Port-Catheter Connection System
The catheter locking mechanism addresses misplacement and leakage issues by using a collet lock and shroud system for secure, leak-proof catheter connection to the port, enhancing accuracy and reducing environmental damage.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- BARD PERIPHERAL VASCULAR INC
- Filing Date
- 2021-07-27
- Publication Date
- 2026-04-20
Smart Images

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Abstract
Description
Technical Field
[0001] Briefly summarized, the embodiments disclosed herein relate to a port and catheter connection system and related methods. The connection system may include an integrated and crimpable catheter locking mechanism configured to couple a catheter to a port stem, and a tool configured to transition the catheter locking mechanism between an unlocked configuration and a locked configuration.
Background Art
[0002] In a proximally cuttable catheter, sizing can be performed after the catheter is placed. When placing the catheter and port portion, the position of the distal tip of the catheter can be important for the effectiveness of the treatment. For example, when placing a catheter in the superior vena cava, if the distal tip of the catheter does not reach the target area, the effectiveness of the drug decreases. If the distal tip advances too far, the distal tip may cause arrhythmia. The distance between the distal tip of the catheter and the port can vary because the distances between the target position, the insertion site into the vasculature, and the position of the port can vary depending on the patient and the treatment procedure. Estimating the length of the catheter before placement can lead to errors that result in misplacement of the distal tip.
[0003] In a proximally cuttable catheter, it is possible to place the distal tip of the catheter at the target position before cutting the proximal portion of the catheter to the exact length. Then, the physician may attach the catheter to a subcutaneous port or similar access device. However, it can be difficult to secure the catheter to the port. The connection is required to be leak-free, especially under high-pressure injection. Additionally, manipulating the catheter and port in the restricted wet environment at the subcutaneous access site can lead to slipping, unnecessary damage to the access site, or misplacement of the distal tip of the catheter.
Summary of the Invention
[0004] Disclosed herein is a system for connecting a catheter to a port. The system comprises a catheter comprising a first diameter; a port comprising a shroud extending axially from the port, the shroud having a second diameter greater than the first diameter, and a recess comprising a stem, the stem extending axially and configured to engage with the lumen of the catheter; a collet lock extending annularly about the stem axis and configured to transition between an unlocked configuration and a locked configuration when an axial force is applied; and a tool engaging with the shroud and the collet lock and configured to transition the collet lock from an unlocked configuration to a locked configuration when an axial force is applied.
[0005] In some embodiments, a portion of the collet lock is held within the recess in the unlocked configuration, and the outer surface of the collet lock engages with the inner surface of the recess in one of the following engagements: press-fit, press-fit, and snap-fit. In some embodiments, the collet lock includes a plurality of fingers configured to plastically deform radially inward when transitioned to the locked configuration. In some embodiments, the plurality of fingers contact the surface of the recess when an axial force is applied to transition the collet lock from the unlocked configuration to the locked configuration. In some embodiments, the tip of one of the plurality of fingers engages with the outer surface of the catheter in the locked configuration, thereby compressing the catheter onto the stem.
[0006] In some embodiments, the tips of multiple fingers partition a diameter greater than the first diameter of the catheter. In some embodiments, the tool includes a first arm hinged to a second arm, the tip of which includes a first fork configured to engage with a port, and the tip of the second arm includes a second fork configured to engage with a collet lock. In some embodiments, one or both of the first and second forks include first and second tines that partition a notch having a first width, the first width being greater than or equal to the first diameter of the catheter. In some embodiments, the shroud includes a channel partitioning a third diameter that is less than or equal to the first width, and the first fork engages with the channel of the shroud in one of the following engagements: press-fit, press-fit, and snap-fit.
[0007] In some embodiments, one or both of the first and second forks include a recess extending along the edge of the notch, comprising a recess defining a second width, the second width being greater than the outer diameter of the collet lock, and the surface of the recess engaging with the collet lock when an axial force is applied. In some embodiments, the system further includes an extension leg extending between the shroud and the port and formed integrally with the shroud and the port, and providing fluid communication between the shroud and the port, the extension leg being formed of a flexible material. In some embodiments, the port includes a reservoir that is in fluid communication with the stem, the reservoir having a septum through which a needle can be pierced.
[0008] Further disclosed herein is a method for connecting a catheter to a port. The method comprises the steps of: biasing the catheter onto the stem of the port; engaging a first engaging tip of a tool with the shroud of the port; engaging a second engaging tip of the tool with a collet lock; biasing the first engaging tip toward the second engaging tip along the axis of the stem; and fixing the catheter to the stem by plastically deforming the collet lock from an open configuration to a closed configuration.
