Valved connector and method for manufacturing the valved connector
The valved connector addresses inconsistent catheter valve specifications by using adjustable elliptical designs with slits and housing components for precise fluid flow control, reducing hemolysis and improving manufacturing efficiency.
Patent Information
- Application Number
- JP2023506348
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-07-31
- Filing Date
- 2021-07-30
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2041-07-30
AI Technical Summary
Current valve designs for catheters have inconsistent specifications, leading to wide tolerances and unnecessary waste, masking obstructions, and causing hemolysis due to pressure variations, with dead zones in fluid flow and incomplete valve clearance.
A valved connector with adjustable specifications, featuring a valve with elliptical shapes and slits that allow precise control of fluid flow, including central and side slits with varying angles and curvatures, retained between housing components for precise crack and maintenance pressures, reducing hemolysis and improving luminal clearance.
The valved connector achieves precise fluid flow control, minimizing tolerance variations, reducing hemolysis, and enhancing manufacturing efficiency with cost savings by allowing easy adjustment during manufacturing.
Smart Images

Figure 0007729872000001 
Figure 0007729872000002 
Figure 0007729872000003
Abstract
Description
[Technical Field]
[0001] FIELD OF THE INVENTION The present invention relates to valve arrangements for adjustable valves, and more particularly to valved connectors and methods of making the same. [Background technology]
[0002] Catheters, such as vascular catheters, can include valves configured to control the infusion and aspiration of fluids through the catheter. Such valves can be manufactured with a variety of specifications, including ranges of fluid pressures, such as crack pressure, maintain pressure, and lumen clearance, in either the infusion or aspiration flow direction. "Crack pressure" refers to the fluid pressure required to open the valve, and "maintain pressure" refers to the fluid pressure required to maintain the valve in an open position.
[0003] Current valve designs, with inconsistent specifications, result in hundreds of thousands of dollars in annual waste costs. For example, currently manufactured valves have a limited range of target specifications, but allow for wide tolerances within the intended range. As a result, two seemingly identical valves can have significantly different crack and sustain pressures during use. These variations can be problematic for users because they can mask the presence of a blood clot or similar obstruction. They can also lead to unnecessary removal and disposal of the catheter system, potentially misleading users into thinking there is an obstruction. Furthermore, there is the issue of hemolysis, which can occur when valve pressure drops during use, resulting in tissue damage. Additionally, some valve designs can result in dead zones in fluid flow and incomplete valve clearance.
[0004] The embodiments disclosed herein relate to valves configured to overcome the aforementioned problems by providing highly adjustable specifications. Such adjustable specifications allow for a wide range of target pressures while minimizing tolerance variations within the target pressure, resulting in more precise valve specifications. These specifications can then be optimized to reduce hemolysis and increase turbulence for improved luminal clearance. Furthermore, the ease with which specifications can be modified during manufacturing can potentially improve manufacturing efficiency and associated cost savings. Summary of the Invention
[0005] Disclosed herein is a valved connector comprising a connector body defining a lumen and a valve configured to control fluid flow through the lumen, the valve having a proximal surface and a distal surface, one of the proximal and distal surfaces defining an elliptical shape, the valve defining a curved lateral axis and a linear transverse axis and including a slit extending from the proximal surface to the distal surface.
[0006] In some embodiments, the valved connector further includes a central slit and a side slit, each extending parallel to a lateral axis, the side slits being offset from the central slit along a transverse axis. The side slits extend through the valve from the proximal surface to the distal surface at an angle relative to the longitudinal axis. The first side slit is inclined in a first direction relative to the longitudinal axis, and the second side slit is inclined in a second direction relative to the longitudinal axis, opposite the first direction. The central slit opens during both injection and aspiration, and the side slits open only during injection. The cracking pressure of the slits is greater than the maintaining pressure of the slits. One of the proximal and distal surfaces of the valve includes a recess surrounding a portion of the slit.
[0007] In some embodiments, the connector body includes a proximal housing component defining a first lumen and a distal housing component defining a second lumen, and a portion of the valve is held between the proximal and distal housing components to control fluid flow between the first and second lumens. The portion of the first lumen defines a reduced cross-sectional area to modify the suction crack pressure. The portion of the first lumen defines one of an elliptical, oblong, or cross shape to direct fluid flow toward the slit. The radius of curvature of the transverse axis can vary between d=0.5z and d=4z, where d is the midpoint distance from the linear axis and z is the longitudinal thickness of the valve.
[0008] Also disclosed is a method of manufacturing a valved connector, the method including: forming a proximal housing component including a first lumen and a distal engagement surface; forming a distal housing component including a second lumen and a proximal engagement surface; forming a valve including proximal and distal surfaces and a slit extending therebetween, one of the proximal and distal surfaces defining an elliptical shape, a transverse axis of the elliptical shape being longer than a transverse axis of the elliptical shape; retaining the valve between the proximal and distal housing components to control fluid flow between the first and second lumens; constraining the transverse axis of the valve in a curved shape to form a convex shape on the proximal surface; and attaching the distal engagement surface to the proximal engagement surface.
