Catheter Assembly

The catheter assembly integrates active and passive needle protection with variable retraction speeds to address exposure risks and blood splash, providing enhanced safety and handling through a spring clip and barrel assembly design.

JP7748997B2Active Publication Date: 2025-10-03BECTON DICKINSON & CO
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Patent Information

Application Number
JP2023209321
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2017-07-31
Filing Date
2023-12-12
Publication Date
2025-10-03
Estimated Expiration
2038-07-17

AI Technical Summary

Technical Problem

Existing catheter assemblies face issues with inadequate needle protection mechanisms, including user forgetfulness in active systems and exposure risks in passive systems, as well as inconsistent needle retraction speeds leading to blood splash.

Method used

A catheter assembly combining active and passive needle protection systems, featuring a spring clip that automatically encapsulates the needle tip and a variable retraction speed controlled by a barrel assembly with varying inner diameters and damping mechanisms to ensure safe and smooth needle retraction.

Benefits of technology

The combined system effectively prevents needle re-exposure and reduces blood splash by ensuring the needle is safely enclosed, with controlled retraction speeds that enhance user safety and handling.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a catheter assembly incorporating both an active system and a passive system for a needle protection mechanism.SOLUTION: A catheter assembly includes: a catheter supported by a catheter adaptor; a needle having a sharp distal end disposed in the catheter so as to extend beyond the catheter at a first needle position; a braking mechanism fixed adjacently to a proximal end of the needle; and a barrel assembly disposed so as to surround the braking mechanism, which has a first inner diameter and a second inner diameter. When the needle leaves the first needle position and is pulled into the barrel assembly, the needle moves according to a needle pull-in speed profile based on the interaction between the first inner diameter and the second inner diameter of the barrel assembly, and the braking mechanism.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] Various embodiments of the present invention relate to needle protection and needle retraction in a catheter assembly. [Background technology]

[0002] This application claims the benefit of 35 U.S.C. §119(e) of U.S. patent application Ser. No. 15 / 664,827, filed Jun. 31, 2017, which is incorporated herein by reference.

[0003] A typical catheter assembly includes one of two types of needle protection mechanisms. An active system is a needle protection mechanism that requires a separate action by the user to initiate needle protection, such as pressing an activation button that initiates automatic and immediate needle retraction into the barrel assembly. This action would occur after the needle has been withdrawn from the patient's skin and the catheter. A passive system, on the other hand, is a needle protection mechanism that automatically protects the needle when the user manually retracts the needle from the catheter, typically using a spring clip, without requiring a separate action by the user. In other words, the needle is immediately protected as the needle is withdrawn from the patient's skin and the catheter.

[0004] Each needle protection mechanism presents various drawbacks. Specifically, in active systems, the user may forget to depress the activation button or neglect to perform a secondary user action to protect the needle. For example, if the activation button is not depressed, the blood-coated needle tip is undesirably exposed to the patient's body after use. In passive systems, the spring clip includes an undesirably sharp end, exposing the needle and spring clip to blood, and the spring clip can be manually manipulated to expose the distal tip of the needle after the needle is coated.

[0005] Various means exist for damping the rate of needle retraction into the barrel assembly of the catheter assembly. Some damping mechanisms include silicone gel, O-rings, and silicone washers; however, these damping mechanisms do not always adequately control the rate of needle retraction. Summary of the Invention [Problem to be solved by the invention]

[0006] One aspect of the present invention is to provide a catheter assembly incorporating both active and passive systems for needle protection mechanisms. Such a catheter assembly alleviates the aforementioned disadvantages and improves needle protection and needle retraction. Specifically, the needle tip is encapsulated by a spring clip, and the needle is retracted into the barrel assembly. In this manner, if the user forgets to press the trigger button, the distal end is already protected by the spring clip. When the trigger button is depressed, the needle and spring clip are retracted into the barrel assembly, thereby protecting the user from all danger. Thus, the catheter assembly prevents re-exposure of the needle and reduces blood exposure.

[0007] Another aspect of the present invention is to provide a controlled, variable retraction speed of the needle into the barrel assembly of the catheter assembly. Advantageously, such a catheter assembly provides a gradual needle retraction at the beginning and end of needle travel to reduce blood splash and provide smooth needle movement during retraction. Advantageously, a velocity decay profile is used to control the speed of needle retraction. [Means for solving the problem]

[0008] The above and / or other aspects of the present invention can be accomplished by providing a catheter assembly including a catheter carried in a catheter adapter; a needle having a sharpened distal end and positioned in the catheter such that the needle extends beyond the catheter at a first needle position; a needle hub secured adjacent the proximal end of the needle; a clip positioned in the catheter adapter and cooperating with the needle; and a barrel assembly having an inner diameter, wherein the clip encapsulates the distal end of the needle when the needle is in a second needle position and the needle is positioned within the inner diameter of the barrel assembly when the needle is moved to a third needle position.