[0009] In some embodiments, the outer surface of the collet lock in the open configuration engages with the inner surface of a recess by one of a press-fit, press-fit, and snap-fit engagement, and the recess is defined by the port shroud. In some embodiments, the method further includes the step of moving the collet lock from an open position to a closed position by plastically deforming a plurality of fingers of the collet lock radially inward, so that the plurality of fingers abut against the surface of the recess. In some embodiments, the method further includes the step of compressing the catheter onto the stem by engaging the tip of one of the plurality of fingers with the outer surface of the catheter. In some embodiments, the tips of the plurality of fingers define a diameter larger than the diameter of the catheter.
[0010] In some embodiments, one or both of the first and second engaging tips include first and second tines that define a notch having a first width, the first width being greater than the diameter of the catheter. In some embodiments, the shroud includes a channel that defines a channel diameter having a first width or less, and the first engaging tip engages with the channel of the shroud.
[0011] In some embodiments, one or both of the first and second engaging tips are recesses extending along the edge of the notch, including a recess defining a second width, the second width being greater than the outer diameter of the collet lock, and the surface of the recess engages with the collet lock when the first engaging tip is biased toward the second engaging tip. In some embodiments, the method further includes an extension leg extending between the shroud and the port and being integrally formed with the shroud and the port, and providing fluid communication between the shroud and the port, the extension leg being formed of a flexible material. In some embodiments, the port includes a reservoir that is in fluid communication with the stem, the reservoir having a septum through which a needle can be pierced.
[0012] Further disclosed herein is a catheter-port coupling system. The system comprises a catheter comprising a first diameter, a port comprising a shroud extending axially from the port, the shroud comprising a recess having a second diameter greater than the first diameter, the recess comprising a stem, the stem extending axially and configured to engage with the lumen of the catheter, and a collet lock extending annularly about the stem axis and configured to secure the catheter to the port by transitioning between an unlocked configuration and a locked configuration when an axial force is applied.
[0013] In some embodiments, the system further includes an extension leg made of a flexible material that extends between the shroud and the port and is integrally formed with the shroud and the port, and provides fluid communication between the shroud and the port. In some embodiments, a portion of the collet lock is held in a recess in an unlocked configuration, and the outer surface of the collet lock engages with the inner surface of the recess in one of a press-fit, press-fit, and snap-fit engagement. In some embodiments, the collet lock includes a plurality of fingers configured to plastically deform radially inward when transitioned to a locked configuration.
[0014] In some embodiments, multiple fingers contact the surface of a recess when an axial force is applied to transition the collet lock from an unlocked configuration to a locked configuration. In some embodiments, the tip of one of the multiple fingers compresses the catheter onto the stem by engaging with the outer surface of the catheter in the locked configuration. In some embodiments, the tips of the multiple fingers partition a diameter greater than the first diameter of the catheter. In some embodiments, the port includes a reservoir that is in fluid communication with the stem, and the reservoir has a septum over which a needle can penetrate.
[0015] In some embodiments, the system further includes a tool configured to engage with the shroud and collet lock and to transition the collet lock from an unlocked configuration to a locked configuration by applying an axial force. In some embodiments, the tool includes a first arm hinged to a second arm, the tip of which includes a first fork configured to engage with a port, and the tip of which includes a second fork configured to engage with the collet lock. In some embodiments, one or both of the first and second forks include first and second tines that define a notch having a first width, the first width being greater than or equal to a first diameter of the catheter. In some embodiments, the shroud includes a channel defining a third diameter which is less than or equal to the first width, and the first fork engages with the channel of the shroud in one of the following engagements: press-fit, press-fit, and snap-fit. In some embodiments, one or both of the first and second forks include a recess extending along the edge of the notch, which defines a second width, the second width being greater than the outer diameter of the collet lock, and the surface of the recess engages with the collet lock when an axial force is applied.