[0009] In some embodiments, the radius of curvature of the transverse axis can range from d=0.5z to d=4z, where d is the midpoint distance from the linear axis and z is the longitudinal thickness of the valve between the proximal and distal surfaces. The valve further includes a central slit and a side slit, each extending parallel to the transverse axis and extending from the proximal surface to the distal surface, the side slits being offset from the central slit along the transverse axis. The side slits extend through the valve from the proximal surface to the distal surface at an angle relative to the longitudinal axis. The first side slit is inclined in a first direction relative to the longitudinal axis, and the second side slit is inclined in a second direction opposite the first direction relative to the longitudinal axis.
[0010] In some embodiments, the central slit opens during both injection and suction, and the side slits open only during injection. The crack pressure of the slit is greater than the maintenance pressure of the slit. One of the proximal and distal surfaces of the valve includes a recess surrounding a portion of the slit. A portion of the first lumen defines a reduced cross-sectional area to modify the suction crack pressure.
[0011] These and other features of the concepts provided herein will become more apparent to those skilled in the art in view of the accompanying drawings and the following description, which disclose in more detail certain embodiments of such concepts.
[0012] A more particular description of the present disclosure will be provided by reference to specific embodiments thereof, which are illustrated in the accompanying drawings. These drawings depict only typical embodiments of the invention and therefore should not be considered limiting of its scope. Exemplary embodiments of the invention will be described and explained with additional specificity and detail through the use of the accompanying drawings. [Brief explanation of the drawings]
[0013] [Figure 1A] FIG. 1 shows a perspective view of an exemplary catheter system including a valved connector, according to some embodiments. [Figure 1B]1B shows a perspective view of the valved connector of FIG. 1A according to some embodiments. [Figure 1C] 1C illustrates an exemplary flow direction of the valves of the valved connector of FIG. 1B, according to some embodiments. [Figure 1D] 1C illustrates an exemplary flow direction of the valves of the valved connector of FIG. 1B, according to some embodiments. [Figure 2A] 1 shows a proximal end view of a valve, according to some embodiments. [Figure 2B] 1 shows a cross-sectional view of a valve at a cross axis, according to some embodiments. [Figure 2C] 1 shows a cross-sectional view of a valve in its transverse axis, according to some embodiments. [Figure 2D] 2D illustrates various exemplary radii of curvature relative to the transverse axis of the valve of FIG. 2C, according to some embodiments. [Figure 3A] 1 shows a distal end view of a valve according to some embodiments. [Figure 3B] 3B shows a cross-sectional view of the valve of FIG. 3A at a cross axis, according to some embodiments. [Figure 4A] 1 shows a proximal end view of a valve, according to some embodiments. [Figure 4B] 4B shows a cross-sectional view of the valve of FIG. 4A at a cross axis, according to some embodiments. [Figure 5A] 1A-1D show distal end views of various embodiments of a valve, according to some embodiments. [Figure 5B] 1A-1D show distal end views of various embodiments of a valve, according to some embodiments. [Figure 5C] 1A-1D show distal end views of various embodiments of a valve, according to some embodiments. [Figure 6A] 1 illustrates a cross-sectional view of a connector body including a valve, according to some embodiments. [Figure 6B] 10A-10C show proximal end views of various embodiments of a connector body including a valve, according to some embodiments. [Figure 6C] 10A-10C show proximal end views of various embodiments of a connector body including a valve, according to some embodiments. [Figure 6D]10A-10C show proximal end views of various embodiments of a connector body including a valve, according to some embodiments. DETAILED DESCRIPTION OF THE INVENTION
[0014] Before disclosing some specific embodiments in more detail, it should be understood that the specific embodiments disclosed herein do not limit the scope of the concepts provided herein. It should also be understood that the specific embodiments disclosed herein may have features that are readily separable from the specific embodiment and that, optionally, can be combined with or substituted for features of any of the other embodiments disclosed herein.
[0015] Regarding the terms used herein, it should also be understood that these terms are intended to describe certain specific embodiments and do not limit the scope of the concepts provided herein. Ordinal numbers (e.g., first, second, third, etc.) are generally used to distinguish or identify different features or steps within a group of features or steps and do not provide serial or numerical limitations. For example, "first," "second," and "third" features or steps do not necessarily have to appear in that order, and a particular embodiment including such features or steps is not necessarily limited to three features or steps. Designations such as "left," "right," "top," "bottom," "front," and "back" are for convenience and do not imply, for example, a specific fixed location, direction, or orientation. Instead, such designations are used, for example, to reflect relative location, orientation, or direction. The singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise.
