of the valve. In an example, interference, deflection, biasing, or compression of the valve flap by the valve opener generates stored energy that provides a force vector, including a force vector extending substantially parallel to the longitudinal axis of the catheter hub, to return the valve opener from a distal position to a proximal position when the male luer tip is removed from the catheter hub. The locking device can also provide a return force to the nose section, such as a flexible insert in the valve opener, an elastic band, or a region of the nose section having material to provide additional proximal return force. The locking device can further provide a locking function to secure the valve within the catheter hub and prevent the valve from being inadvertently displaced proximally so as to become dislodged from the catheter hub. The catheter hub can include the catheter hub, the valve, the valve opener, the locking device, and a needle protruding through the catheter tube. The needle can be attached to the needle hub at the proximal end of the needle.

[0428] The valve can undergo multiple actuation cycles because the valve opener can move to a distal position toward the valve, such as when pressed by a male luer tip, to open two or more valve flaps, and the male luer tip can be removed to allow the valve flaps to relax or close until they close at the slit. In examples, the valve can undergo two or more actuation cycles. For example, the valve can undergo at least three cycles, at least four cycles, at least five cycles, or more. Each actuation cycle can include movement of the valve actuator toward and away from the valve to deflect the valve flaps.

[0429] 10 and 11, a catheter or needle assembly 100 is provided in accordance with a further aspect of the present invention, which may have the same needle and needle hub as described elsewhere herein, although the needle and needle hub are shown removed. The needle assembly 100 may also incorporate a needle guard 130, as described elsewhere herein.

[0430] In this embodiment, the catheter hub 102, catheter tube 104, valve 120, valve opener 122, and locking device 124 may be similar to those shown with reference to Figures 6-9, with a few exceptions. In this embodiment, the locking device 124 is a retaining ring having a distal end 210 with an outwardly curved lip forming a flange 216 for abutting or contacting the proximally-facing surface of the valve 120, and a wall or body that tapers from a first dimension to a second, larger dimension in the proximal direction. Thus, the wall in this embodiment resembles a beveled surface that tapers as it extends proximally, with a higher portion of the bevel distally. While this locking device 124 has a beveled or angled surface similar to that of Figures 6 and 7, it does not have the same solid cross-section.

[0431] The proximal end 212 of the fixation device includes a proximal edge 218 that can be sized to abut or press against the inner shoulder 176b of the catheter hub 102. When positioned against the inner shoulder 176b, the fixation device 124 can help secure the valve against proximal displacement. Alternatively, if there is a slight interference fit between the proximal and / or distal ends of the fixation device and the inner diameter of the catheter hub 102, no shoulder is needed to secure the fixation device 124 therein. The valve 120 is secured or supported from distal movement by being positioned against the shoulder 173 (FIG. 5) on the distal surface of the valve.

[0432] The retainer 124 and the nose section 150 of the valve opener 122 are spaced apart from one another in the valve opener proximal position of FIG. 10 . The gap or spacing between the two provides clearance for the valve opener 122 to move distally and open the valve, such as to deflect a valve flap, before closing the gap and contacting or impacting the retainer 124. In the illustrated state, the actuating end 180 of the nose section 150 of the valve actuator 122 is positioned within the bore formed by the retainer 124 but is spaced apart from or not in contact with the retainer. The tapered surface of the nose section is also spaced apart from the retainer. This spacing or gap allows the valve actuation element 122 to move forward in the distal direction before impacting or contacting the retainer 124. The actuating end 180 of the valve actuator is shown in contact with the proximal surface of the valve 120. In other examples, the actuating end can be slightly spaced apart from the proximal surface of the valve.

[0433] Figure 11 is a cross-sectional side view of the assembly of Figure 10 with a male luer tip 200 inserted into the open proximal end 136 and advancing the valve opener 122 into the valve 120 to open the valve flap 194 and open fluid communication between the male luer tip 200 and the lumen of the catheter tube 104, similar to the embodiment of Figures 7 and 9. Although not shown, the male luer tip 200 can have a threaded collar for engaging a lug or external threads 202 on the catheter hub to maintain the valve actuator in a distal position and open the valve.

