DEVICES AND METHODS FOR APPLYING A HEMOSTATIC CLIP ASSEMBLY
A device for applying a hemostatic clip assembly includes a proximal delivery catheter having a proximal handle assembly, an elongated catheter body defining a longitudinal axis and extending distally from the proximal handle assembly, and a distal clip assembly removably connected to a distal end of the elongated catheter body. The distal clip assembly includes a distal clip housing, a jaw adapter yoke positioned within the distal clip assembly, and a jaw assembly. The jaw assembly has a pair of cooperating jaw members fixed to the jaw adapter yoke by a first pin oriented orthogonally relative to the longitudinal axis. The proximal delivery catheter is configured to transmit linear motion along and torsion about the longitudinal axis to a portion of the distal clip assembly. At least one of the jaw members is configured to rotate about the first pin between an open and a closed configuration.
Latest Conmed Corporation Patents:
This application is a U.S. National Stage filed under 35 U.S.C. § 371, based on International PCT Application No. PCT/US2021/030263, filed on Apr. 30, 2021, which claims the benefit of priority to U.S. Provisional Patent Application Ser. No. 63/089,097, filed Oct. 8, 2020, and U.S. Provisional Patent Application Ser. No. 63/091,349 filed Oct. 14, 2020. The entire contents of these applications are incorporated herein by reference in their entirety.
BACKGROUND OF THE INVENTION 1. Field of the InventionThe subject invention is directed to surgical equipment, and more particularly to hemostatic clips used endoscopic surgical procedures.
2. Description of Related ArtEndoscopic or “minimally invasive” hemostatic clips are used in performance of hemostasis to stop and prevent re-bleeding, or in procedures such as ampullectomy, polypectomy, tissue repair and correction of other tissue defects. Such procedures are typically performed by grasping the tissue with the hemostatic clip. Benefits of using hemostatic clips in such procedures include reduced trauma to the patient, low re-bleeding rate, reduced opportunity for infection, and decreased recovery time.
The subject invention provides an improved mechanism for a hemostatic clip. The novel design allows for a shorter deployed clip body, improved tissue grasping and clip locking, and an improved disconnecting feature, which are described in detail herein below, along with other novel devices and systems.
SUMMARY OF THE DISCLOSUREThe subject invention is directed to a new and useful surgical device for applying a hemostatic clip assembly. The device includes a proximal delivery catheter having a proximal handle assembly and an elongated catheter body extending distally from the proximal handle assembly. The elongated catheter body defines a longitudinal axis. The device includes a distal clip assembly removably connected to a distal end of the elongated catheter body. The distal clip assembly includes a distal clip housing, a jaw adapter yoke slidably positioned within the distal clip assembly, and a jaw assembly. The jaw assembly has a pair of cooperating jaw members fixed to the jaw adapter yoke by a first pin. The first pin is oriented orthogonally relative to the longitudinal axis. The proximal delivery catheter is configured and adapted to transmit linear motion along the longitudinal axis and torsion about the longitudinal axis to at least a portion of the distal clip assembly. At least one of the jaw members is configured and adapted to rotate about the first pin and rotate about the longitudinal axis.
In accordance with some embodiments, the distal clip housing includes a pair of spaced apart arms defining a slot configured and adapted to provide clearance for respective proximal portions of the jaw members to rotate relative the first pin. The distal clip assembly can include a second pin connecting between the jaw members and the distal clip housing. Each jaw member can include a proximal body portion and a distal end effector. The proximal body portion of each jaw member can include a respective cam slot configured and adapted to receive the second pin and a pivot aperture configured and adapted to receive the first pin.
The cam slots are configured and adapted to translate along the second pin to move axially relative to the distal clip housing to move the jaw members between the open configuration, where respective distal tips of the jaw members are moved away from one another, the closed configuration where the respective distal tips of the jaw members are approximated towards one another to grasp tissue, and a locked configuration.
In some embodiments, each cam slot defines a distal portion and a proximal portion with a middle portion therebetween. The middle portion of each cam slot is angled relative to the proximal and distal portions of each cam slot. The proximal portion of each cam slot can define a proximal axis extending in a first direction. The middle portion of each cam slot can define a middle axis extending at an oblique angle relative to the proximal axis. Each cam slot can include a distal locking neck projecting into the cam slot defining a distal locking area. The jaw members can be in the locked configuration when the second pin is distal relative to the distal locking neck in the distal locking area. The distal locking neck can include at least one of a protrusion projecting into the cam slot or a tapered portion. The tapered portion can have a narrower effective width than the remainder of the cam slot at a given point.