[0016] For example, references to the "proximal," "proximal portion," or "proximal end portion" of a catheter disclosed herein include the portion of the catheter intended to be near the clinician when the catheter is used on a patient. Similarly, for example, the "proximal length" of a catheter includes the length of the catheter intended to be near the clinician when the catheter is used on a patient. For example, the "proximal end" of a catheter includes the end of the catheter intended to be near the clinician when the catheter is used on a patient. The proximal portion, proximal end portion, or proximal length of a catheter can include the proximal end of the catheter. However, the proximal portion, proximal end portion, or proximal length of a catheter need not include the proximal end of the catheter. That is, unless the context suggests otherwise, the proximal portion, proximal end portion, or proximal length of a catheter is not the terminal portion or terminal length of the catheter.
[0017] For example, references to the "distal," "distal portion," or "distal end portion" of a catheter disclosed herein include the portion of the catheter intended to be near or within a patient when the catheter is in use with the patient. Similarly, for example, the "distal length" of a catheter includes the length of the catheter intended to be near or within a patient when the catheter is in use with the patient. For example, the "distal end" of a catheter includes the end of the catheter intended to be near or within a patient when the catheter is in use with the patient. The distal portion, distal end portion, or distal length of a catheter can include the distal end of the catheter. However, the distal portion, distal end portion, or distal length of a catheter need not include the distal end of the catheter. That is, unless the context suggests otherwise, the distal portion, distal end portion, or distal length of a catheter is not the terminal portion or terminal length of the catheter.
[0018] 1A and 1B, a longitudinal axis extends generally parallel to the axial length of connector 20. A lateral axis extends perpendicular to the longitudinal axis, and a transverse axis extends perpendicular to both the longitudinal and lateral axes. As used herein, the term "crack pressure" refers to the amount of fluid pressure, or force, required to transition a valve from a closed configuration to an open configuration. As used herein, the term "maintenance pressure" refers to the amount of fluid pressure required to maintain a valve in an open configuration.
[0019] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art. 1 illustrates an exemplary catheter system ("catheter") 10. The exemplary catheter 10 may be a dialysis catheter. However, the embodiments disclosed herein may be used with any catheter or medical device that includes a valve, such as, but not limited to, a Peripherally Inserted Central Catheter ("PICC"), a central venous catheter ("CVC"), an intravenous ("IV") catheter, a drainage catheter, a midline catheter, an introducer set, a port access system, a urinary catheter system, etc.
[0020] The catheter 10 generally includes a catheter body 11, which defines one or more lumens and is supported by a catheter hub 12 coupled to its proximal end. The catheter system 10 may further include an extension leg 13 extending proximally from the hub 12. The extension leg 13 defines an extension leg lumen in communication with a lumen of the catheter body 11. The catheter system 10 may include two or more extension legs, e.g., a first extension leg 13A and a second extension leg 13B, each of which communicates with a lumen of the catheter body 11; e.g., the first extension leg 13A communicates with a first lumen and the second extension leg 13B communicates with a second lumen. The extension leg 13 may further include a connector 20 disposed at its proximal end.
[0021] 1B shows further details of connector 20. In one embodiment, connector 20 includes a body 22 defining a lumen 24. Lumen 24 extends axially and provides fluid communication between a coupler 26 disposed at a proximal end of connector body 22 and extension leg 13 disposed at a distal end of connector body 22. Coupler 26 may include a luer lock, spin nut, twist lock, or similar coupling structure configured to secure a medical line, syringe, introducer, or similar device to connector 20.
[0022] In one embodiment, the connector 20 can include a valve 100 configured to control fluid flow through the connector lumen 24. In one embodiment, the valve 100 can be a slit valve, although other types of valves are contemplated, including flap valves, duckbill valves, bileaflet valves, combinations thereof, and the like. In one embodiment, the valve 100 can be formed from a flexible material. Exemplary flexible materials can include a polymer, elastomer, rubber, silicone, or similar suitable material, as described in more detail herein.
[0023] Embodiments of valve 100 can provide precise crack pressures and precise maintenance pressures with associated tight tolerances. This allows manufacturers to tune the valve to operate at precise flow rates. Additionally, manufacturers can tune for increased differentials between crack pressure and maintenance pressure to mitigate hemolysis. Furthermore, embodiments can provide increased turbulence due to improved connector lumen clearance.
[0024] As shown in FIGS. 1C-2C, the valve 100 can include a proximal surface 140 and a distal surface 142, each extending perpendicular to the longitudinal axis, and can include side surfaces extending generally parallel to the longitudinal axis between the proximal surface 140 and the distal surface 142. In one embodiment, one of the proximal surface 140 and the distal surface 142 of the valve 100 defines a generally elliptical shape. As shown in FIGS. 1C and 1D, the elliptical shape can include a maximum diameter extending along the transverse axis 106 of the valve 100 and a minimum diameter extending along the transverse axis 108 of the valve 100. However, the elliptical shape can also be oriented such that the maximum diameter extends along the transverse axis and the minimum diameter extends along the transverse axis. The valve 100 can include other common cross-sectional shapes, such as a circle, a hexagon, a polygon, or a similar closed curve, regular or irregular polygon, etc.