[0434] In examples, the valve opener 122 is configured to move distally when advanced by the male luer tip 200. The amount or distance the valve opener moves distally should be sufficient for the actuation end 180 and nose section to distally deflect the valve flap 194, opening the slit and opening fluid communication between the male luer tip 200 and the catheter tube 104. In the illustrated example, the actuation end 180 of the valve opener 122 moves distally of the valve flap, which is compressed between the interior of the catheter hub and the tapered surface of the nose section 150, or the valve flap is distally deflected or deformed by the nose section of the valve opener, with or without compression. In some examples, the nose section of the valve actuator is provided with a shaped contour having distinct lines, such as by forming recesses in the nose section with distinct contour lines or curves. One or more surfaces of the contoured nose section can then be used to compress the valve, causing the valve to rebound and urge the contoured nose section proximally, returning the valve actuator to the proximal position. For example, the one or more contoured surfaces can compress, deform, or bias the valve axially against the distal shoulder so that the valve provides an axially directed return force upon removal of the male luer tip. In some examples, the actuation end 180 is equal to or short of the end of the valve flap 194, but travels a distance sufficient to open the valve for free flow in both directions.

[0435] In the illustrated example, the ramp acts like a biasing member. For example, when the nose section 150 is pressed against the ramp structure of the locking device 124 by the male luer tip, the locking device exerts an opposing biasing force on the nose section 150 of the actuator, such as against a flexible section located in the nose section. Thus, when the nose section 150 is pressed against the ramp in the interference, the ramp of the locking device 124 imparts a pair of force components or force vectors to the nose section, including a force acting generally parallel to the longitudinal axis of the catheter hub. In some examples, the nose section is spaced from the locking device when the male luer tip abuts the female luer of the catheter hub.

[0436] When the male Luer tip 200 is withdrawn, such as when changing an IV fluid bag attached to the male Luer tip 200, the distal force exerted by the male Luer tip 200 on the proximal edges 182 of the two plunger elements 152 is removed or stopped, and the female Luer 204 is not occupied by any external object. This allows the valve opener 122 to return to its proximal position, now retracted by the male Luer tip. In the example, the resilience of the valve 120 allows the valve flap 194 to return to a more relaxed state, such as moving to the position shown in FIG. 10 . This resilience of the valve flap 194 and the shape of the valve opener's nose section 150 allow the valve flap to impart a force vector to the nose section 150 to move the valve opener 122, as generally shown in FIG. 10 , from the distal position shown in FIG. 11 to the proximal position shown in FIG. 12 . Additionally, as described above, the ramp structure of the locking device 124 exerts a return force on the nose section, such as on a flexible section located in the nose section, to move the valve opener 122 proximally, returning the valve opener to essentially the position shown in FIG. 10.

[0437] Accordingly, aspects of the present invention are understood to include a catheter assembly or needle device comprising a catheter hub having a distally extending catheter tube and a needle attached to the needle hub, the needle extending through the catheter hub and the catheter tube. The catheter hub comprises a body having an outer surface and an inner surface forming an internal cavity. A valve and a valve opener can be disposed inside the internal cavity. In an example, a locking device having a body forming a bore is disposed proximal to the valve and secures the valve within the catheter hub. The locking device can provide interference with the valve opener when the valve opener is advanced distally with the male luer tip to open a valve flap of the valve, and the interference adapts vectors, including a force vector extending substantially parallel to the longitudinal axis of the catheter hub, to return the valve opener from a distal position to a proximal position when the male luer tip is removed from the catheter hub. The locking device can further provide a locking function to secure the valve within the catheter hub and prevent the valve from being inadvertently displaced proximally, such that the valve does not become dislodged from the catheter hub and provide a return force to the valve opener.