The jaw adapter yoke can include a proximal receiving portion and the proximal delivery catheter includes a spring release having a distal portion configured and adapted to be received within the proximal receiving portion of the jaw adapter yoke to transmit axial and rotational force to the jaw adapter yoke. A portion of the spring release between a terminal distal end of the spring release and the outwardly extending flange portion can be a constant diameter. The proximal delivery catheter can include a drive wire coupled to a proximal portion of the spring release to transmit linear and rotational motion from the drive wire to the jaw adapter yoke. The proximal handle assembly can include an actuation portion coupled to a proximal end of the drive wire, and a grasping portion, wherein the actuation portion is configured and adapted to translate relative to the grasping portion to apply axial force to the drive wire.
In certain embodiments, the proximal delivery catheter includes a spring tube between a proximal end of the distal clip assembly and a distal end of the catheter body. The spring tube can include at least one cantilever arm removably coupled to the distal clip housing. The at least one cantilever arm can include an inwardly extending flange that removably engages with a circumferential slot defined about a periphery of a proximal end of the distal clip housing. The proximal delivery catheter can include a spring release positioned at least partially within the spring tube. The spring tube can include an inward projection. The spring release can include an outwardly extending flange portion configured and adapted to interact with the inward projection of the spring tube to selectively deflect the at least one cantilever arm of the spring tube and release the inwardly extending flange of the at least one cantilever arm from the circumferential slot of the distal clip housing.
The spring release can include a distal portion configured and adapted to be received within a receiving portion of the jaw adapter yoke to transmit linear and rotational motion to the jaw adapter yoke. The distal portion of the spring release can be divided into at least two tines. Each tine can have a mating surface selectively engageable with an inner surface of the receiving portion of the jaw adapter yoke. Each tine can be configured and adapted to deflect inwardly and release from the receiving portion when an axial force in a proximal direction is applied to the spring release.
In accordance with another aspect, a device for applying a hemostatic clip assembly includes a proximal delivery catheter including a proximal handle assembly and an elongated catheter body extending distally from the proximal handle assembly. The proximal delivery catheter includes a spring tube positioned at a distal end of the elongated catheter body, a drive wire movably positioned within the elongated catheter body, and a spring release coupled to a distal end of the drive wire, the elongated catheter body defining a longitudinal axis. The spring tube includes an inward projection and the spring release includes an outwardly extending flange portion configured and adapted to interact with the inward projection of the spring tube. A portion of the spring release between a terminal distal end of the spring release and the outwardly extending flange portion is a constant diameter. The device includes a distal clip assembly removably connected to a distal end of the elongated catheter body. The proximal delivery catheter is configured and adapted to transmit linear motion along the longitudinal axis and torsion about the longitudinal axis to at least a portion of the distal clip assembly.
The distal clip assembly can include a distal clip housing, a jaw adapter yoke slidably positioned within the distal clip assembly, and a jaw assembly having a pair of cooperating jaw members fixed to the jaw adapter yoke by a first pin. The first pin can be oriented orthogonally relative to the longitudinal axis. A proximal body portion of each jaw member can include a respective cam slot, like cam slots described above. The distal clip housing can include a pair of spaced apart arms, like those described above. The distal clip assembly can include a second pin like that described above. Each cam slot can include a distal locking neck projecting into the cam slot defining a distal locking area, similar to the distal locking neck and distal locking area described above. Each cam slot can define a distal portion and a proximal portion, with a middle portion therebetween, as previously described. The proximal handle assembly can include an actuation portion and a grasping portion, as described above.