[0025] In one embodiment, one of the proximal surface 140 and the distal surface 142 can include a rim 146 extending annularly around the circumference of the proximal surface 140 or the distal surface 142. In one embodiment, the rim 146 can be configured to engage the connector body to secure the valve 100 therein. In one embodiment, one of the proximal surface 140 and the distal surface 142 can include various surface configurations, such as domed, flat, semi-dome, concave, combinations thereof, etc., as described in more detail herein.
[0026] In one embodiment, valve 100 can include one or more slits, which extend from proximal surface 140 to distal surface 142 and are configured to control fluid flow therethrough. For example, as shown in FIGS. 1C and 1D , central slit 102 can be configured to allow fluid flow in a first direction (e.g., infusion), and side slits 104 can be configured to allow fluid flow in a second direction opposite the first direction (e.g., aspiration). In one embodiment, one of central slit 102 and side slits 104 can be configured to allow fluid flow in both the first and second directions. For example, central slit 102 can be open (actuated) during both infusion and aspiration, while side slits 104A, 104B can be open only during infusion. Advantageously, this allows for greater fluid flow during infusion to facilitate fluid clearance from valve 100. However, other combinations of infusion / aspiration slit actuation are also contemplated.
[0027] 2A-2C show further details of valve 100. FIG. 2A shows a proximal end view of valve 100. FIG. 2B shows a cross-sectional view of valve 100 at transverse axis 108. FIG. 2C shows a cross-sectional view of valve 100 at transverse axis 106. As shown in FIG. 2A, in one embodiment, central slit 102 and one or more side slits 104 can extend parallel to transverse axis 106. However, one of central slit 102 and side slit 104 can extend parallel to transverse axis 108 or at an angle relative to transverse axis 106 and transverse axis 108.
[0028] As described above, one of the proximal and distal surfaces 140, 142 of the valve 100 can define a generally elliptical shape including a transverse axis 106 defining a longest diameter (x) and a cross axis 108 defining a shortest diameter (y). In one embodiment, the transverse axis 106 of the valve 100 can define a longest diameter (x) between 0.635 cm and 1.27 cm (0.25 inches and 0.5 inches). In one embodiment, the cross axis 108 of the valve 100 can define a shortest diameter (x) between 0.381 cm and 0.762 cm (0.15 inches and 0.3 inches). However, larger or smaller dimensions for the longest diameter (x) and shortest diameter (y) are also contemplated. In one embodiment, the longest diameter (x) extends perpendicular to the shortest diameter (y), although other angles are contemplated, which can define an irregular or asymmetric cross-sectional shape.
[0029] In one embodiment, the valve 100 can include a central slit 102, a first side slit 104A, and a second side slit 104B. In one embodiment, the central slit 102 can extend through a cross-sectional midpoint 148 of the proximal surface 144, and the side slits 104A, 104B can be offset from the central slit 102 along the cross axis 108. However, as described in more detail herein, other configurations of the slits 102, 104 are also contemplated. The central slit 102 can extend parallel to the transverse axis 106 and define a first slit length (a). The side slits 104A, 104B can also extend parallel to the transverse axis 106 and define a second slit length (b). In one embodiment, the second slit length (b) can be less than the first slit length (a). In one embodiment, the first slit length (a) can define a length that is 50% to 90% of the transverse diameter (x). In one embodiment, the second slit length (b) can define a length that is 25% to 40% of the transverse diameter (x). However, larger or smaller dimensions for the first slit length (a) and the second slit length (b) are also contemplated.
[0030] In one embodiment, the difference in length of the slits 102, 104 can alter the cracking pressure of the slits 102, 104. For example, a relatively long slit length can provide a relatively low cracking pressure, while a relatively short slit length can provide a relatively high cracking pressure. Exemplary cracking pressures can include 0.4 psi (2.7579 KPa) for injection and 3 psi (20.6843 KPa) for suction. However, greater or lesser cracking pressures for both injection and suction are also contemplated as being within the scope of the present invention. In one embodiment, the valve 100 defines a thickness (z) extending along a longitudinal axis between the proximal face 140 and the distal face. In one embodiment, altering the thickness (z) of the valve 100 can alter the cracking pressure of one or more of the slits 102, 104. For example, a relatively small overall thickness (z) of the valve 100 can provide a relatively low cracking pressure.