[0016] This disclosure is described in more detail by reference to specific embodiments shown in the accompanying drawings. It should be understood that these drawings only illustrate typical embodiments of the invention and should therefore not be considered to limit the scope of the invention. Illustrative embodiments of the invention are described and explained in more specific and detail using the accompanying drawings. [Brief explanation of the drawing]
[0017] [Figure 1A] A perspective cross-sectional view of a port including an integrated and crimpable catheter locking mechanism according to an embodiment disclosed herein. [Figure 1B] A perspective cross-sectional view of a port including an integrated and crimpable catheter locking mechanism according to an embodiment disclosed herein. [Figure 2A]A side cross-sectional view of the catheter locking mechanism of Figure 1 in the unlocked position, according to an embodiment disclosed herein. [Figure 2B] A side cross-sectional view of a catheter locking mechanism in the unlocked position, including a tool engaged with the catheter locking mechanism, according to an embodiment disclosed herein. [Figure 2C] A plan cross-sectional view of a catheter locking mechanism in the unlocked position, including a tool engaged with the catheter locking mechanism, according to an embodiment disclosed herein. [Figure 2D] A side cross-sectional view of a catheter locking mechanism in a locked position, including a tool engaged with the catheter locking mechanism, according to an embodiment disclosed herein. [Figure 2E] A diagram showing an enlarged detail of the catheter locking mechanism of Figure 2A according to an embodiment disclosed herein. [Figure 3A] An axial view of the collet lock of the catheter locking mechanism shown in Figure 1, according to an embodiment disclosed herein. [Figure 3B] A side view of the collet lock of the catheter locking mechanism shown in Figure 1, according to an embodiment disclosed herein. [Figure 4A] A perspective view of a tool configured to move a catheter locking mechanism between a locked position and an unlocked position, according to an embodiment disclosed herein. [Figure 4B] A diagram showing an enlarged detail of a side view of the tool in Figure 4A according to an embodiment disclosed herein. [Figure 4C] A diagram showing a close-up detail of the end view of the tool in Figure 4A from the viewpoint of the second end of the tool, according to an embodiment disclosed herein. [Figure 4D] A diagram showing an enlarged axial view detail of the tool in Figure 4A according to an embodiment disclosed herein. [Figure 5] An axial view of the inner surface of the first arm of the tool of Figure 4A, including a collet lock engaged with the first arm, according to an embodiment disclosed herein. [Figure 6] A side cross-sectional view of a catheter locking mechanism including an extension leg according to an embodiment disclosed herein.
Best Mode for Carrying Out the Invention
[0018] 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 presented herein. It should also be understood that the specific embodiments disclosed herein can be easily separated from that specific embodiment and may have features that can be optionally combined or replaced with the features of any of the plurality of other embodiments disclosed herein.
[0019] Regarding the terms used herein, it should also be understood that each term is for explaining some specific embodiments and does not limit the scope of the concepts presented herein. Ordinal numbers (e.g., first, second, third, etc.) are generally used to distinguish or identify different features or steps among a group of multiple features or steps and do not impose an order limitation or a numerical limitation. For example, the "first", "second", and "third" features or steps do not necessarily appear in this order, and a specific embodiment including such features or steps does not necessarily have to be limited to three features or steps. Expressions such as "left", "right", "up", "down", "front", "rear", etc. are used for convenience and do not, for example, mean any specific fixed position, orientation, or direction. Rather, such expressions are used, for example, to indicate relative positions, orientations, or directions. Unless clearly indicated otherwise from the context, the singular forms represented by "a", "an", and "the" include the plural forms.
[0020] With respect to “proximal,” for example, the “proximal portion” or “proximal end portion” of a catheter disclosed herein includes the portion of the catheter that is closer to the physician when the catheter is used on a patient. Similarly, for example, the “proximal length” of a catheter includes the length of the catheter that is closer to the physician when the catheter is used on a patient. For example, the “proximal end” of a catheter includes the end of the catheter that is closer to the physician when the catheter is used on a patient. The proximal portion, proximal end portion, or proximal length of a catheter may include the proximal end of the catheter, but the proximal portion, proximal end portion, or proximal length of a catheter does not have to include the proximal end of the catheter. In other words, 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.
[0021] With respect to “distal,” for example, the “distal portion” or “distal end portion” of a catheter disclosed herein includes the portion of the catheter that is near or inside the patient when the catheter is used on a patient. Similarly, for example, the “distal length” of a catheter includes the length of the catheter that is near or inside the patient when the catheter is used on a patient. For example, the “distal end” of a catheter includes the end of the catheter that is near or inside the patient when the catheter is used on a patient. The distal portion, distal end portion, or distal length of a catheter may include the distal end of the catheter, but the distal portion, distal end portion, or distal length of a catheter does not have to include the distal end of the catheter. In other words, 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.