In accordance with another aspect, a method for firing a hemostatic clip assembly includes positioning a distal clip assembly proximate to, e.g., near, a target location and translating an actuation portion of a proximal handle assembly of a proximal delivery catheter relative to a grasping portion of the proximal handle assembly in at least one of a proximal direction or a distal direction. The distal clip assembly includes a distal clip housing, a jaw adapter yoke slidably positioned within the distal clip assembly, and a jaw assembly having a pair of cooperating jaw members fixed to the jaw adapter yoke by a first pin. The proximal delivery catheter includes an elongated catheter body extending distally from the proximal handle assembly. The elongated catheter body defining a longitudinal axis. The actuation portion is operatively connected to the jaw adapter yoke via a drive wire and a spring release to transmit linear motion along the longitudinal axis and torsion about the longitudinal axis to the jaw adapter yoke. The linear motion of the jaw adapter yoke transmits a linear component of motion to at least one jaw member and a cam slot of at least one jaw member to translate the cam slot along a second pin connecting between at least one of the jaw members and the distal clip housing, thereby rotating at least one of the jaw members about the first pin and to rotate about the longitudinal axis.
Translating the actuation portion can include translating the actuation portion in the proximal direction to transmit the linear motion in the proximal direction to the cam slot to lock the second pin behind a lock protrusion of the cam slot to lock at least one of the jaw members in a locked configuration. Translating the actuation portion can include translating the actuation portion further in the proximal direction to transmit further linear motion in the proximal direction to the spring release. The further linear motion in a proximal direction can de-couple a distal portion of the spring release from a receiving portion of the jaw adapter yoke.
In some embodiments, translating the actuation portion includes translating the spring release in the proximal direction causing abutting between an inner diameter surface of at least one cantilever arm of a spring tube with an outwardly extending flange portion of the spring release. The spring tube can be coupled to a proximal end of the distal clip housing via the at least one cantilever arm. In certain embodiments, the abutting causes the at least one cantilever arm to deflect radially outward and disengage from the proximal end of the distal clip housing.
In accordance with another aspect, a hemostatic clip assembly includes a distal clip housing defining a longitudinal axis, a jaw adapter yoke slidably positioned within the distal clip housing, a jaw assembly having a pair of cooperating jaw members fixed to the jaw adapter yoke by a first pin. The jaw adapter yoke is configured and adapted to translate axially along the longitudinal axis and rotate about the longitudinal axis. At least one of the jaw members is configured and adapted to rotate about the first pin and to rotate about the longitudinal axis.
The distal clip housing can include a pair of spaced apart arms, similar to those described above. The hemostatic clip assembly can include a second pin, similar to that described above. Each jaw member and its respective cam slot can be similar to those described above.
In accordance with another aspect, a device for applying a hemostatic clip assembly includes a proximal delivery catheter having a proximal handle assembly and an elongated catheter body extending distally from the proximal handle assembly. The elongated catheter body defines a longitudinal axis. The device includes a distal clip assembly removably connected to a distal end of the elongated catheter body. The distal clip assembly includes a distal clip housing, a jaw assembly and a jaw adapter yoke. The jaw assembly has a pair of cooperating jaw members fixed to the distal clip housing by a first pin. The first pin is oriented orthogonally relative to the longitudinal axis. The jaw adapter yoke is operatively connected to the jaw members. The proximal delivery catheter is configured and adapted to transmit linear motion along the longitudinal axis and torsion about the longitudinal axis to at least a portion of the distal clip assembly. At least one of the jaw members is configured and adapted to rotate about the first pin and to rotate about the longitudinal axis. Each jaw member includes a proximal body portion and a distal end effector. The proximal body portion of each jaw member includes a respective cam slot and a rear opening connected to the cam slot and defining at least one proximal cantilever jaw arm.
In accordance with some embodiments, the distal clip housing includes a pair of spaced apart arms defining a slot configured and adapted to provide clearance for respective proximal portions of the jaw members to rotate relative the first pin. The distal clip assembly can include a second pin connecting between the jaw members and the jaw adapter yoke. The proximal body portion of each jaw member can include a pivot aperture configured and adapted to receive the first pin. Each respective cam slot can be configured and adapted to receive the second pin. The second pin can be configured and adapted to translate within the cam slots to move axially relative to the distal clip housing and the jaw assembly to move the jaw members between the open configuration where respective distal tips of the jaw members are moved away from one another, the closed configuration where the respective distal tips of the jaw members are approximated towards one another to grasp tissue, and a locked configuration.