[0438] The valve can undergo multiple actuation cycles because the valve opener can move to a distal position within the valve to open two or more valve flaps, such as when pressed by a male luer tip, and return to a proximal position when the male luer tip is removed to allow the valve flaps to relax or close to closure at the slit. In examples, the valve can undergo two or more actuation cycles. For example, the valve can undergo at least three cycles, at least four cycles, at least five cycles, or more. Each actuation cycle can include movement of the valve actuator toward and away from the valve to deflect the valve flaps.

[0439] FIGS. 12, 13, and 14 show cross-sectional side, front, and isometric views of three different fixation devices 124 that can embody a retaining ring. These retaining rings 124 can be used with the catheter assemblies described elsewhere herein. FIG. 13 also shows a valve 120 having a retaining ring 124. Referring initially to the retaining ring or fixation device 124 of FIG. 12, the retaining ring has a ring body 220 having a first or distal end 210 and a second or proximal end 212. The ring body 220 has a generally constant outer dimension along the length of the ring body, which is generally cylindrical. On the inside, the ring body 220 has a wall thickness that decreases in dimension from the distal end to the proximal end, with the inner diameter at the distal end being smaller than the inner diameter at the proximal end. The inner surface of the ring body 220 forms a bore configured to receive a valve opener and compress or bias the nose section of the valve opener to apply the pair of force components as described above. In another example, the locking device is sized and shaped to space away from the nose section when the male luer tip abuts the female luer of the catheter hub. In an example, the locking device 124 is formed from a medical-grade plastic material. In another example, the locking device can be formed from a medical-grade elastomeric material or a thermoplastic elastomer material (TPE). Alternatively, the locking device may be made from a metal material, such as by stamping and bending or machining.

[0440] As shown in FIG. 12 , the cross section of the ring body 220 has a beveled shape or slope on the inner surface of the ring body. Furthermore, the slope has a constant slope. In other examples, the slope of the slope is not constant. For example, there may be one or more bumps or inflection points to create a non-linear profile. Whether or not it has a constant slope, the profile can be selected to create compression, bias, or interference with the nose section of the valve opener 122, such as a flexible section of the nose section, when the valve opener is pressed against the fixation device 124. The compression, bias, or interference with the valve opener 122 is configured to create a force vector that includes a force generally parallel to the longitudinal axis of the valve opener. This, in turn, aids in moving the valve opener from a distal position to a proximal position. The fixation device 124 of FIG. 12 is similar to the fixation device 124 shown in FIGS. 4-7 .

[0441] Figure 13 illustrates a valve 120 and a locking device 124. The locking device 124 can be similar to the locking device described with reference to Figures 8 and 9, and the valve 120 can be similar to the valves described elsewhere herein, such as those referenced in Figures 3-7. As shown in different views in Figure 13, the valve 120 has a valve body 224 having an outer periphery 226, a proximal surface 228, and a distal surface 230. The proximal surface 228, the distal surface 230, or both surfaces 228, 230, have first valve portion 168 and second valve portion 170, as previously described.

[0442] The first and second valve portions 168, 170 form regions or sections of different thickness. Additionally, the two regions can be molded to form contours where slits 234 are incorporated to form the valve flaps 194. As shown, the valve 120 has three slits 234 that converge to a center point and extend outward toward, but are shorter than, the outer periphery 226. In examples, the slits 234 are formed only through the thinner second portion 170 of the valve body 224. In some examples, there can be more or fewer than three slits forming more or fewer valve flaps.

[0443] As previously described, the proximal surface 228 has an annular slit or slot 206 for receiving the distal end 210 of the fixation device 214. In some examples, the annular slot is an annular channel with a gap that does not grip both the inner and outer surfaces of the distal end of the fixation device. The fixation device 124 can be made from a thin-walled cylinder, such as a metal or plastic material, with the proximal end 212 curving outward to terminate in a curved lip 214, as well as rounded corners. The inner surface of the ring body 220 of the fixation device 124 forms a bore that accommodates the valve opener and is configured to compress or bias the nose section 150 of the valve opener 122, such as due to the flexible section of the nose section, to apply a pair of force components, as described above. More specifically, the rounded corners of the curved lip 214 are configured to compress or bias the nose section of the actuator to apply a pair of force components. In another example, the locking device is sized and shaped to space from the nose section when the male luer tip abuts the female luer of the catheter hub. As shown, the curved lip 214 has an outer diameter that is smaller than the outer diameter of the valve 120. Depending on the internal configuration of the catheter hub, the size of the curved lip 214 can be adjusted so that when placed inside the catheter hub, the curved lip abuts or contacts a shoulder to secure the retaining ring within the internal cavity of the catheter hub.