[0009] The above and / or other aspects of the present invention are accomplished by a clip in a catheter assembly, the clip having one or more flexible arms, an opening for a needle to pass therethrough, one or more distal walls having a lip, and a rear wall connected to the one or more arms, the one or more flexible arms designed to bias against the needle in an open position and to encapsulate the distal end of the needle in a closed position, thereby opening and closing the clip, the lip biasing against the needle in the open position, the distal wall and lip obstructing the needle to close the clip in the closed position, and the rear wall having a tapered outer surface designed to guide movement of the clip into the barrel assembly.

[0010] The above and / or other aspects of the present invention are further accomplished by a barrel assembly in a catheter assembly, the barrel assembly including a barrel, a handle, a needle hub secured to the needle, a spring disposed between the needle hub and the barrel, and an actuation button designed to engage and disengage the needle hub, the barrel and the handle each having an inner diameter, the inner diameter of the handle having a tapered inner surface designed to guide movement of a clip into the handle and barrel when the actuation button is depressed.

[0011] The above and / or other aspects of the present invention can be accomplished by providing a catheter assembly including: a catheter carried by a catheter adapter; a needle having a sharpened distal end and positioned in the catheter such that the needle extends beyond the catheter at a first needle position; a needle hub adjacent the proximal end of the needle and secured to a brake mechanism; a clip positioned in the catheter adapter and cooperating with the needle; and a barrel assembly surrounding the needle hub, wherein the clip encloses the distal end of the needle when the needle is at a second needle position; and when the needle moves to a third needle position, the elastic force of the spring retracts the needle into the barrel assembly, the barrel assembly including a first inner diameter, a second inner diameter, and a third inner diameter, wherein friction between the brake mechanism and the first inner diameter slows initial movement of the needle hub through the barrel assembly, a clearance between the brake mechanism and the second inner diameter provides faster movement of the needle through the barrel assembly, and friction between the brake mechanism and the third inner diameter slows movement of the needle hub to a stop position at the proximal end of the barrel assembly.

[0012] The foregoing and / or other aspects of the present invention can be accomplished by providing a catheter assembly including: a catheter carried in a catheter adapter; a needle having a sharpened distal end and disposed in the catheter such that the needle extends beyond the catheter at a first needle position; a needle hub adjacent the proximal end of the needle and secured to a first brake mechanism; a clip disposed in the catheter adapter and cooperating with the needle; a barrel assembly surrounding the needle hub; a spring disposed between the barrel assembly and the needle hub; and a spring. a second brake mechanism disposed at the proximal end of the barrel assembly; the barrel assembly includes a first inner diameter and a second inner diameter; the clip encapsulates the distal end of the needle when the needle is in the second needle position; the elastic force of the spring retracts the needle into the barrel assembly as the needle moves to the third needle position; friction between the second brake mechanism and the spring slows initial movement of the needle hub through the barrel assembly; a gap between the second brake mechanism and the first inner diameter provides faster movement of the needle through the barrel assembly; and engagement of the first brake mechanism with the second inner diameter slows movement of the needle hub to a stop position at the proximal end of the barrel assembly.

[0013] The above and / or other aspects of the present invention can be accomplished by providing a catheter assembly including: a catheter carried by a catheter adapter; a needle having a sharp distal end and disposed within the catheter; a needle hub secured adjacent to the proximal end of the needle; a clip disposed in the catheter adapter and cooperating with the needle; and a barrel assembly surrounding the needle hub, wherein the proximal end of the needle hub is secured to a brake mechanism, and the proximal end of an inner surface of the barrel assembly includes said brake mechanism, wherein the clip covers the distal end of the needle when the needle is in a second needle position, wherein the needle is retracted into the barrel assembly by the elastic force of a spring as the needle moves to a third needle position, wherein the brake mechanism and the spring slow the initial movement of the needle hub in the barrel assembly, and wherein as the needle hub approaches an end of its movement, the brake mechanism and the spring slow the movement of the needle hub to a stop position at the proximal end of the barrel assembly.

[0014] Finally, the above and / or other aspects of the present invention are accomplished by providing a method for shielding and encapsulating a needle of a catheter assembly, the method including the steps of: removing a needle from a patient's skin, the needle being secured to a needle hub; retracting the needle via the needle hub from a first needle position to a second needle position into a catheter and catheter adapter; shielding the distal end of the needle with a clip via a passive system, the needle being in the second needle position; and operating an active system to move the needle, clip, and needle hub from the second needle position to a third needle position, where the needle, clip, and needle hub are encapsulated in the barrel assembly.

[0015] Additional and / or alternative aspects and advantages of the invention will be set forth in or will be obvious from the description that follows, or may be learned by practice of the invention.