Each cam slot can include a proximal locking neck projecting into the cam slot defining a proximal locking area. The jaw members can be in the locked configuration when the second pin is proximal relative to the proximal locking neck in the proximal locking area. The proximal locking neck can include at least one of a protrusion projecting into the cam slot or a tapered portion. The jaw adapter yoke can include a proximal receiving portion and the proximal delivery catheter can include a spring release having a distal portion configured and adapted to be received within the proximal receiving portion of the jaw adapter yoke to transmit axial and rotational force to the jaw adapter yoke. A portion of the spring release between a terminal distal end of the spring release and the outwardly extending flange portion can have a constant diameter.
The proximal delivery catheter can include a drive wire coupled to a proximal portion of the spring release to transmit linear and rotational motion from the drive wire to the jaw adapter yoke. The proximal handle assembly can include an actuation portion coupled to a proximal end of the drive wire, and a grasping portion, wherein the actuation portion is configured and adapted to translate relative to the grasping portion to apply axial force to the drive wire. The proximal delivery catheter can include a spring tube, which is the same as the spring tube described above. The proximal delivery catheter can include a spring release, which is the same as the spring release described above.
In accordance with another aspect, a method for firing a hemostatic clip assembly includes positioning a distal clip assembly proximate to a target location and translating an actuation portion of a proximal handle assembly of a proximal delivery catheter relative to a grasping portion of the proximal handle assembly in at least one of a proximal direction or a distal direction. The distal clip assembly includes a distal clip housing, a jaw assembly having a pair of cooperating jaw members fixed to the distal clip housing by a first pin, and a jaw adapter yoke operatively connected to the jaw members. The proximal delivery catheter includes an elongated catheter body extending distally from the proximal handle assembly. The elongated catheter body defining a longitudinal axis. The actuation portion is operatively connected to the jaw adapter yoke via a drive wire and a spring release to transmit linear motion along the longitudinal axis and torsion about the longitudinal axis to the jaw adapter yoke. The linear motion of the jaw adapter yoke transmits the linear motion to a second pin positioned within a cam slot of at least one jaw member, thereby rotating at least one of the jaw members about the first pin and to rotate about the longitudinal axis. Each jaw member includes a rear opening connected to the cam slot and defining at least one proximal cantilever jaw arm. Translating the actuation portion includes translating the actuation portion in the proximal direction to transmit the linear motion in the proximal direction to the second pin to deflect the at least one jaw arm and lock the second pin behind a lock protrusion of the cam slot to lock at least one of the jaw members in a locked configuration.
Translating the actuation portion can include translating the actuation portion further in the proximal direction to transmit further linear motion in the proximal direction to the spring release, the further linear motion in a proximal direction de-coupling a distal portion of the spring release from a receiving portion of the jaw adapter yoke. Translating the actuation portion can include transmitting linear motion to the spring release in the proximal direction causing abutting between an inner diameter surface of at least one cantilever arm of a spring tube with an outwardly extending flange portion of the spring release. The spring tube can be coupled to a proximal end of the distal clip housing via the at least one cantilever arm. The abutting can cause the at least one cantilever arm to deflect radially outward and disengage from the proximal end of the distal clip housing.
In accordance with another aspect, a hemostatic clip assembly includes a distal clip housing defining a longitudinal axis, a jaw assembly having a pair of cooperating jaw members fixed to the distal clip housing by a first pin, and a jaw adapter yoke operatively connected to the jaw members. The jaw adapter yoke is configured and adapted to translate axially along the longitudinal axis and rotate about the longitudinal axis. At least one of the jaw members is configured and adapted to rotate about the first pin between an open configuration and a closed configuration. The first pin is oriented orthogonally relative to the longitudinal axis. Each jaw member includes a proximal body portion and a distal end effector. The proximal body portion of each jaw member includes a respective cam slot and a rear opening connected to the cam slot and defining at least one proximal cantilever jaw arm.
The distal clip housing can include a pair of spaced apart arms, similar to those described above. The hemostatic clip assembly can include a second pin, similar to that described above. Each jaw member and its respective cam slot can be similar to those described above.
These and other features of a surgical device for applying a hemostatic clip assembly in accordance with the subject invention will become more readily apparent to those having ordinary skill in the art to which the subject invention appertains from the detailed description of the embodiments taken in conjunction with the following brief description of the drawings.