[0444] FIG. 14 illustrates a fixation device 124 similar to the fixation device described with reference to FIGS. 10 and 11. As shown, a ring body 220 has a distal end 210 with a curved lip forming a flange 216 with a generally flat wall for abutting the surface of the valve. The fixation device ring body 220 has a generally constant wall thickness that tapers outward from a first diameter at the distal end just proximal to the flange 216 to a second, larger diameter at the proximal end 212, which has a proximal edge 218 for abutting or contacting an interior shoulder of the catheter hub 102 to retain the fixation device 214 within the catheter hub. The wall has an inclined surface, such as a bevel. The inner surface of the ring body 220 of the fixation device 124 forms a bore configured to receive a valve opener and compress or bias a nose section of the valve opener, e.g., a section of the nose section incorporating an elastomeric strip, band, or material, to apply a pair of force components, as described above. In another example, the locking device is sized and shaped to space away from the nose section when the male luer tip abuts the female luer on the catheter hub.

[0445] FIG. 15 shows different views of a canted coil spring 238 having multiple interconnected coils 240 that are all canted along approximately the same direction. The spring 238 can be made from a metallic material. FIG. 15 shows the canted coil spring 238 in a length 242 configuration, a ring 244 configuration with both ends of the spring length connected, and a side view of a single canted coil 240 that is generally elliptical. Canted coil springs are well known in the spring art, and the coils of a canted coil spring are understood to be radially deflectable or compressible relative to the ring centerline, which is understood to project into and out of the page at the center of the spring ring 244.

[0446] Referring to FIG. 16 in addition to FIG. 15, the catheter assembly 100 of this embodiment is similar to the catheter assembly of FIGS. 4-11, with a few exceptions. In this embodiment, a canted coil spring 238 configured as a spring ring 244 is incorporated as the fixation device 124. The canted coil spring 238 as the fixation device 124 abuts the proximal surface 228 of the valve 120 and can abut an inner shoulder 176 of the interior 123 of the catheter hub 102 to secure the spring ring within the hub. The proximal surface 228 of the valve 120 can have a mating recess for mating with or supporting the distal arc of the canted coil spring. In the valve opener proximal position of FIG. 16, the coil 240 of the canted coil spring 238 contacts both the inner surface of the catheter hub 102 and / or valve 120 and the nose section 150 of the valve opener 122. In other examples, the coil can be spaced from the surface of the nose section 150, such as not contacting the nose section 150, at a location proximal to the valve opener.

[0447] FIG. 17, similar to FIGS. 7, 9, and 11, illustrates a valve opener or actuator 122 being pushed distally by a male luer tip 200 of a medical instrument to open or deflect a valve flap of a valve 120. A canted coil spring 238 is shown compressed by the nose section 150 of the valve opener 122. More specifically, each coil 240 of the multiple coils of the canted coil spring 238 is compressed by the nose section 150 of the valve opener 122 because the coils of the canted coil spring compress when squeezed radially about the spring ring centerline. Because the coils tend to uncompress or recoil, the compression of the coils generates a force vector on the nose section 150. The force vector generated against the nose section includes a force that is generally parallel to the longitudinal axis of the valve opener. When the coil is compressed along one side by the valve, or when the coil is compressed along one side by the catheter hub 102, the distal axial force vector is against the proximal valve surface of the valve 120, and the proximal force vector is against the valve opener 122.