[0016] The above aspects and features of the present invention will become more apparent from the following description of illustrative embodiments of the invention, taken in conjunction with the accompanying drawings. [Brief explanation of the drawings]

[0017] [Figure 1] FIG. 1 is a side view of a first exemplary configuration of a catheter assembly in a first needle position. [Figure 2] 2 is a cross-sectional view of the catheter assembly of FIG. 1 during movement to a second needle position. [Figure 3] FIG. 3 is a cross-sectional view of the catheter adapter of FIG. 2. [Figure 4] FIG. 3 is a partial cross-sectional view of the barrel assembly of FIG. 2. [Figure 5] FIG. 5 is a partial cross-sectional view of a needle hub in the barrel assembly of FIG. 4. [Figure 6] FIG. 2 is a side view of the catheter assembly of FIG. 1 in a second needle position. [Figure 7] FIG. 2 is a partial cross-sectional view of the catheter assembly of FIG. 1 during movement to a third needle position. [Figure 8] FIG. 2 is a partial cross-sectional view of the catheter assembly of FIG. 1 in a third needle position. [Figure 9] FIG. 9 is a partial cross-sectional view of a spring clip in the barrel assembly of FIG. 8. [Figure 10] FIG. 10 is a partial cross-sectional view of a second exemplary configuration of a catheter assembly during movement to a second needle position. [Figure 11] FIG. 11 is a partial cross-sectional view of the catheter adapter of FIG. 10. [Figure 12] 12 is a perspective view of the spring clip and clip housing of FIG. 11 during movement to the second needle position. [Figure 13] FIG. 11 is a partial cross-sectional view of the barrel assembly of FIG. [Figure 14] FIG. 14 is a partial cross-sectional view of a needle hub in the barrel assembly of FIG. 13. [Figure 15] FIG. 11 is a perspective view of the spring clip and clip housing of FIG. 10 in the second needle position. [Figure 16] FIG. 11 is a top cross-sectional view of the spring clip, clip housing and barrel assembly of FIG. 10 in the second needle position. [Figure 17] FIG. 11 is a perspective cross-sectional view of the spring clip, clip housing and barrel assembly of FIG. 10 in the second needle position. [Figure 18] FIG. 11 is a perspective cross-sectional view of the spring clip, clip housing and barrel assembly of FIG. 10 in a third needle position. [Figure 19] FIG. 11 is a partial cross-sectional view of the barrel assembly of FIG. 10 in a third needle position. [Figure 20] FIG. 10 is a cross-sectional view of a third exemplary form of a barrel assembly with the needle hub in a starting position. [Figure 21] FIG. 21 is a cross-sectional view of the barrel assembly of FIG. 20 with the needle hub in an intermediate position. [Figure 22] FIG. 21 is a cross-sectional view of the barrel assembly of FIG. 20 with the needle hub in an end position. DETAILED DESCRIPTION OF THE INVENTION

[0018] 1-9 illustrate a first exemplary configuration of a catheter assembly 10. FIG. 1 illustrates the catheter assembly 10 in a first, ready-to-operate needle position. According to one embodiment, the catheter assembly 10 includes a hollow introducer needle 20 having a sharpened distal end 24 for insertion into a patient's skin. The needle 20 is disposed within a flexible catheter 30. The catheter 30 is used for drug delivery during use of the catheter assembly 10. In the first needle position, the sharpened distal end 24 of the needle 20 extends beyond the catheter 30 for insertion.

[0019] According to one embodiment, the catheter 30 and needle 20 are carried or surrounded by a catheter adapter 32. Figure 2 illustrates the needle 20 moving from a first needle position to a second needle position after a user has placed the catheter 30 within a patient's body and removed the needle 20 from the patient.

[0020] 3 illustrates the catheter adapter 32 when the needle 20 is being retracted and approaching the second needle position, according to one embodiment. The catheter adapter 32 includes a retention piece 34 that includes a protrusion. The retention piece 34 retains the spring clip 40 when the spring clip 40 is in the open position as illustrated. Operation of the spring clip 40 is described further below.

[0021] The spring clip 40 is disposed within the catheter adapter 32 and cooperates with the needle 20 by selectively encapsulating and restraining the sharpened distal end 24 of the needle 20. The components and operation of the spring clip 40 are generally described in U.S. Pat. No. 6,616,630, which is incorporated herein by reference.

[0022] Specifically, according to one embodiment, the spring clip 40 includes an opening 42 through which the needle 20 passes. One or more flexible arms 44, preferably two flexible arms 44, of the spring clip 40 engage and bias the needle 20 in an open position before the needle enters the second needle position. The flexible arms 44 apply a resilient force to two sides of the needle 20. At the first needle position and prior to the second needle position, the spring clip 40 is open, allowing the needle 20 to pass through.

[0023] The distal end of the flexible arm 44 includes a distal wall 50. The distal wall 50 is a sloped wall having a lip 52 at one end that contacts the needle 20. The lip 52 is bent into an inward position on the distal wall of the spring clip 40.

[0024] The spring clip 40 further includes a rear wall 46. The rear wall 46 is substantially perpendicular to the longitudinal axis of the needle 20 and interconnects the two flexible arms 44. The rear wall 46 also includes the aforementioned opening 42. Preferably, the rear wall 46 includes a tapered outer surface 48. In another embodiment, the tapered outer surface 48 includes a radius or chamfer. As described further below, the tapered outer surface 48 advantageously provides guided movement of the spring clip 40 into the handle 71 and barrel 72.