So that those skilled in the art will readily understand how to make and use the gas circulation system of the subject invention without undue experimentation, preferred embodiments thereof will be described in detail herein below with reference to the figures wherein:
Referring now to the drawings wherein like reference numerals identify similar structural elements and features of the subject invention, there is illustrated in
As shown in
With continued reference to
With continued reference to
With reference now to
With reference now to
With continued reference to
As shown in
As shown in
With continued reference to
As shown in
As shown in
With reference to
With continued reference to
As shown in
As shown in
With reference now to
In
As shown in
With continued reference to
As shown in
Furthermore, after firing, spring release 136 can continue to move proximally and recede into catheter body 105. Because of the continuous constant diameter portion 154 between the outwardly extending flange portion 152 and proximal terminal end 119 of the spring release 136, the after-firing user feedback after the firing is a sudden reduction in force required on actuator 115. Contrary to some designs seen in the prior art, where there may be a stop flange on a spring release to prevent spring release from receding further, present embodiments provide the user a definitive tactile feedback by way of a sudden reduction in force (from the firing) and allows the handle to displace far past its normal operation longitudinal stroke without resistance, reducing the chance that a user will mistake the retraction of spring release 136 with firing. Both of these factors aid the user in determining successful deployment of distal clip assembly 100.
A method for firing a hemostatic clip assembly, e.g., distal clip assembly 100, includes positioning the distal clip assembly proximate to a target location, e.g., near tissue 15 as shown in
The method includes translating the actuation portion in the proximal direction to transmit the linear motion in the proximal direction to the cam slot, as shown in
As shown in
Referring now to
As shown in
As shown in
Those skilled in the art will also readily appreciate that an alternate mechanism for torque transmission in device 10 can be used where a distal clip housing 102 includes a diametrical center bar extended across receiving portion to contact the internal flat edges 168 of tines 139 of spring release 136, shown in
As shown in
As with delivery catheter 101 described above, the proximal delivery catheter 501 of
With reference now to
As shown in
With continued reference to
With reference to
With continued reference to
As shown in
With continued reference to
As shown in
As shown in
With reference now to
With reference now to
As shown in
As shown in
A method for firing a hemostatic clip assembly, e.g., distal clip assembly 500, includes positioning the distal clip assembly proximate to a target location, e.g., near tissue 15 as shown in
The method includes translating the actuation portion in the proximal direction to transmit the linear motion in the proximal direction to the second pin, as shown in
The methods and systems of the present disclosure, as described above and shown in the drawings, provide for a surgical device with superior properties including simplified user feedback, reduced accidental deployment of the clip assembly and a shorter clip body. Additionally, the firing mechanism is elastic, and permanent deformation, e.g., breakage, is not required to deploy the clip assembly. While the apparatus and methods of the subject disclosure have been showing and described with reference to embodiments, those skilled in the art will readily appreciate that changes and/or modifications may be made thereto without departing from the spirit and score of the subject disclosure.
Claims
1. A device for applying a hemostatic clip assembly, the device comprising:
- a proximal delivery catheter including a proximal handle assembly and an elongated catheter body extending distally from the proximal handle assembly, the elongated catheter body defining a longitudinal axis;
- a distal clip assembly removably connected to a distal end of the elongated catheter body, the distal clip assembly including a distal clip housing, a jaw adapter yoke slidably positioned within the distal clip assembly, and a jaw assembly having a pair of cooperating jaw members fixed to the jaw adapter yoke by a first pin, the first pin oriented orthogonally relative to the longitudinal axis, wherein the proximal delivery catheter is configured and adapted to transmit linear motion along the longitudinal axis and torsion about the longitudinal axis to at least a portion of the distal clip assembly, wherein at least one of the jaw members is configured and adapted to rotate about the first pin and to rotate about the longitudinal axis.
2. The device as recited in claim 1, wherein the distal clip housing includes a pair of spaced apart arms defining a slot configured and adapted to provide clearance for respective proximal portions of the jaw members to rotate relative the first pin.
3. The device as recited in claim 1, wherein the distal clip assembly includes a second pin connecting between the jaw members and the distal clip housing, wherein each jaw member includes a proximal body portion and a distal end effector, wherein the proximal body portion of each jaw member includes a respective cam slot configured and adapted to receive the second pin and a pivot aperture configured and adapted to receive the first pin.