[0448] When the male tip 200 is removed, the coil 240 of the spring 238 expands and presses against the nose section 150, exerting a pair of force components that include a proximal axial force vector. This, in turn, helps push the valve opener 122 proximally, returning the valve opener 122 to its proximal position and enabling the valve 120 to return to its closed position, as shown in FIG. 16 . The force generated by the spring ring 244 to move the valve opener 122 after removal of the male Luer tip 200 is added to the force generated by the valve flaps of the valve 120 returning to a relaxed or closed state to close the valve slit after removal of the male Luer tip. The proximal force can return the valve opener 122 from a distal position to a proximal position within the catheter hub 102 after the male medical device is disconnected from the catheter hub 123.

[0449] The valve can undergo multiple actuation cycles because the valve opener can move to a distal position within the valve to open two or more valve flaps, such as when pressed by a male luer tip, and return to a proximal position when the male luer tip is removed to allow the valve flaps to relax or close to closure at the slit. In examples, the valve can undergo two or more actuation cycles. For example, the valve can undergo at least three cycles, at least four cycles, at least five cycles, or more. Each actuation cycle can include movement of the valve actuator toward and away from the valve to deflect the valve flaps.

[0450] Figures 18 and 19 show yet another embodiment of a catheter assembly similar to the catheter assembly 100 of Figures 4-11 and 16-17, with a few exceptions. In this embodiment, the valve 120 is provided with an integrally or integrally formed retaining device 124. In this embodiment, the integrally or integrally formed retaining device 124 may be a retaining skirt section 250 having a generally cylindrical length with an open proximal end having a triangular cross-section, similar to the triangular cross-section of the retaining device 124 of Figures 4-7. The additional surface area of ​​the exterior of the skirt section 250, or retaining device, helps to further retain the valve 120 within the catheter hub 102 when the needle is removed and the valve opener 122 is pushed by the male luer tip 200 (Figure 19) to open the valve 120.

[0451] The skirt section 250 is sized such that when the valve opener 122 is pushed distally by the male luer tip 200, the triangular cross-section of the skirt can be compressed, deformed, or biased by the tapered nose section 150 and the interior of the catheter hub 102 to generate stored energy. As a result, when a male tip 200, such as a male luer on a syringe or the tip of an administration set, is removed, the triangular skirt 250 expands and imparts a pair of component forces to the nose section 150 that include a proximal axial force vector. This, in turn, pushes the valve opener 122 proximally, returning the valve opener 122 from the distal position to its proximal position and helping to return the valve 120 to its closed position, as shown in FIG. 18 .

[0452] The valve can undergo multiple actuation cycles because the valve opener can move to a distal position within the valve to open two or more valve flaps, such as when pressed by a male luer tip, and return to a proximal position when the male luer tip is removed to allow the valve flaps to relax or close to closure at the slit. In examples, the valve can undergo two or more actuation cycles. For example, the valve can undergo at least three cycles, at least four cycles, at least five cycles, or more. Each actuation cycle can include movement of the valve actuator toward and away from the valve to deflect the valve flaps.

[0453] Figures 20 and 21 show yet another embodiment of a catheter assembly similar to the catheter assembly 100 of Figures 4-11 and 16-19, with a few exceptions. In this embodiment, the fixation device 124 is a retaining ring that is provided with an integrally or integrally formed flexible flap or leaf spring 256. Referring to Figure 22, the fixation device 124 is similar to the fixation device described with reference to Figures 10, 11, and 14. As shown, the fixation device has a ring body 220 having a distal end 210 with a curved lip forming a flange 216 with a generally flat wall for abutting the surface of the valve. The ring body 220 has a generally constant wall thickness that tapers outward from a first diameter at the distal end just proximal to the flange 216 to a second, larger diameter at the proximal end 212, which has a proximal edge 218 that can abut or contact an internal shoulder of the catheter hub to retain the fixation device 214 within the catheter hub. Alternatively, the shoulder can be eliminated and the proximal edge 218 can form an interference fit with the inner edge of the catheter hub. The wall surface has an inclined surface, such as a bevel. The inner surface of the ring body 220 of the fixation device 124 forms a bore configured to receive the valve opener and compress or bias the nose section of the valve opener to provide the pair of force components, as described above.