[0022] To aid in describing the embodiments described herein, as shown in Figure 1A, the longitudinal axis extends substantially parallel to the axial length of the stem 120. The transverse axis extends perpendicular to the longitudinal axis, and the transverse axis extends perpendicular to both the longitudinal and transverse axes. As used herein, the horizontal plane extends along the transverse and longitudinal axes. The vertical plane extends perpendicular to the horizontal plane.
[0023] Unless otherwise specified, all technical and scientific terms used herein have the same meaning as those generally understood by those skilled in the art. Figures 1A and 1B show an embodiment of a port connector system 100 including a port 108 having a crimpable catheter locking ("catheter lock") mechanism 130 configured to secure a catheter 90 to a stem 120. Figures 1A and 1B show perspective cross-sectional views of the port 108, the catheter lock 130, and the catheter 90. The port 108 may generally include a port body 110 that partitions a reservoir 112 and a needle-penetrating septum 114 positioned above the reservoir 112. The septum 114 may be configured to provide percutaneous access to the reservoir 112 by an access needle. The access needle may penetrate the skin surface and underlying tissue. The access needle may also be biased through the needle-penetrating septum 114 to access the reservoir 112 and provide fluid communication with the reservoir 112.
[0024] Port 108 may further include a stem 120 that defines a stem lumen 122 that is in fluid communication with a reservoir 112. The stem 120 may define a central axis 80 that extends parallel to the longitudinal axis. In one embodiment, the proximal end 94 of the catheter 90 may be biased onto the stem 120 to provide fluid communication between the reservoir 112 and the lumen 92 of the catheter 90. The distal end of the catheter 90 may be positioned within the patient's vascular structure to provide fluid communication with the patient. It should be understood that the subcutaneous port 108 is an exemplary access device, and the embodiments disclosed herein may be used with various ports or similar access devices.
[0025] In one embodiment, the port 108 may include a crimpable catheter locking mechanism 130 integrally coupled with the port 108. The catheter locking mechanism 130 may include a shroud 132 that extends distally from the port body 110 and annularly around the stem 120. In one embodiment, the distal end of the shroud 132 may extend from the distal end of the stem 120 to a proximal point. In one embodiment, the distal end of the shroud 132 may extend from the distal end of the stem 120 to a distal point. In one embodiment, the distal end of the shroud 132 and the distal end of the stem 120 may extend equidistant from the body 110.
[0026] In one embodiment, the shroud 132 may include a stem 120 positioned within the shroud 132, and may define a substantially cylindrical recess 134 extending longitudinally from the distal tip of the shroud 132. In one embodiment, the recess 134 may define a substantially circular or elliptical cross-sectional shape. However, other cross-sectional shapes are also possible. In one embodiment, the recess 134 may define a first diameter (d1) which may be larger than the outer diameter (second diameter) (d2) of the catheter 90. In one embodiment, as shown in Figure 1A, the shroud 132 may include a channel 136 positioned on the outer surface of the shroud 132 and extending annularly around a portion of the shroud 132 with respect to a central axis 80. The channel 136 may define a third diameter (d3). The channel 136 may be configured to receive a portion of the tool 160, as will be described in more detail herein. In one embodiment, as shown in Figure 1B, the outer surface of the shroud 136 may define a third diameter (d3). The shroud 132 may include a flange 154 extending radially from the shroud 136 with respect to the central axis 80. A portion of the tool 160 may engage with the outer surface of the shroud 132 between the flange and the port body 110. The tool 160 may then contact the flange 154, as will be described in more detail herein.
[0027] In one embodiment, the catheter locking mechanism 130 may further include a crimpable collet lock 140. The collet lock 140 is configured to engage with the outer surface of the catheter 90 and secure the catheter 90 to the stem 120 by being plastically deformed or "swaged" from an unlocked or open configuration to a locked or closed configuration. In one embodiment, the collet lock 140 may slidably engage with the outer surface of the catheter 90 and, in a locked configuration, be coupled to the recess 134 by crimp, press-fit, or snap-fit engagement. In one embodiment, as shown in Figure 2A, the collet lock 140 in an unlocked configuration may engage with the entrance 138 of the recess 134 by crimp, press-fit, or snap-fit engagement and be held within the recess 134. Thus, the collet lock 140 may be held by the catheter locking mechanism 130 before the catheter 90 engages with the catheter locking mechanism 130. Advantageously, the catheter locking mechanism 130, with the collet lock 140 in place, may form a single functional unit without requiring the user to assemble different parts of the catheter locking mechanism 130 before engaging the catheter 90 with the catheter locking mechanism 130. This can be particularly important in the limited, naturally lubricated environment of a subcutaneous placement.