4. The device as recited in claim 3, wherein the cam slots are configured and adapted to translate along the second pin to move axially relative to the distal clip housing and to move the jaw members between the open configuration where respective distal tips of the jaw members are moved away from one another, the closed configuration where the respective distal tips of the jaw members are approximated towards one another to grasp tissue, and a locked configuration.
5. The device as recited in claim 4, wherein each cam slot defines a distal portion and a proximal portion with a middle portion therebetween, wherein the middle portion of each cam slot is angled relative to the proximal and distal portions of each cam slot.
6. The device as recited in claim 5, wherein the proximal portion of each cam slot defines a proximal axis extending in a first direction, the middle portion of each cam slot defines a middle axis extending at an oblique angle relative to the proximal axis.
7. The device as recited in claim 4, wherein each cam slot includes a distal locking neck projecting into the cam slot defining a distal locking area, wherein the jaw members are in the locked configuration when the second pin is distal relative to the distal locking neck in the distal locking area.
8. The device as recited in claim 7, wherein the distal locking neck includes at least one of a protrusion projecting into the cam slot or a tapered portion.
9. The device as recited in claim 1, wherein the jaw adapter yoke includes a proximal receiving portion and the proximal delivery catheter includes a spring release having a distal portion configured and adapted to be received within the proximal receiving portion of the jaw adapter yoke to transmit axial and rotational force to the jaw adapter yoke, wherein a portion of the spring release between a terminal distal end of the spring release and the outwardly extending flange portion is a constant diameter.
10. The device as recited in claim 9, wherein the proximal delivery catheter includes a drive wire coupled to a proximal portion of the spring release to transmit linear and rotational motion from the drive wire to the jaw adapter yoke.
11. The device as recited in claim 10, wherein the proximal handle assembly includes an actuation portion coupled to a proximal end of the drive wire, and a grasping portion, wherein the actuation portion is configured and adapted to translate relative to the grasping portion to apply axial force to the drive wire.
12. The device as recited in claim 1, wherein the proximal delivery catheter includes a spring tube between a proximal end of the distal clip assembly and a distal end of the catheter body.
13. The device as recited in claim 12, wherein the spring tube includes at least one cantilever arm removably coupled to the distal clip housing.
14. The device as recited in claim 13, wherein the at least one cantilever arm includes an inwardly extending flange that removably engages with a circumferential slot defined about a periphery of a proximal end of the distal clip housing.
15. The device as recited in claim 14, wherein the proximal delivery catheter includes a spring release positioned at least partially within the spring tube, wherein the spring tube includes an inward projection, wherein the spring release includes an outwardly extending flange portion configured and adapted to interact with the inward projection of the spring tube to selectively deflect the at least one cantilever arm of the spring tube and release the inwardly extending flange of the at least one cantilever arm from the circumferential slot of the distal clip housing.
16. The device as recited in claim 15, wherein the spring release includes a distal portion configured and adapted to be received within a receiving portion of the jaw adapter yoke to transmit linear and rotational motion to the jaw adapter yoke.
17. The device as recited in claim 16, wherein the distal portion of the spring release is divided into at least two tines, wherein each tine has a mating surface selectively engageable with an inner surface of the receiving portion of the jaw adapter yoke.
18. The device as recited in claim 17, wherein each tine is configured and adapted to deflect inwardly and release from the receiving portion when an axial force in a proximal direction is applied to the spring release.
19. A device for applying a hemostatic clip assembly, the device comprising:
- a proximal delivery catheter including a proximal handle assembly and an elongated catheter body extending distally from the proximal handle assembly, a spring tube positioned at a distal end of the elongated catheter body, a drive wire movably positioned within the elongated catheter body, and a spring release coupled to a distal end of the drive wire, the elongated catheter body defining a longitudinal axis, wherein the spring tube includes an inward projection and the spring release includes an outwardly extending flange portion configured and adapted to interact with the inward projection of the spring tube, wherein a portion of the spring release between a terminal distal end of the spring release and the outwardly extending flange portion is a constant diameter; and
- a distal clip assembly removably connected to a distal end of the elongated catheter body, wherein the proximal delivery catheter is configured and adapted to transmit linear motion along the longitudinal axis and torsion about the longitudinal axis to at least a portion of the distal clip assembly.