[0454] In this embodiment, two or more leaf springs 256, e.g., three to eight leaf springs 256, may be provided as part of the retaining ring 124 for retaining the valve 120. Alternatively, only one leaf spring may be incorporated. The leaf springs 256 may be formed by forming symmetrical three-sided notches in the ring body 220 and bending the notches inward to form the leaf springs. However, the notches may be other than three-sided notches, such as partial circular notches or multi-sided notches with more than three sides. While a three-sided notch is preferred, any number of notches may be utilized to form the leaf springs on the fastener to generate a force vector on the valve opener. After forming one or more notches, the bending direction of the notches to form the leaf springs is a direction that allows the one or more leaf springs to contact the nose section of the valve actuator.

[0455] The leaf springs 256 can be sized so that when the valve opener 122 is pushed distally by the male luer tip 200, the leaf springs 256 are expanded, outwardly biased, or outwardly biased outward from the centerline of the retaining ring by the tapered nose section 150 of the valve opener 122, as shown in FIG. 21. As a result, when the male tip 200 is removed, the leaf springs 256 compress or unbias, e.g., return to their unbiased state, to impart a pair of component forces to the nose section 150 that include a proximal axial force vector. The biasing force of the leaf springs helps to push the valve opener 122 proximally, returning the valve opener 122 from the distal position to its proximal position and enabling the valve 120 to return to its closed position, as shown in FIG. The force of the leaf spring 256 is added to the force generated by the valve flaps of the valve returning to their relaxed or closed position to close the valve slit after removal of the male luer tip 200. In embodiments having one or more leaf springs, the nose section may be rigid without any flexible section or sections that may optionally be included.

[0456] The valve opener can move to a distal position within the valve to open two or more valve flaps, such as when pressed by a male luer tip, and return to a proximal position when the male luer tip is removed to allow the valve flaps to relax or close to closure at the slit, so that the valve can undergo multiple actuation cycles. In examples, the valve can undergo two or more actuation cycles. For example, the valve can undergo at least three cycles, at least four cycles, at least five cycles, or more. Each actuation cycle can include movement into and away from the valve to deflect the valve flaps.

[0457] Figures 23 and 24 show yet another embodiment of a catheter assembly similar to the catheter assembly 100 of Figures 4-11 and 16-21, with a few exceptions. For example, the catheter assembly may have a detached needle and needle hub, but may be the same as those described elsewhere herein. The catheter hub 102 of Figure 23 may also have a pair of wings 260 extending in opposite directions transverse to the longitudinal axis of the catheter hub 102 at the bottom of the catheter hub. Figure 23 is shown as a top cross-sectional view. The pair of wings 260 can be used by the practitioner, for example, with adhesive tape or an adhesive bandage, to secure the catheter hub to the patient after successful venipuncture. Figure 24 shows the catheter assembly of Figure 23 without the wings. The needle assembly 100 may also incorporate a needle guard 130 (Figure 5), as described elsewhere herein.

[0458] 20-22, the securing device 124 is a retaining ring with an integral or integrally formed flexible flap or leaf spring 256. However, as will be explained further below, the securing device 124 is an eyelet with one or more leaf springs 256 extending from a flange.

[0459] Referring to FIG. 25, a fixation device 124 has an eyelet configuration and can be used with the catheter embodiments of FIGS. 23 and 24. As shown, the fixation device 124 has a flange 216 for a ring body 220 having an outer diameter (OD) and an inner diameter (ID) that form an opening. The flange 216 can have a thickness that can be the thickness of the metal sheet used to form the eyelet. The thickness of the flange and the thickness of the leaf springs can be the same or approximately the same. If the flange and leaf springs are integrally formed from a single metal sheet, the thickness of the flange and the thickness of each leaf spring can be the same within the manufacturing tolerances of the thickness of the metal sheet.