[0031] As shown in FIG. 2B , in one embodiment, the central slit 102 and one or more of the side slits 104 may extend through the valve 100 parallel to the longitudinal axis from the proximal surface 140 to the distal surface 142. However, one of the central slit 102 and the side slits 104 may extend through the valve 100 at an angle (θ) relative to the longitudinal axis. In one embodiment, the angle (θ) of the side slits 104A, 104B may be between 5° and 85°. In one embodiment, the angle (θ) of the side slits 104A, 104B may be between 15° and 35°. In one embodiment, the angles (θ) of the side slits 104 may be oriented in the same direction. In one embodiment, the angles (θ) of the side slits 104 may be oriented in opposite directions. For example, the first side slit 104A can be angled +15° from the longitudinal axis, and the second side slit 104B can be angled −15° from the longitudinal axis. In one embodiment, the angles (θ) of the side slits 104 can be the same or different. Advantageously, the angles (θ) of the side slits 104 can facilitate selective actuation depending on the direction of fluid flow through the valve. For example, the angle (θ) of the side slits 104 can facilitate opening during injection while remaining closed during aspiration. In one embodiment, the slits 104A, 104B can be angled to facilitate opening during aspiration while remaining closed during injection.
[0032] In one embodiment, the lumen 24 of the connector 20 can be cleared by applying a high fluid flow therethrough. More effective clearance of the connector lumen 24 can be achieved by increasing the turbulence therethrough. Additionally, clearing the lumen 24 can also be preferably performed during infusion. Advantageously, increasing the number of slits, e.g., the central slit 102 or the side slits 104, can increase the turbulence and provide more effective clearance of the connector lumen 24 during infusion or aspiration. Additionally, slits positioned at different angles relative to either the transverse axis 106 or the longitudinal axis can further increase the turbulence and further improve clearance efficiency.
[0033] In one embodiment, the valve 100 can define a planar shape that extends linearly through both the transverse axis 106 and the cross axis 108. In one embodiment, one of the transverse axis 106 and the cross axis 108 of the valve 100 can form a curved shape that defines a radius of curvature (r), as described in more detail herein. In one embodiment, both the transverse axis 106 and the cross axis 108 can define a curved shape. In one embodiment, the transverse axis 106 and the cross axis 108 can be curved in the same direction to provide a generally dome-shaped valve 100. In one embodiment, the transverse axis 106 and the cross axis 108 can be curved in opposite directions to provide a generally hyperbolic shape of the valve 100.
[0034] In one embodiment, the valve 100 can extend linearly through a cross axis 108, as shown in FIG. 2B, or can define a curved shape through a transverse axis 106, as shown in FIG. 2C. Advantageously, the curved transverse axis 106 can bias the valve 100 to operate at a higher crack pressure in a first fluid flow direction and at a lower crack pressure in a second fluid flow direction opposite the first fluid flow direction. For example, as shown in FIG. 2C, the valve 100 can be curved to provide a concave proximal surface 140 and a convex distal surface 142. Thus, the valve 100 can provide a relatively low injection crack pressure and a relatively high suction crack pressure. In one embodiment, the valve 100 can be curved to provide a convex proximal surface 140 and a concave distal surface 142. Thus, the valve 100 can provide a relatively high injection crack pressure and a relatively low suction crack pressure.
[0035] In one embodiment, the curved profile of valve 100 allows for an increased crack pressure while maintaining the same maintenance pressure. Thus, by altering the curved profile of valve 100, the difference between the crack pressure and the maintenance pressure can be altered, thereby improving the hemolysis characteristics of valve 100. For example, a relatively high crack pressure maintains a reliable seal even in the absence of flow. However, a relatively low maintenance pressure reduces the pressure loss across the valve when flow occurs, reducing damage to blood cells, i.e., hemolysis.
[0036] In one embodiment, the radius of curvature (r) of the horizontal axis 106 can be changed to change the crack pressure of one or more of the center slit 102 and the side slits 104A, 104B. For example, as shown in FIG. 2D , a smaller radius of curvature (r1) is considered a “tighter” arc and can increase the suction crack pressure of the center slit 102. In contrast, a larger radius of curvature (r2) is considered a “wider” arc and can decrease the suction crack pressure of the center slit 102.
[0037] As shown in FIGS. 2C and 2D , in one embodiment, the radius of curvature (r) can be varied to change the distance of the midpoint 148 from the linear axis (referred to as the “midpoint distance” (d)). Thus, the radius of curvature (r) can be varied such that the midpoint distance (d) varies from 0.5z to 4z, where z is the overall thickness of the valve 100. In one embodiment, the radius of curvature (r) along the horizontal axis 106 can be varied to provide a suction cracking pressure of 3.89476 KPa to 62.0528 KPa (1 psi to 9 psi). In one embodiment, the radius of curvature (r) along the horizontal axis 106 can be varied to provide a suction cracking pressure of 20.6843 KPa to 27.579 KPa (3 psi to 4 psi). However, larger or smaller cracking pressures are also contemplated.
[0038] While a change in the radius of curvature (r) can alter the crack pressure on the convex side for suction, as shown in Figure 2C, such a change in the radius of curvature (r) can have little effect on the crack pressure on the concave side for injection, as shown in Figure 2C. Advantageously, the crack pressure for either suction or injection can be changed independently of each other, depending on the direction and radius of curvature (r) of the applied curvature.