20. The device as recited in claim 19, wherein the distal clip assembly includes a distal clip housing, a jaw adapter yoke slidably positioned within the distal clip assembly, and a jaw assembly having a pair of cooperating jaw members fixed to the jaw adapter yoke by a first pin, the first pin oriented orthogonally relative to the longitudinal axis, wherein at least one of the jaw members is configured and adapted to rotate about the first pin and to rotate about the longitudinal axis.
21. The device as recited in claim 20, wherein the distal clip housing includes a pair of spaced apart arms defining a slot configured and adapted to provide clearance for respective proximal portions of the jaw members to rotate relative the first pin.
22. The device as recited in claim 20, wherein the distal clip assembly includes a second pin connecting between the jaw members and the distal clip housing, wherein each jaw member includes a proximal body portion and a distal end effector, wherein the proximal body portion of each jaw member includes a respective cam slot configured and adapted to receive the second pin and a pivot aperture configured and adapted to receive the first pin.
23. The device as recited in claim 22, wherein the cam slots are configured and adapted to translate along the second pin to move axially relative to the distal clip housing and to move the jaw members between the open configuration where respective distal tips of the jaw members are moved away from one another, the closed configuration where the respective distal tips of the jaw members are approximated towards one another to grasp tissue, and a locked configuration.
24. The device as recited in claim 23, wherein each cam slot includes a distal locking neck projecting into the cam slot defining a distal locking area, wherein the jaw members are in the locked configuration when the second pin is distal relative to the distal locking neck in the distal locking area.
25. The device as recited in claim 24, wherein the distal locking neck includes at least one of a protrusion projecting into the cam slot or a tapered portion.
26. The device as recited in claim 22, wherein each cam slot defines a distal portion and a proximal portion with a middle portion therebetween, wherein the middle portion of each cam slot is angled relative to the proximal and distal portions of each cam slot.
27. The device as recited in claim 26, wherein the proximal portion of each cam slot defines a proximal axis extending in a first direction, the middle portion of each cam slot defines a middle axis extending at an oblique angle relative to the proximal axis.
28. The device as recited in claim 20, wherein the jaw adapter yoke includes a proximal receiving portion, and wherein the spring release includes a distal portion configured and adapted to be received within the proximal receiving portion of the jaw adapter yoke to transmit axial and rotational force from the drive wire to the jaw adapter yoke.
29. The device as recited in claim 28, wherein the distal portion of the spring release is divided into at least two tines, wherein each tine has a mating surface selectively engageable with an inner surface of the receiving portion of the jaw adapter yoke.
30. The device as recited in claim 29, wherein each tine is configured and adapted to deflect inwardly and release from the receiving portion when an axial force in a proximal direction is applied to the spring release.
31. The device as recited in claim 19, wherein the proximal handle assembly includes an actuation portion coupled to a proximal end of the drive wire, and a grasping portion, wherein the actuation portion is configured and adapted to translate relative to the grasping portion to apply axial force to the drive wire.
32. The device as recited in claim 19, wherein the distal clip assembly includes a distal clip housing, wherein the spring tube includes at least one cantilever arm removably coupled to the distal clip housing.
33. The device as recited in claim 32, wherein the at least one cantilever arm includes an inwardly extending flange that removably engages with a circumferential slot defined about a periphery of a proximal end of the distal clip housing.
34. The device as recited in claim 33, wherein the outwardly extending flange portion of the spring release is configured and adapted to interact with the inward projection of the spring tube to displace the at least one cantilever arm of the spring tube and release the inwardly extending flange from the circumferential slot of the distal clip housing.