[0460] In the illustrated example, no cylindrical or elongated hollow body extends from the flange 216. Instead, two or more leaf springs 256, e.g., three to eight leaf springs 256, or at least one leaf spring, can extend directly from the flange 216. As shown, four leaf springs 256 are incorporated into the flange 216, with each leaf spring being approximately 90 degrees from the adjacent leaf spring. The leaf springs can be evenly spaced along the flange contour. The leaf springs 256 can extend proximally from the flange ID and terminate at a proximal edge 270. The proximal edge of the leaf springs 256 can be flat or rounded. The leaf springs 256 can be evenly or nearly evenly spaced along the flange ID. Each leaf spring can have a width and length sufficient to generate a component force on the nose section 150 of the valve opener 122, and as further described below, all of the leaf springs 256 can collectively generate a proximal force that can move the valve opener 122 from a distal position to a proximal position after removal of the male luer tip.

[0461] In the illustrated embodiment, a pair of internal notches or slits 262 are provided in the flange ID and on opposite side edges of each leaf spring 256, allowing each leaf spring to have a bend 266 with a bend radius recessed from the flange ID. In other examples, the pair of internal notches 262 can be omitted, and the proximal bend at each bend 266 can be angular (square) or right-angled. Alternatively, when no internal notch or insufficient internal notch is incorporated, the bend radius can extend somewhat inward of the flange ID.

[0462] 23, the retention ring 124, like the other retention rings described elsewhere herein, can be configured to secure the valve 120 within the interior 123 of the catheter hub. In this embodiment, the valve 120 can be supported on its distal surface by an inner shoulder 173, on its proximal surface by a flange 216 of the retention ring 124, and by the inner shoulder 216 proximal of the flange 176b (FIG. 5). Thus, in the position shown, the valve 120 is secured or supported inside the interior of the catheter hub.

[0463] In the illustrated valve opener proximal position, the actuation end 180 of the valve opener 122 can contact or be spaced from the proximal surface of the valve 120. Regardless of whether there is contact between the valve opener 122 and the valve 120 in the valve opener proximal position, the nose section 150 is disposed within the boundary formed by the leaf spring 256 but does not contact the leaf spring 256. For example, in the proximal position of the valve opener 122, the nose section 150 is spaced from both the leaf spring 256 and the flange 216. This spacing allows the valve opener 122 to move distally into the valve 120 and open the valve flap 194 before the nose section 150 contacts the leaf spring 256.

[0464] In an example, the flange 216 incorporates one or more relief passages or notches 268 on the flange OD. The relief passages can reduce interference between the flange OD and the internal bore of the catheter hub during installation of the fixation device 124 within the catheter hub. Each notch 268 can be formed as a straight line intersecting two points on an arc of the flange OD. In some examples, each notch can have a curved shape, a curve and at least one straight cut, or a compound curved cut. In an example, a notch 268 can be provided in each leaf spring 256 on the flange OD. In other examples, the notch can be positioned so as not to align with the location of the leaf spring 256, such as not being directly located on the OD at the same ID location as the leaf spring. In still other examples, there can be more or fewer notches than the number of leaf springs.

[0465] Figure 24 shows the male luer tip 200 advanced distally within the catheter hub to push the valve opener 122 from the proximal position of Figure 23 to a distal position to open the valve flap 194 of the valve 120 and the slit formed therebetween, such as during insertion of a male luer connector of an IV infusion line or administration set. In the distal position, the nose section 150 protrudes through the valve slit and distally deflects the valve flap 194, compressing the valve flap between the nose section and the interior surface of the catheter hub, or the valve flap can be distally deflected or deformed by the valve opener nose section, with or without compression.

[0466] Actuating end 180 is shown distal to distally deflected valve flap 194. In other examples, the actuating end can be located at approximately the same axial position as the deflected valve flap or proximal to the valve flap, yet still allow fluid to flow proximally or distally across valve 120.