[0025] 4 and 5 illustrate a barrel assembly 70. According to one embodiment, the barrel assembly 70 includes a handle 71 (also referred to as a grip) and a barrel 72 (also referred to as a barrel housing). The handle 71 includes an inner diameter 74 and a tapered inner surface 76 at the distal end of the handle 71. In another embodiment, the tapered inner surface 76 includes a radius or chamfer. In another embodiment, the tapered inner surface 76 provides a connection or transition between the outer surface of the handle 71 and the inner surface of the handle 71. The distal end of the barrel 72 is connected to the proximal end of the handle 71 during operation.

[0026] In this embodiment, the catheter assembly 10 includes both a tapered inner surface 76 at the distal end of the handle 71 and a tapered outer surface 48 of the spring clip 40. In another embodiment, the catheter assembly 10 includes only the tapered inner surface 76 at the distal end of the handle 71. Similarly, in another embodiment, the catheter assembly 10 includes only the tapered outer surface 48 of the spring clip 40. In another embodiment, the catheter assembly 10 does not include either the tapered inner surface 76 at the distal end of the handle 71 or the tapered outer surface 48 of the spring clip 40.

[0027] Tapered inner surface 76 cooperates with tapered outer surface 48 of spring clip 40 to advantageously engage and guide spring clip 40 into handle 71 and barrel 72. Similarly, tapered outer surface 48 advantageously engages tapered inner surface 76 to center spring clip 40 in handle 71 and barrel 72. Handle 71 and barrel 72 house components of barrel assembly 70, as described further below.

[0028] Barrel assembly 70 further includes a needle hub 80. Needle hub 80 is secured to needle 20 and moves within handle 71 and barrel 72. Specifically, needle hub 80 is secured adjacent the proximal end of needle 20. As illustrated in FIG. 1 , needle hub 80 is coupled to catheter adapter 32 when needle 20 is in a first needle position. Movement of needle hub 80 retracts the needle from a second needle position to a third needle position, as described below.

[0029] The handle 71 and barrel 72 also interact with an actuating button 78 to engage and disengage a needle hub 80 and a spring 82. Specifically, the spring 82 is disposed around the needle 20 and extends between the needle hub 80 and the proximal end of the barrel 72. The actuating button 78 contacts the needle hub 80 while the spring 82 is compressed. When the actuating button 78 is depressed, the needle hub 80 no longer contacts the actuating button 78, and the spring 82 is then released, moving the needle hub 80 through the handle 71 and toward the proximal end of the barrel 72. That is, the actuating button 78 is movably mounted in articulation with the distal end of the barrel 72 and adapted for selective engagement with the needle hub 80 to hold the needle hub 80 at the distal end of the barrel 72 against the bias of the spring 82. In the first needle position, the needle 20 extends beyond the distal end of the handle 71 and barrel 72 through the catheter with the catheter hub 32 adjacent the distal end of the barrel 72. The operation of the activation button 78 is described in U.S. Patent Nos. 5,501,675 and 5,797,880, which are incorporated herein by reference. A further description of operation is provided below.

[0030] According to one embodiment, Figure 6 illustrates the catheter assembly 10 in the second needle position. In this position, the sharp distal end 24 of the needle 20 is disposed within the spring clip 40 and shielded from the external environment. Movement of the needle by the user from the first needle position to the second needle position corresponds to a passive system because, in the same manual operation, the needle 20 is withdrawn from the patient's skin and the spring clip 40 protects the needle 20.

[0031] 7, the spring clip 40 is in a closed position with the two flexible arms 44 biased toward each other to encase the sharp distal end 24 of the needle 20. In other words, the distal wall 50 and lip 52 overlap each other, closing the spring clip 40 in the closed position. Specifically, the lip 52 of one flexible arm 44 contacts the distal wall 50 of the other flexible arm 44. The two flexible arms 44 of the spring clip 40 are no longer biasing against the needle 20. Therefore, the flexible arms 44 close the distal end of the spring clip 40, preventing the needle 20 from being withdrawn.

[0032] The needle 20 also includes a needle deformation 22 that provides the needle 20 with a local diameter that is larger than the diameter of the opening 42 in the spring clip 40. The needle deformation 22 prevents the needle 20 from withdrawing from the spring clip 40 at the proximal end of the spring clip 40. Another means for retaining the sharpened distal end 24 within the spring clip 40 includes a spring clip that engages with a plate or notch in the needle, as described in U.S. Pat. No. 4,952,207, which is incorporated herein by reference.

[0033] When the spring clip 40 is placed in the closed position, the spring clip 40 is no longer engaged with the retaining piece 34 of the catheter adapter 32. Thus, as illustrated in FIG. 6 , the spring clip 40 is no longer retained within the catheter adapter 32 and can now be withdrawn from the catheter adapter 32.