[0039] In one embodiment, valve 100 can have curved cross axes 108 with different radii of curvature (r), as described herein. In one embodiment, valve 100 is formed with a straight transverse axis 106 and a straight cross axis 108, and then constrained to a curved shape along either transverse axis 106 or cross axis 108. In one embodiment, valve 100 can be formed with a curved shape along either transverse axis 106 or cross axis 108 such that the valve maintains the curved shape in a resting state.
[0040] Advantageously, the curved profile along either the transverse axis 106 or the intersecting axis 108 provides uniform structural support throughout the valve 100, resulting in more accurate crack pressures. This is in contrast to valves supported by structures such as arms, bars, or struts, which can provide non-uniform support throughout the valve, affecting its crack pressure and tolerances.
[0041] 3A and 3B show a distal end view and a cross-sectional view along the intersecting axis 108 of an embodiment of the valve 100. In one embodiment, one of the proximal valve face 140 and the distal valve face 142 can include various reliefs that can modify the crack pressure of one or more of the slits 102, 104A, 104B. In one embodiment, the valve 100 can include a recess 110 disposed about the midpoint 148. The recess 110 can surround a portion of the central slit 102 or one or more of the side slits 104A, 104B. In one embodiment, the recess 110 can surround the entire central slit 102. In one embodiment, the recess 110 can be disposed on the distal face 142 and can be configured to provide a relatively high injection crack pressure and a relatively low suction crack pressure.
[0042] As shown in FIGS. 4A and 4B , in one embodiment, the recess 110 can be located on the proximal surface 140 and can be configured to provide a relatively high suction crack pressure and a relatively low injection crack pressure. In one embodiment, the valve can include a first recess 110A located on the distal surface and a second recess 110B located on the proximal surface. In one embodiment, the recesses 110A and 110B can be the same. In one embodiment, the recesses 110A and 110B can be different. In one embodiment, the longitudinal depth, transverse diameter, cross-axial diameter, or radius of curvature of either recess 110A or 110B can be varied to further modify the crack pressure of the portion of the slit located therein, such as slit 102. In one embodiment, the crack pressure across the slits 102 and 104 can be modified by varying the ratio between the portion of the slit 102, 104 located within the recess and the portion of the slit 102, 104 located outside the recess.
[0043] As shown in FIG. 5A , in one embodiment, the transverse diameter of recess 110 can be longer than the cross-axis diameter of recess 110 to provide an elliptical periphery of recess 110 that generally matches the periphery of proximal or distal face 140, 142 of valve 100. As shown in FIG. 5B , in one embodiment, the transverse diameter of recess 110 can be shorter than the cross-axis diameter of recess 110 to provide an elliptical periphery oriented at 90° relative to the periphery of proximal or distal face 140, 142 of valve 100. As shown in FIG. 5C , in one embodiment, the transverse diameter of recess 110 can be the same as the cross-axis diameter of recess 110 to provide a circular periphery of recess 110. In addition to elliptical and circular shapes, various cross-sectional shapes of recess 110 are also contemplated and can be configured to alter the crack pressure of a portion of the slit disposed in recess 110, such as slit 102. For example, other cross-sectional shapes of recess 110 can include an oblong, square, rectangular, hexagonal, or any closed curved regular or irregular polygon.
[0044] As shown in FIGS. 1B and 6A, in one embodiment, the valve 100 can be retained within a connector body 22. FIG. 6A shows a cross-sectional view of the connector body 22 with the valve 100 retained therein. The connector body 22 can be formed from a proximal housing component 124 and a distal housing component 126 that engage along a plane extending perpendicular to the longitudinal axis. The proximal housing component 124 and the distal housing component 126 can be assembled using a joining method such as solvent bonding, ultrasonic welding, adhesive bonding, or the like. The proximal housing component 124 and the distal housing component 126 can retain a portion of the valve 100 therebetween, such as the rim 146.
[0045] Advantageously, retaining the valve 100 between the proximal housing component 124 and the distal housing component 126 allows for greater precision in the compression of the valve when retained by the connector 20. Differences in the degree of compression of the valve can affect the crack or maintenance pressures, tolerances, or similar specifications for either injection or aspiration. Therefore, assembling the valve 100 and the connector body 22 in this manner allows for accurate determination of the performance characteristics of the valve 100 and ensures consistent valve performance. Furthermore, this manufacturing method also allows for the valve 100 to be assembled to the connector body 22 after the connector 20 is molded. This, for example, prevents molding core pins from passing through and damaging the valve 100, thereby reducing damage to the valve 100 during manufacturing.