[0467] The leaf springs 256 can be positioned on the flange 216 such that when the valve opener 122 is pushed distally by the male luer tip 200, the leaf springs 256 are biased radially outward by the tapered nose section 150 of the valve opener 122, as shown in FIG. 24 . In an example, the proximal edge 270 of each leaf spring 256 is spaced from the interior of the catheter hub when biased by the nose section 150 of the valve opener 122. In another example, the proximal edge 270 can contact the interior surface of the catheter hub. The biased leaf springs 256 and the biased valve flap 194 create stored energy that can subsequently, upon removal of the male luer tip, bias the nose section 150 of the valve opener, moving the valve opener proximally.

[0468] As a result, when the male tip 200 is removed, the leaf spring 256 is contracted or unbiased and applies a pair of force components to the nose section 150 that include a proximal axial force vector. The biasing force of the leaf spring helps push the valve opener 122 proximally, returning the valve opener 122 from a distal position to its proximal position and allowing the valve 120 to return to its closed position, as shown in FIG. 23 . The force of the leaf spring 256 is added to the force generated by the valve flaps 194 of the valve 120 returning to their relaxed or closed position to close the valve slit after removal of the male luer tip 200. In embodiments having one or more leaf springs, the nose section 150 can be rigid without any flexible section or sections that may optionally be included.

[0469] Because the valve opener 122 can move to a distal position within the valve 120, such as when pressed by the male luer tip 200, to open two or more valve flaps 194, and return to a proximal position when the male luer tip 200 is removed to allow the valve flaps to relax or close the slits, the valve 120 can underg...

Claims

1. A catheter assembly (100) comprising: a needle (108) attached to a needle hub (106); a catheter tube (104) attached to a catheter hub (102); a valve (120) and a valve opener (122) disposed inside an interior (123) of the catheter hub (102), wherein the valve (120) comprises a valve disc (121) having a plurality of valve flaps (194); a fixing device (124) that holds the valve (120) inside the interior (123); Equipped with the valve opener (122) having a nose section at a distal end of the valve opener and a proximal section proximal to the nose section, the valve opener (122) being movable from a proximal position to a distal position toward the valve (120) to bias the plurality of valve flaps (194) to an open valve position, and movable away from the valve (120) to allow the valve flaps (194) to return to a closed valve position; In the ready-to-use position, the needle (108) protrudes through the valve (120), the valve opener (122), the catheter hub (102), and the catheter tube (104); a locking device (124) disposed proximal to the valve disc, the locking device comprising a metal ring body with a fluid path, a distal end, a proximal end, and at least one leaf spring having a free end extending proximally inward of the proximal end of the metal ring body, the locking device locking the valve from proximal displacement; the nose section is disposed inside the metal ring body when the needle is in the ready-to-use position; at least one leaf spring spaced from the nose section when the needle is in the ready-to-use position and biasing against the nose section when the valve opener is in the distal, actuated position; Catheter assembly.

2. A locking device (124) is positioned proximally adjacent to or integral with the valve (120) to retain the valve (120) within the catheter hub (102). The catheter assembly (100) of claim 1.

3. The fixation device (124) comprises a flange (216) and at least one leaf spring (256) extending from the flange (216); A catheter assembly (100) according to claim 1 or 2.

4. At least one leaf spring (256) of the fixation device (124) extends proximally from the inner diameter of the flange (216), from a location radially outer of the inner diameter, or from a location radially inner of the inner diameter; A catheter assembly (100) according to any one of claims 1 to 3.

5. a proximal end of at least one leaf spring (256) flares or bends radially outward away from a centerline extending longitudinally through the fixation device (124); A catheter assembly (100) according to any one of claims 1 to 4.

6. The fixation device (124) is an O-ring having a circular cross section, an elliptical cross section, or a polygonal cross section. A catheter assembly (100) according to claim 1 or 2.

Citation Information

Patent Citations

  • Multiple use blood control safety catheter assembly

    JP2017514575A

  • Valved catheter assemblies and related methods

    WO2018033626A1