[0028] Figures 3A and 3B show further details of the collet lock 140. Figure 3A shows an axial view of the collet lock 140, and Figure 3B shows a side view. In one embodiment, the collet lock 140 may include a ring 142 extending annularly around the central axis 80 of the stem 120. In one embodiment, the outer diameter of the ring 142 may be greater than or less than the inner diameter (d1) of the recess 134. The collet lock 140 may further include one or more fingers 144 extending radially inward from the surface of the ring 142, for example, the inner surface or side surface of the ring 132. Each of the multiple fingers 144 may be coupled to the ring 142 at a base 146 and extend radially inward to a tip 148. In one embodiment, one or more fingers 144 may extend at an angle with respect to the central axis 80. In one embodiment, one or more fingers 144 may be angled toward the port body 110, i.e., extending proximal. In one embodiment, the collet lock 140 or a portion of the collet lock 140 may be formed from a malleable or plastically deformable material such as plastic, polymer, metal, alloy, or composite material.
[0029] In one embodiment, as shown in Figure 3A, the tips 148 of one or more fingers 144 may cooperate to define a diameter (d4). In other words, the radius (r4) extending from the central axis 80 to the tip 148 may be half the diameter (d4). The diameter (d4) may be smaller than the diameter (d1) of the recess 134. In one embodiment, the diameter (d4) may be larger than the outer diameter (d2) of the catheter 90. Thus, as shown in Figure 2A, the catheter 90 may pass through the collet lock 140 and engage with the stem 120 without the catheter 90 engaging with the collet lock 140, and without the collet lock 140 hindering the axial movement of the catheter 90.
[0030] In one embodiment, the diameter (d4) may be less than or equal to the outer diameter (d2) of the catheter 90. In one embodiment, one or more fingers 144 may be configured to receive the catheter 90 between the fingers 144 by elastically deforming radially outward. In one embodiment, the tips 148 of one or more fingers 144 may engage in an interlocking fit with the outer surface of the catheter 90 by elastically deforming radially outward. Thus, multiple fingers 140 may engage in an interlocking fit with the catheter 90. Advantageously, the collet lock 140 held within the catheter locking mechanism 130 may slidably engage with the catheter 90 in the unlocked or open position, and may hold the catheter 90 against the catheter locking mechanism 130 before the collet lock 140 moves to the locked position.
[0031] In one embodiment, the diameter (d4) may be less than or equal to the outer diameter (d5) of the stem 120. Thus, the tips 148 of one or more fingers 144 may engage with the outer surface of the stem 120 in an interlocking fit by elastically deforming radially outward. Advantageously, the collet lock 140 may be held in the catheter locking mechanism 130 in an unlocked configuration by engaging with the stem 120. In one embodiment, the catheter 90 may be biased into a recess 134 between the plurality of fingers 144 and the outer surface of the stem 120, and the plurality of fingers 144 may be elastically deformed radially outward to enable the catheter 90 to engage with the stem 120. The catheter locking mechanism 130 may then be transitioned to a locked configuration as described herein.
[0032] In one embodiment, as shown in Figure 2E, the outer surfaces of one or more fingers 144 may engage with the surface of the recess 134, for example, the entrance 138, in the unlocked position by interlocking, press-fitting, or snap-fitting. In one embodiment, one or more fingers 144 may elastically deform the outer surfaces of one or more fingers 144 radially inward. Alternatively, one or more fingers 144 may include projections, retainers, clips, return mechanisms, or similar structures configured to engage with the recess 134 in a snap-fitting manner. Advantageously, the recess 134 may hold the collet lock 140 within the recess in the unlocked position.
[0033] In one embodiment, as shown in Figures 4A to 4D, the port connector system 100 may further include a tool 160. The tool 160 is configured to shift the catheter locking mechanism 130 from an unlocked configuration to a locked configuration by swaging the collet lock 140 into a recess 134, and to fix the catheter 90 to the stem 120. In one embodiment, the tool 160 or a portion of the tool 160 may be made of plastic, polymer, metal, alloy, composite material, or a combination thereof. Figure 4A shows a perspective view of the tool 160. Figure 4C shows an end view of the tool 160 as seen from the second end 164. Figures 4B and 4D show enlarged detail views of a portion of the tool 160 extending between the hinge 172 and the second end 164.