[0046] 6B-6D show cross-sectional proximal end views of an embodiment of the proximal housing component 124 of FIG. 6A. As shown, the cross-sectional shape of the connector lumen 24 can define a variety of closed curves, regular or irregular polygonal shapes. For example, the lumen 24 can define, without limitation, a generally elliptical shape (FIG. 6B), a cross-sectional shape (FIG. 6C), an oblong shape (FIG. 6D), or the like. However, it is important to note that the configuration of the lumen 24 can provide different cross-sectional surface areas. A relatively large cross-sectional area of the lumen 24 of the proximal housing component 124 (e.g., FIG. 6B) can provide a relatively low suction crack pressure. In contrast, a relatively small cross-sectional area of the lumen 24 of the proximal housing component 124 (e.g., FIG. 6D) can provide a relatively high suction crack pressure of the valve 100. Similarly, the cross-sectional shape and cross-sectional area of the lumen 24 of the distal housing component 126 can also be varied to alter the injection crack pressure of the valve 100. For example, a relatively small cross-sectional area of lumen 24 of distal housing component 126 (eg, FIG. 6D) can provide valve 100 with a relatively high injection crack pressure.
[0047] In one embodiment, the cross-sectional shape can be configured to direct fluid flow toward the central slit 102, the side slits 104, or a combination thereof. For example, the cross-sectional area of the proximal housing component 124 shown in FIG. 6C can direct the injection flow toward the central slit 102 as well as the side slits 104A, 104B, thereby allowing all slits 102, 104A, 104B to open during injection. In contrast, the oblong cross-sectional area of the proximal housing component 124 shown in FIG. 6D can direct the injection flow toward only the central slit 102, thereby allowing only the central slit 102 to open during injection. Similarly, the cross-sectional shape of the lumen of the distal housing component 126 can be modified to affect slit actuation during aspiration. These and other configurations of the lumen shape of the proximal housing component are contemplated.
[0048] Advantageously, the design of the proximal housing component 124 and the distal housing component 126 can be modified to achieve precise slit crack pressures for either injection or aspiration. This, along with embodiments of the valve 100 as described herein, allows the valve 100 to be manufactured to various specifications within precise range tolerances. Furthermore, the connector body 22 and valve design can provide turbulent flow through the connector lumen, resulting in improved clearance characteristics. In addition, the connector body 22 and valve 100 design can provide not only high crack pressures but also low maintenance pressures, as described herein. This can reduce pressure loss across the valve during use and mitigate hemolysis. Advantageously, the embodiments disclosed herein provide a valve that can be manufactured to precise specifications for injection or aspiration crack pressures or maintenance pressures. The specifications can be tailored to mitigate hemolysis and improve clearance characteristics. Furthermore, precise valve specifications can be easily achieved during manufacturing by modifying the valve 100 or the connector body housings 124, 126, as described herein. This results in increased manufacturing efficiency and associated cost savings.
[0049] The valves disclosed herein can be molded in a single piece from an elastomeric material. Exemplary elastomeric materials can include silicone rubber or similar materials having a Shore A durometer rating of about 30-60. Exemplary elastomeric materials also include polyisoprene, butyl rubber, halogenated butyl rubber, polybutadiene, styrene-butadiene rubber, nitrile rubber, hydrated nitrile rubber, Therban® elastomers, Zetpol® elastomers, chloroprene rubber, polychloroprene, neoprene, Bayprene, EPM (ethylene propylene rubber), EPDM rubber (ethylene propylene diene rubber), epichlorohydrin rubber, polyacrylic rubber, silicone rubber, fluorosilicone rubber, fluoroelastomers, Viton (registered trademark), and the like. The elastomers may include, but are not limited to, Polyurethane (Trademark) elastomers, Tecnoflon® elastomers, Fluorel® elastomers, Dai-El® elastomers, perfluoroelastomers, tetrafluoroethylene / propylene rubber, chlorosulfonated polyethylene, Hypalon® elastomers, ethylene vinyl acetate, Hytrel® elastomers, Santoprene® elastomers, polyurethane rubber, resilin, elastin, or polysulfide rubber.
[0050] The connector housing components described herein can be molded into one or more pieces from a substantially rigid material. Exemplary materials can include thermoplastic materials having a Shore A durometer rating of about 60 to 85. Further exemplary materials include, but are not limited to, polyethylene terephthalate, IsoPlast®, acrylonitrile butadiene styrene, acrylic, celluloid, cellulose acetate, ethylene vinyl acetate, ethylene vinyl alcohol, fluoroplastics, ionomers, polyacetal, polyacrylate, polyacrylonitrile, polyamide, polyamidepolyamidepolyaryletherketone, polybutadiene, polybutylene, polybutylene terephthalate, polyethylene terephthalate, polycyclohexylenedimethylene terephthalate, polycarbonate, polyhydroxyalkanoate, polyketone, polyester, polyethylene, polyetheretherketone, polyetherimide, polyethersulfone, polyethylene chlorinate, polyimide, polylactic acid, polymethylpentene, polyphenylene oxide, polyphenylene sulfide, polyphthalamide, polypropylene, polystyrene, polysulfone, or polyvinyl chloride.