[0034] According to one embodiment, FIG. 8 illustrates the barrel assembly 70 when the catheter assembly 10 is in the third needle position. As previously described, when the actuating button 78 is depressed, the spring 82 and needle hub 80 are released and retracted toward the proximal end of the barrel 72. That is, the actuating button 78 initiates an operative movement in which the needle 20, spring clip 40, and needle hub 80 are enclosed within the barrel 72. During this movement, the tapered inner surface 76 of the inner diameter 74 of the handle 71 cooperates with the tapered outer surface 48 of the spring clip 40 to advantageously engage and guide the spring clip 40 into the handle 71 and barrel 72. The tapered outer surface 48 also engages the tapered inner surface 76 to advantageously center the spring clip 40 in the handle 71 and barrel 72.

[0035] The transition from the second needle position to the third needle position corresponds to an active system because a second step occurs following the initial withdrawal of the needle 20 from the patient's skin. Specifically, in this second step, the user depresses the activation button 78, causing the needle 20 to automatically retract due to the elastic force of the spring 82. Thus, in this third needle position, the sharpened distal tip 24 and spring clip 40 are safely enclosed within the barrel 72.

[0036] In one embodiment, when catheter 30 is inserted into the patient's skin and actuation button 78 is depressed, needle 20 and needle hub 80 are immediately withdrawn into barrel assembly 70. Under this scenario, tip shielding at the second needle position occurs automatically. This movement corresponds to a passive system.

[0037] In the prior art, the spring clip typically does not retract into the barrel. Either the spring clip is used to cover the sharp distal end of the needle, or the needle without the spring clip is retracted into the barrel. Advantageously, the catheter assembly 10 described herein combines active and passive systems to ensure increased safety for the user and reduce blood exposure and splash. The catheter assembly 10 improves handling by providing a tapered inner surface 76 of the inner diameter 74 of the handle 71 that cooperates with the tapered outer surface 48 of the spring clip 40.

[0038] 10-19 illustrate a second exemplary configuration of the catheter assembly 110. The catheter assembly 110 is a modified version of the previously described catheter assembly 10, with the following differences: Figure 10 illustrates the catheter assembly 110 after the user has withdrawn the needle 120 from the distal end of the catheter 130 and placed the sharpened distal end 124 of the needle 120 into the catheter adapter 132.

[0039] According to one embodiment, FIG. 11 illustrates a needle 120 within a catheter adapter 132. Similar to the previous embodiment, a spring clip 140 selectively opens and closes to expose and enclose the sharpened distal end 124 of the needle 120. The spring clip 140 includes an opening 142 through which the needle 120 passes. The spring clip 140 includes a curved portion 154, a distal wall 150, and a lip 152 to enclose the sharpened distal end 124. The curved portion 154 is designed to appropriately bend the flexible arms 144 between the open and closed positions of the spring clip 140. Additionally, the spring clip 140 includes a rear wall 146 and a tapered outer surface 148 at the proximal end of the spring clip 140. The catheter adapter 132 further includes a retaining member 134 that holds the spring clip 140 via the flexible arms 144 until the spring clip 140 is closed.

[0040] 11 and 12 also illustrate a clip housing 156 that partially encloses the spring clip 140. The features and operation of the clip housing 156 are similar to those disclosed in U.S. Patent Application No. 15 / 481,166, filed April 6, 2017, which is incorporated herein by reference. Specifically, the clip housing 156 advantageously covers the sharp edges of the spring clip 140 to protect the user from inadvertent contact. The clip housing 156 also includes securing and / or engaging components that protect against inadvertent separation from the spring clip 140.

[0041] The flexible arms 144 of the spring clip 140 extend outside the clip housing 156 when the spring clip 140 is in the open position. Also, advantageously, the clip housing 156 of this embodiment includes a tapered outer surface 158 at the distal end of the clip housing 156. In another embodiment, the tapered outer surface 158 includes a radius or chamfer. As described further below and in the previous embodiment, the tapered outer surface 158 is advantageously designed to provide guided movement into the handle 171 and barrel 172. Also, advantageously, the tapered outer surface 158 centers the spring clip 140 within the handle 171 and barrel 172. Thus, the tapered outer surface 158 of the clip housing 156 cooperates with the tapered outer surface 148 of the rear wall 146 of the spring clip 140 to advantageously provide smooth movement into the handle 171 and barrel 172.

[0042] According to one embodiment, Figures 13 and 14 illustrate a barrel assembly 170. Similar to that described in the previous embodiment, barrel assembly 170 includes a handle 171 having an inner diameter 174. Inner diameter 174 includes a tapered inner surface 176 disposed at the distal end of handle 171. Tapered inner surface 176 of inner diameter 174 of handle 171 cooperates with tapered outer surface 148 of spring clip 140 and tapered outer surface 158 of clip housing 156 to advantageously provide engagement and guidance of spring clip 140 and clip housing 156 into handle 171 and barrel 172. Similarly, tapered outer surface 148 of spring clip 140 and tapered outer surface 158 of clip housing 156 engage tapered inner surface 176 to advantageously center spring clip 140 and clip housing 156 in handle 171 and barrel 172.

[0043] As described in the previous embodiment, barrel assembly 170 further includes an actuation button 178 and a spring 182 that cooperate with needle hub 180 for retraction. Needle 120 is secured to needle hub 180 and retracts needle 120 into barrel 172 when actuation button 178 is depressed.