[0034] In one embodiment, the tool 160 may include a first arm 162A and a second arm 162B that are hinged to each other. Each arm 162 may extend between a first end 164 and a second end 166. That is, the first arm 162A may extend from the first end 164A of the first arm to the second end 166A of the first arm. The second arm 162B may extend from the first end 164B of the second arm to the second end 166B of the second arm. Each arm 162 may include a handle portion 168 positioned close to the second end 166 and an engaging tip 170 or "fork" positioned close to the first end 164. The first arm 162A may be hinged to the second arm 162B at a hinge 172 positioned at a point between the first end 164 and the second end 166. Therefore, by rotating the first handle 168A toward the second handle 168B, the first engaging tip 170A can be rotated toward the second engaging tip 170B.
[0035] In one embodiment, the distance between the hinge 172 and the second end 166 may be greater than the distance between the hinge 172 and the first end 164. Thus, the tool 160 may offer a mechanical advantage in the compression between the first engaging end or "first fork" 170A and the second engaging end or "second fork" 170B as the first handle 168A is rotated toward the second handle 168B.
[0036] As shown in Figures 4B to 4D, each engaging tip or fork 170 may include a first tine 174 and a second tine 176. The first tine 174 and the second tine 176 extend away from the hinge 172 and define a notch 178 between the first tine 174 and the second tine 176. In one embodiment, the width (w1) of the notch 178 may be greater than or equal to the diameter (d3) of the channel 136 or shroud 132. Thus, the notch 178 may engage with the shroud 132 by an interference fit or press-fit engagement. In one embodiment, the width (w1) of the notch 178 may be greater than or equal to the diameter (d2) of the catheter 90. In one embodiment, as shown in Figures 4B to 5, the inner surface 180 of the engaging tip 170 may include a recess 182 extending along the edge of the notch 178. The recess 182 may define a second width (w2) that is larger than the first width (w1). The second width (w2) may be greater than or equal to the outer diameter of the ring 142 of the collet lock 140 (Figure 5). In one embodiment, the recess 182 may be configured to receive the ring 142 and reduce lateral or transverse movement of the collet lock 140 relative to the tool 160. In one embodiment, the recess 182 may be configured to engage with the ring 142 by an interlock, press-fit, or snap-fit engagement. Advantageously, the recess 182 may reduce accidental slippage of the collet lock 140 relative to the tool 160 when an axial force is applied.
[0037] In an exemplary use, a port system 100 is provided which includes a crimpable collet lock 140 and a tool 160 as described herein. As shown in Figure 2A, the catheter 90 may be engaged in an interlocking fit with the stem 120 by being inserted through the collet lock 140 into the catheter locking mechanism 130, into the recess 134, and onto the stem 120. In one embodiment, the collet lock 140 may be held in the recess 134 by the outer surface of the collet lock 140 engaging with the surface of the recess 134, for example, the entrance 138. In one embodiment, the multiple fingers 144 of the collet lock 140 may engage in an interlocking fit with the catheter 90 in an unlocked configuration and reduce the retrograde movement of the catheter 90 from the recess 134. In one embodiment, the multiple fingers 144 may hold the collet lock 140 in the recess 134 by engaging in an interlocking fit with the stem 120.
[0038] As shown in Figures 2B and 2C, the tool 160 may engage with the catheter locking mechanism 130. Figure 2B shows a vertical cross-sectional view extending along the central axis 80 of the stem 120. Figure 2C shows a horizontal cross-sectional view extending along the central axis 80 of the stem 120. In one embodiment, the first engaging tip 170A of the first arm 162A may engage with the channel 136 and / or the shroud 132. The second engaging tip 170B of the second arm 162B may engage with the collet lock 140 and / or the catheter 90. In one embodiment, the first engaging tip 170A of the first arm 162A may engage with the collet lock 140 and / or the catheter 90. The second engaging tip 170B of the second arm 162B may engage with the channel 136 and / or the shroud 132.
[0039] In one embodiment, as shown in Figure 2B, a portion of the channel 136 or shroud 132 may be received within the first notch 178A. The first inner surface 180A of the first engaging tip 170A may engage with the surface of the shroud 132 or flange 154. Furthermore, a portion of the catheter 90 may be received within the second notch 178B. The second inner surface 180B of the second engaging tip 170B may engage with the surface of the collet lock 140, for example, the ring 142. In one embodiment, the notch 178 may engage with one of the catheter 90, the channel 136, and the shroud 132 by an interlock or press-fit engagement. In one embodiment, the notch 178 may include a projection (not shown) extending from the surface of the notch 178 into the notch 178. Thus, the notch 178 may engage with one of the catheter 90, the channel 136, and the shroud 132 by a snap-fit engagement.