[0051] Any of the exemplary catheters described herein may be fabricated from any biocompatible material suitable for placement under the skin of a patient. Some specific embodiments are disclosed herein, and although the specific embodiments are disclosed in some detail, the specific embodiments are not intended to limit the scope of the concepts provided herein. Additional adaptations and / or modifications may be apparent to those skilled in the art, and the broader aspects also encompass these adaptations and / or modifications. Thus, one can deviate from the specific embodiments disclosed herein without departing from the scope of the concepts provided herein.
Claims
1. A valved connector, a connector body defining a lumen; a valve configured to control fluid flow through the lumen, the valve having a proximal surface and a distal surface, one of the proximal and distal surfaces defining an elliptical shape, the valve defining a curved transverse axis and a straight intersecting axis, and including a slit extending from the proximal surface to the distal surface; the slits include a central slit and side slits each extending parallel to the transverse axis, the side slits being offset from the central slit along the transverse axis; A valved connector in which the central slit opens during both injection and aspiration, and the side slits open only during injection.
2. A valved connector as described in claim 1, wherein the side slits extend through the valve from the proximal surface to the distal surface at an angle to the longitudinal axis.
3. A valved connector as described in claim 2, wherein the side slits include a first side slit and a second side slit, the first side slit being inclined in a first direction relative to the longitudinal axis, and the second side slit being inclined in a second direction opposite to the first direction relative to the longitudinal axis.
4. A valved connector as described in any one of claims 1 to 3, wherein the crack pressure of the central slit and side slits is greater than the maintenance pressure of the central slit and side slits.
5. A valved connector according to any preceding claim, wherein one of the proximal and distal surfaces of the valve includes a recess surrounding a portion of the central slit and side slits.
6. 6. A valved connector as described in any one of claims 1 to 5, wherein the connector body includes a proximal housing part defining a first lumen and a distal housing part defining a second lumen, and a portion of the valve is retained between the proximal and distal housing parts to control fluid flow between the first and second lumens.
7. A valved connector as described in claim 6, wherein a portion of the first lumen defines a reduced cross-sectional area to modify suction crack pressure.
8. A valved connector as described in claim 6, wherein a portion of the first lumen defines one of an elliptical, an oblong, or a cross shape to direct fluid flow toward the central slit and side slits.
9. A valved connector as described in any one of claims 1 to 8, wherein the radius of curvature (r) of the horizontal axis can be changed so that the midpoint distance (d) from the linear axis varies from d = 0.5z to d = 4z, where z is the longitudinal thickness of the valve.
10. 1. A method of manufacturing a valved connector, comprising: forming a proximal housing component including a first lumen and a distal engagement surface; forming a distal housing component including a second lumen and a proximal engagement surface; forming a valve including a proximal surface, a distal surface, and a slit extending therebetween, wherein one of the proximal surface and the distal surface defines an ellipse, a transverse axis of the ellipse being wider than a transverse axis of the ellipse; retaining a valve between a proximal housing component and a distal housing component to control fluid flow between the first lumen and the second lumen; constraining the transverse axis of the valve in a curved shape to provide a convex shape on the proximal surface; attaching the distal engagement surface to the proximal engagement surface; the slits include a central slit and side slits each extending parallel to the transverse axis and extending from the proximal surface to the distal surface, the side slits being offset from the central slit along the transverse axis; A method for manufacturing a valved connector, wherein the central slit opens during both injection and aspiration, and the side slits open only during injection.
11. The method described in claim 10, wherein the radius of curvature (r) of the horizontal axis can be changed so that the midpoint distance (d) from the linear axis varies from d = 0.5z to d = 4z, where z is the longitudinal thickness of the valve between the proximal and distal surfaces.
12. The method of claim 10, wherein the side slits extend through the valve from the proximal surface to the distal surface at an angle relative to the longitudinal axis.
13. The method described in claim 12, wherein the side slits include a first side slit and a second side slit, the first side slit being inclined in a first direction relative to the longitudinal axis, and the second side slit being inclined in a second direction opposite to the first direction relative to the longitudinal axis.
14. A method described in any one of claims 10 to 13, wherein the crack pressure of the central slit and side slits is greater than the maintenance pressure of the central slit and side slits.
15. The method of any one of claims 10 to 14, wherein one of the proximal and distal surfaces of the valve includes a recess surrounding a portion of the central and side slits.
16. A method according to any one of claims 10 to 15, wherein a portion of the first lumen defines a reduced cross-sectional area to modify the suction crack pressure.
Citation Information
Patent Citations
Pressure actuated valve with improved biasing member
JP2007521067A
Pressure activated safety valve with high flow slit
US20050171488A1
Bidirectional duckbill valve apparatus and a method for its use
US20130160866A1
Infusion check valve for medical devices
US20140228776A1