[0044] 15 illustrates the spring clip 140 in a closed position substantially disposed within the clip housing 156 with the needle in the second needle position. Specifically, the distal walls 150 are offset such that a lip 152 of one of the distal walls 150 contacts the other distal wall 150 to prevent the distal end 124 of the needle 120 from slipping out of the clip housing 156. Similarly, a distal portion of the spring clip 140 may extend beyond the clip housing 156 after the spring clip 140 is in the closed position.

[0045] According to one embodiment, Figure 16 illustrates a top cross-sectional view of spring clip 140 and clip housing 156, and Figure 17 illustrates a cross-sectional view of spring clip 140 and clip housing 156. Both figures illustrate spring clip 140 and clip housing 156 being retracted from the second needle position to the third needle position.

[0046] 18 and 19 illustrate the spring clip 140 and clip housing 156 within the barrel 172. This is the third needle position of the needle 120 of the catheter assembly 110.

[0047] 20-22 illustrate a third exemplary form of barrel assembly 270. Barrel assembly 270 is a modified version of the previously described barrel assemblies 70, 170 with the following improvements to control the retraction rate of needle 220 within handle 271 and barrel 272.

[0048] In the previous embodiments described above, when the activation button 78, 178 is depressed, the force of the spring 82, 182 retracts the needle hub 80, 180 into the handle 71, 171 and barrel 72, 172. However, the retraction speed of the needle hub 80, 180 can be large, which can result in blood splashing during retraction. Various damping mechanisms have been used in the prior art, including silicone gel, reservoir vents, O-rings, collapsible filters, and spring compression knots, as described in U.S. Pat. Nos. 5,575,777, 5,702,367, and 6,090,078, which are incorporated herein by reference.

[0049] According to one embodiment, barrel assembly 270 provides a controlled, variable retraction rate of the needle into handle 271 and barrel 272 of the catheter assembly. Specifically, handle 271 includes first inner diameter 274a, second inner diameter 274b, and third inner diameter 274c. First inner diameter 274a and third inner diameter 274c are substantially similar. Second inner diameter 274b is larger than first inner diameter 274a and third inner diameter 274c, respectively. The three inner diameters 274a, 274b, and 274c are connected by inner diameter tapers, providing a continuous change in inner diameter.

[0050] Barrel assembly 270 further includes a needle hub 280 secured to needle 220. Advantageously, a first brake mechanism 290 is secured to the proximal end of needle hub 280. In one embodiment, first brake mechanism 290 is a silicone washer or a silicone disc.

[0051] In operation of the catheter assembly, when the actuation button 78, 178 is depressed, the outer diameter of the first brake mechanism 290 is in frictional contact with the first inner diameter 274a because the first inner diameter 274a is smaller than the outer diameter of the first brake mechanism 290. As a result, the needle hub 280 and needle advantageously begin to move slowly into the handle 271 and barrel 272.

[0052] As the needle hub 280 moves through the handle 271 and barrel 272, the inner diameter increases in dimension to a second inner diameter 274b. The second inner diameter 274b is larger than the outer diameter of the first brake mechanism 290. Thus, there is a clearance (significantly reduced frictional contact) between the second inner diameter 274b and the first brake mechanism 290. As a result, the needle hub 280 advantageously gains velocity and moves faster through the handle 271 and barrel 272.

[0053] As the needle hub 280 approaches the end of its travel within the barrel 272, the inner diameter of the barrel 272 dimensionally decreases to the third inner diameter 274c. The outer diameter of the first brake mechanism 290 is in frictional contact with the third inner diameter 274c because the third inner diameter 274c is smaller than the outer diameter of the first brake mechanism 290. As a result, the needle hub 280 advantageously decelerates as it approaches the end of its travel within the barrel 272.

[0054] Advantageously, a catheter assembly including the barrel assembly 270 of this embodiment provides slow needle retraction at the start and end of needle travel to reduce blood splash and provides smooth movement of the needle 220 and needle hub 280 during retraction. Advantageously, the varying inner diameters of the handle 271 and barrel 272 provide a velocity decay profile that controls the speed of needle retraction at various positions.

[0055] The velocity decay profile can be tailored based on the desired retraction speed of the needle 220 and needle hub 280. According to one embodiment, the third inner diameter 274c is smaller than the first inner diameter 274a, advantageously providing a slower retraction speed at the end of the movement compared to the beginning of the movement. According to another embodiment, the first inner diameter 274a is smaller than the third inner diameter 274c, advantageously providing a slower retraction speed at the beginning of the movement compared to the end of the movement. According to one embodiment, the second inner diameter 274b is substantially similar to the first inner diameter 274a and the third inner diameter 274c, advantageously providing a slower retraction speed of the needle 220 and needle hub 280 throughout their movement in the handle 271 and barrel 272.