[0040] As shown in Figure 2D, the tool 160 may apply an axial force to the catheter locking mechanism 130 by biasing the first engaging tip 170A and the second engaging tip 170B toward each other along the central axis 80. Thus, the tool 160 may swage or plastically deform the collet lock 140 into the recess 134. The outer surface of the ring 142 or multiple fingers 144, or both, may engage with the recess 134 by interlocking, press-fitting, or snap-fitting engagements. The tips 148 of one or more fingers 144 may engage with the outer surface of the catheter 90 and compress the catheter 90 either onto the stem 120 or onto the inner surface of the recess 134. Advantageously, this reduces discomfort by mitigating the direct pressure applied to the patient by the "pinching" action of the tool 160, and also reduces the risk of injury from slipping in the naturally lubricated environment of subcutaneous placement.
[0041] In one embodiment, as shown in Figure 5, the engaging tip 170 may include a recess 182. Figure 5 shows the inner surface 180A of the first arm 162A of the tool 160, with the collet lock 140 aligned with the first recess 182A. As can be understood, the second arm 162A may include a second recess 182A. The width (w2) of the recess 182 may be greater than or equal to the diameter of the ring 142. Thus, the ring 142 may fit into the recess 182 and abut against the side wall of the recess 182 in a lateral or transverse direction. Thus, the recess 182 may ensure a secure fit between the ring 142 and the engaging tip 170 and prevent the tool 160 from slipping when an axial force is applied.
[0042] In one embodiment, as shown in Figure 6, the port system 100 may include an extension leg 150 extending between the port 108 and the catheter locking mechanism 130. The extension leg 150 may define an extension leg lumen 152 that provides fluid communication between the stem lumen 122 and the reservoir 112. The extension leg may be formed of a rigid or flexible material. Advantageously, the extension leg 150 may keep the port 108 stationary while the user aligns the catheter 90 with the catheter lock 130 and engages it with the catheter lock 130 by operating the catheter 90 and / or catheter locking mechanism 130, as described herein.
[0043] While several specific embodiments are disclosed herein, and some embodiments are disclosed in some degree of detail, the scope of the concepts provided herein is not intended to be limited by any particular embodiment. Additional adaptations and / or modifications may be understood by those skilled in the art. In broader embodiments, these adaptations and / or modifications are also encompassed. Thus, one may deviate from any particular embodiment disclosed herein without departing from the scope of the concepts provided herein.
Claims
1. A catheter-port coupling system, wherein the system is A catheter that compartmentalizes the first diameter, A port comprising a shroud extending axially from the port, the shroud comprising a recess having a second diameter larger than the first diameter, the recess comprising a stem, the stem extending axially and configured to engage with the lumen of the catheter, A collet lock that extends in an annular shape around a stem axis and is configured to fix the catheter to the port by transitioning between an unlocked configuration and a locked configuration when an axial force is applied, comprising: a collet lock that, in the locked configuration, fixes the catheter to the port by engaging the inner surface of the recess while the catheter, through which the stem is inserted in the lumen, is compressed on the stem or on the inner surface of the recess; A system comprising a channel that defines a third diameter and is located on the outer surface of the shroud, extending annularly around a portion of the shroud with respect to the central axis of the stem, and configured to engage with a tool to plastically deform the collet lock from the unlocked configuration to the locked configuration, or a system comprising a flange on the outer surface of the shroud that defines a third diameter and the shroud extending radially from the shroud with respect to the central axis, configured to engage with a tool to plastically deform the collet lock from the unlocked configuration to the locked configuration.
2. The system according to claim 1, further comprising an extension leg made of a flexible material, which extends between the shroud and the port and is integrally formed with the shroud and the port, and provides fluid communication between the shroud and the port.
3. The system according to claim 1 or 2, wherein a portion of the collet lock is held in the recess in the unlock configuration, and the outer surface of the collet lock engages with the inner surface of the recess in one of the following ways: press-fit, press-fit, and snap-fit engagement.
4. The system according to any one of claims 1 to 3, wherein the collet lock includes a plurality of fingers configured to plastically deform radially inward when transitioned to the lock configuration.