[0056] According to one embodiment, the widths of the first, second, and third inner diameters 274a, 274b, and 274c are varied to adjust the velocity damping profile. Specifically, the widths of the first, second, and third inner diameters 274a, 274b, and 274c advantageously control the time for retraction of the respective portions of the handle 271 and barrel 272 as the needle 220 and needle hub 280 move through the handle 271 and barrel 272. Also advantageously, the strength of the springs 82, 182, as well as the amount of friction (how much interference exists) between the first, second, and third inner diameters 274a, 274b, and 274c and the outer diameter of the first brake mechanism 290, control the time for retraction of the respective portions of the handle 271 and barrel 272.

[0057] The fourth exemplary form of the catheter assembly is a modified version of the barrel assembly 270, with the following differences. Specifically, the handle 271 and barrel 272 include a first inner diameter 274a and a second inner diameter 274b, as described above. The barrel assembly 270 also includes a first brake mechanism 290 secured to the proximal end of the needle hub 280. The barrel assembly 270 further includes a second brake mechanism 291. The first brake mechanism 290 is a silicone washer, as described above, and the second brake mechanism 291 is silicone gel. The silicone gel 291 is applied to the proximal ends of the springs 82, 182 prior to retraction. Figures 4, 5, 13, 14, and 17-19 illustrate exemplary access holes 292 provided in the handles 71, 171 for the user to apply the silicone gel 291.

[0058] In operation of a catheter assembly having the barrel assembly 270 of this embodiment, when the actuation button 78, 178 is depressed, the outer diameter of the first brake mechanism 290 is in frictional contact with the first inner diameter 274a because the first inner diameter 274a is smaller than the outer diameter of the first brake mechanism 290. As a result, advantageously, the needle hub 280 and needle begin to move slowly into the handle 271 and barrel 272 during retraction.

[0059] As the needle hub 280 moves through the handle 271 and barrel 272, the inner diameter increases in dimension to a second inner diameter 274b. The second inner diameter 274b is larger than the outer diameter of the first brake mechanism 290. Thus, there is significantly less frictional contact between the second inner diameter 274b and the first brake mechanism 290. As a result, the needle hub 280 advantageously gains velocity and moves faster through the handle 271 and barrel 272.

[0060] As the needle hub 280 approaches the end of its travel within the barrel 272, the springs 82, 182 advantageously begin to move through the silicone gel of the second damping mechanism 291. The silicone gel of the second damping mechanism 291 resists the extension of the springs 82, 182, advantageously slowing the retraction of the needle 220 and needle hub 280. Thus, the combination of the first and second damping mechanisms advantageously provides a velocity decay profile during needle retraction similar to that of the third embodiment described above.

[0061] Advantageously, this design reduces the manufacturing complexity of three or more controlled internal diameters in the handle 271 and barrel 272. Also advantageously, the combination of silicone washer 290 and silicone gel 291 applies similar damping properties while reducing blood splash, providing smooth movement of the needle 220 and needle hub 280 during retraction.

[0062] According to one embodiment, the silicone gel of the second damping mechanism 291 is applied to the distal end of the spring 82, 182 as well as to the proximal end of the inner diameter of the handle 271. In this manner, the silicone gel 291 contacts the spring 82, 182 in its compressed state as well as as the spring 82, 182 moves to its extended state. Thus, the silicone gel 291 resists the extension of the spring 82, 182 and simultaneously contacts the needle hub 280, slowing its movement throughout its entire travel. Advantageously, applying the silicone gel 291 in this manner causes the coils of the spring 82, 182 to extend one at a time, rather than all at once.

[0063] Advantageously, such a design improves the accuracy of the velocity damping profile during needle retraction, particularly at the start of movement by allowing for a slower initial movement of the needle hub 280 after the initial actuation. Also advantageously, this design avoids the use of silicone washers, which can provide excessive friction during actuation. Under this scenario, the frictional forces are greater than the elastic forces, and thus the needle 220 does not retract, leaving it in an unsafe condition. Thus, the silicone gel 291 provides a powerful solution for the initial actuation phase.

[0064] In one embodiment, silicone gel 291 is provided at the distal end of compressed spring 82, 182, and a silicone washer 290 is secured to the proximal end of needle hub 280. Silicone washer 290 makes significant contact with the inner diameter of barrel 272 only near the end of travel, providing significant friction. In this manner, as before, silicone gel 291 provides a strong solution for the initial start-up phase, while silicone washer 290 provides a better deceleration solution at the end of travel. Advantageously, using silicone washer 290 instead of silicone gel 291 at the end of travel avoids the needle hub 280 simply "crashing" into a large amount of silicone gel 291 at the end, providing better deceleration.

[0065] In another embodiment, the silicone washer of the first damping mechanism 290 is located at the proximal end of the needle hub 280, and the silicone gel of the second damping mechanism 291 is located at the proximal end of the inner diameter of the barrel 272. As before, the silicone washer interacts with the handle 271 and the inner diameter of the barrel 272 to control the initial retraction of the needle hub 280. The silicone gel at the proximal end of the inner diameter of the barrel 272 contacts the needle hub 280 and slows the end of its travel in the barrel 272. Advantageously, such a design provides another way to control the velocity decay profile during needle retraction.