5. The system according to claim 4, wherein the plurality of fingers contact the surface of the recess when the collet lock is moved from the unlocked configuration to the locked configuration by an axial force.
6. The system according to claim 4 or 5, wherein the tip of one of the plurality of fingers engages with the outer surface of the catheter in the locking configuration, thereby compressing the catheter onto the stem.
7. The system according to any one of claims 4 to 6, wherein the tips of the plurality of fingers define a diameter larger than the first diameter of the catheter.
8. The system according to any one of claims 1 to 7, wherein the port includes a reservoir that is in fluid communication with the stem, and the reservoir has a septum through which a needle can be inserted.
9. The system according to any one of claims 1 to 8, further comprising the tool configured to engage with the shroud and the collet lock, the tool configured to plastically deform the collet lock from the unlocked configuration to the locked configuration by applying an axial force.
10. The system according to claim 9, wherein the tool includes a first arm hinged to a second arm, the tip of the first arm includes a first fork configured to engage with the port, and the tip of the second arm includes a second fork configured to engage with the collet lock.
11. The system according to claim 10, wherein one or both of the first fork and the second fork include a first tine and a second tine that define a notch having a first width, the first width being equal to or greater than the first diameter of the catheter.
12. The system according to claim 11, wherein the shroud includes the channel defining the third diameter which is less than or equal to the first width, and the first fork engages with the channel of the shroud by one of an interlocking fit, press-fit, and snap-fit engagement.
13. The system according to claim 11 or 12, wherein one or both of the first fork and the second fork include a recess extending along the edge of the notch, the recess defining a second width, the second width being greater than the outer diameter of the collet lock, and the surface of the recess engages with the collet lock when the axial force is applied.
14. A method for connecting a catheter to a port, wherein the method is A step of biasing the catheter onto the stem of the port, A step of engaging the first engaging tip of the tool with the shroud of the port, The shroud includes a channel that defines a diameter, is located on the outer surface of the shroud, and extends annularly around a portion of the shroud with respect to the central axis of the stem, and the tool is received in the channel, or the outer surface of the shroud defines a diameter, and the shroud includes a flange that extends radially from the shroud with respect to the central axis, and the tool abuts against the flange, The process, The steps include engaging the second engaging tip of the tool with the collet lock, A step of biasing the first engagement tip toward the second engagement tip along the axis of the stem, The procedure includes the step of fixing the catheter to the stem by plastically deforming the collet lock from an open configuration to a closed configuration, The shroud defines the recess including the stem, The collet lock in the closed configuration is a method of fixing the catheter to the stem by engaging the inner surface of the recess with the catheter, in which the stem is inserted through the lumen of the catheter, while the catheter is compressed on the stem or on the inner surface of the recess.
15. The method according to claim 14, wherein the outer surface of the collet lock in the open configuration engages with the inner surface of the recess by one of the following: interference fit, press fit, and snap fit engagement.
16. The method according to claim 15, further comprising the step of transitioning the collet lock from the open configuration to the closed configuration by plastically deforming a plurality of fingers of the collet lock radially inward, wherein the plurality of fingers abut against the surface of a recess.
17. The method according to claim 16, further comprising the step of compressing the catheter onto the stem by engaging the tip of one of the plurality of fingers with the outer surface of the catheter.
18. The method according to claim 17, wherein the tips of the plurality of fingers define a diameter larger than the diameter of the catheter.
19. The method according to claim 18, wherein one or both of the first engaging tip and the second engaging tip include a first tine and a second tine that define a notch having a first width, the first width being greater than the diameter of the catheter.
20. The method according to claim 19, wherein the shroud includes a channel that defines a channel diameter having a first width or less, and the first engaging tip engages with the channel of the shroud.
21. The method according to claim 19 or 20, wherein one or both of the first and second engaging tips are recesses extending along the edge of the notch, comprising a recess defining a second width, the second width being greater than the outer diameter of the collet lock, and the surface of the recess engages with the collet lock when the first engaging tip is biased toward the second engaging tip.
22. The method according to any one of claims 14 to 21, further comprising an extension leg made of a flexible material, which extends between the shroud and the port and is integrally formed with the shroud and the port, and provides fluid communication between the shroud and the port.
23. The method according to any one of claims 14 to 22, wherein the port includes a reservoir that is in fluid communication with the stem, and the reservoir has a septum through which a needle can be inserted.
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