[0066] In another embodiment, silicone gel as a second damping mechanism 291 is disposed at the proximal end of the needle hub 280, applied to the spring 82, 182, and disposed at the proximal end of the inner diameter of the barrel 272. The silicone gel at the proximal end of the needle hub 280 contacts the inner diameter of the handle 271 and slows the retraction rate. A similar effect occurs with the silicone gel 291 at the proximal end of the inner diameter of the barrel 272 as the needle hub 280 approaches the end of its travel in the barrel. However, at the proximal end of the inner diameter of the barrel, the spring mixes with the remaining silicone gel from the proximal end of the needle hub 280, providing further damping of the retraction rate. Advantageously, in this manner, the silicone gel 291 slows the retraction of the needle hub 280 at the end, resulting in a smoother deceleration and stopping of the needle hub 280 at the retracted position. Advantageously, such a design provides another way to control the velocity decay profile during needle retraction despite using only silicone gel. In another embodiment, the access holes 292 are advantageously located near either the proximal end of the spring 82, 182, the proximal end of the needle hub 280 at the first needle position, or the proximal end of the inner diameter of the handle 271 and barrel 272. In this manner, silicone gel can be easily and precisely applied by the user to the desired locations described in the above embodiments.

[0067] The foregoing detailed description of certain exemplary embodiments has been provided for the purpose of explaining the principles of the invention and its practical application, thereby enabling those skilled in the art to practice the invention in its various embodiments, including various modifications as may be adapted to the specific uses envisioned. This description is not intended to be exhaustive or to limit the invention to the specific embodiments disclosed. Unless mutually inconsistent, any of the embodiments and / or elements described herein may be combined with one another to form various additional forms not specifically disclosed. Accordingly, additional embodiments are possible and are intended to be encompassed within the scope of this specification and the invention. This specification describes specific examples to achieve more general goals that may be achieved in other ways.

[0068] As used herein, the terms "front," "rear," "top," "bottom," "upper," "lower," and other orientational descriptions are intended to facilitate the description of exemplary embodiments of the present invention and are not intended to limit the structure of the exemplary embodiments of the present invention to a particular location or orientation. It will be understood by those skilled in the art that terms relating to degree, such as "substantially" and "about," refer to a reasonable range outside the given numerical value, for example, within the typical tolerances associated with the manufacture, assembly, and use of the described embodiments.

Claims

1. a catheter carried by a catheter adapter; a needle having a sharp distal end, the needle being positioned in the catheter such that the needle extends beyond the catheter at a first needle position; a braking mechanism secured adjacent the proximal end of the needle; a barrel assembly having a continuously varying inner diameter, the barrel assembly being disposed to surround the brake mechanism, the barrel assembly having a first inner diameter, a second inner diameter, and a third inner diameter; Including, As the needle leaves the first needle position and is retracted into the barrel assembly, the needle moves according to a needle retraction velocity profile, the needle retraction velocity profile being based on friction or clearance between the first inner diameter, the second inner diameter, and the third inner diameter of the barrel assembly and a brake mechanism. A catheter assembly comprising:

2. 10. The catheter assembly of claim 1, further comprising a clip disposed within the catheter adapter, the clip cooperating with the needle.

3. 2. The catheter assembly of claim 1, wherein friction between the brake mechanism and the first inner diameter slows the retraction rate of the needle within the barrel assembly, spacing between the brake mechanism and the second inner diameter increases the retraction rate of the needle within the barrel assembly compared to the retraction rate at the first inner diameter, and friction between the brake mechanism and the third inner diameter slows the retraction rate of the needle to a stop position at the proximal end of the barrel assembly.

4. 2. The catheter assembly of claim 1, wherein the first inner diameter and the third inner diameter are substantially the same, and the second inner diameter is larger than the first inner diameter and the third inner diameter, respectively.

5. 3. The catheter assembly of claim 2, wherein the clip encapsulates the distal end of the needle when the needle is in the second position.

6. 2. The catheter assembly of claim 1, wherein the needle is retracted into the barrel assembly by the elastic force of a spring when the needle moves to the third position.

7. The catheter assembly of claim 1, wherein the damping mechanism includes a silicone washer.

8. 10. The catheter assembly of claim 1, wherein the barrel assembly provides a smooth transition between the first and second inner diameters.

9. The catheter assembly of claim 8, wherein the smooth transition provides a gradual change in the retraction speed of the needle.

10. The catheter assembly of claim 1, wherein the second inner diameter is greater than the first inner diameter.

11. 10. The catheter assembly of claim 1, wherein one of the first inner diameter and the second inner diameter of the barrel assembly is adjusted to vary a needle retraction speed profile.

12. 12. The catheter assembly of claim 11, wherein the retraction rate of the needle is reduced when the braking mechanism moves through the width of one of the first and second inner diameters of the barrel assembly.

Citation Information

Patent Citations

  • Dampening devices and methods for needle retracting safety vascular access devices

    US6090078A

  • Injection syringe with automatically retractable needle

    WO2006129289A1