35. A method for firing a hemostatic clip assembly the method comprising:
- positioning a distal clip assembly proximate to a target location, wherein the distal clip assembly includes a distal clip housing, a jaw adapter yoke slidably positioned within the distal clip assembly, and a jaw assembly having a pair of cooperating jaw members fixed to the jaw adapter yoke by a first pin;
- translating an actuation portion of a proximal handle assembly of a proximal delivery catheter relative to a grasping portion of the proximal handle assembly in at least one of a proximal direction or a distal direction, wherein the proximal delivery catheter includes an elongated catheter body extending distally from the proximal handle assembly, the elongated catheter body defining a longitudinal axis, the actuation portion operatively connected to the jaw adapter yoke via a drive wire and a spring release to transmit linear motion along the longitudinal axis and torsion about the longitudinal axis to the jaw adapter yoke, wherein the linear motion of the jaw adapter yoke transmits a linear component of motion to at least one jaw member and a cam slot of at least one jaw member to translate the cam slot along a second pin connecting between at least one of the jaw members and the distal clip housing, thereby rotating at least one of the jaw members about the first pin and to rotate about the longitudinal axis.
36. The method as recited in claim 35, wherein translating the actuation portion includes translating the actuation portion in the proximal direction to transmit the linear motion in the proximal direction to the cam slot to lock the second pin behind a lock protrusion of the cam slot to lock at least one of the jaw members in a locked configuration.
37. The method as recited in claim 35, wherein translating the actuation portion includes translating the actuation portion further in the proximal direction to transmit further linear motion in the proximal direction to the spring release, the further linear motion in a proximal direction de-coupling a distal portion of the spring release from a receiving portion of the jaw adapter yoke.
38. The method as recited in claim 35, wherein translating the actuation portion includes translating the spring release in the proximal direction causing abutting between an inward projection of at least one cantilever arm of a spring tube with an outwardly extending flange portion of the spring release, wherein the spring tube is coupled to a proximal end of the distal clip housing via the at least one cantilever arm, wherein the abutting causes the at least one cantilever arm to deflect radially outward and disengage from the proximal end of the distal clip housing.
39. A hemostatic clip assembly, the assembly comprising:
- a distal clip housing defining a longitudinal axis;
- a jaw adapter yoke slidably positioned within the distal clip housing;
- a jaw assembly having a pair of cooperating jaw members fixed to the jaw adapter yoke by a first pin, the first pin oriented orthogonally relative to the longitudinal axis, wherein the jaw adapter yoke is configured and adapted to translate axially along the longitudinal axis and rotate about the longitudinal axis, wherein at least one of the jaw members is configured and adapted to rotate about the first pin and to rotate about the longitudinal axis.
40. The hemostatic clip assembly as recited in claim 39, wherein the distal clip housing includes a pair of spaced apart arms defining a slot configured and adapted to provide clearance for respective proximal portions of the jaw members to rotate relative the first pin.
41. The hemostatic clip assembly as recited in claim 39, further comprising a second pin connecting between the jaw members and the distal clip housing, wherein each jaw member includes a proximal body portion and a distal end effector, wherein the proximal body portion of each jaw member includes a respective cam slot configured and adapted to receive the second pin and a pivot aperture configured and adapted to receive the first pin.
42. The hemostatic clip assembly as recited in claim 41, wherein the cam slots are configured and adapted to translate along the second pin to move axially relative to the distal clip housing and to move the jaw members between the open configuration where respective distal tips of the jaw members are moved away from one another, the closed configuration where the respective distal tips of the jaw members are approximated towards one another to grasp tissue, and a locked configuration.
43. The hemostatic clip assembly as recited in claim 42, wherein each cam slot defines a distal portion and a proximal portion with a middle portion therebetween, wherein the middle portion of each cam slot is angled relative to the proximal and distal portions of each cam slot.
44. The hemostatic clip assembly as recited in claim 43, wherein the proximal portion of each cam slot defines a proximal axis extending in a first direction, the middle portion of each cam slot defines a middle axis extending at an oblique angle relative to the proximal axis.
45. The hemostatic clip assembly as recited in claim 42, wherein each cam slot includes a distal locking neck projecting into the cam slot defining a distal locking area, wherein the jaw members are in the locked configuration when the second pin is distal relative to the proximal locking neck in the distal locking area.
46. The hemostatic clip assembly as recited in claim 45, wherein the distal locking neck includes at least one of a protrusion projecting into the cam slot or a tapered portion.
47. The hemostatic clip assembly as recited in claim 39, wherein the jaw adapter yoke includes a proximal receiving portion configured and adapted receive a spring release of a proximal delivery catheter.
Type: Application
Filed: Apr 30, 2021
Publication Date: Nov 30, 2023
Applicant: Conmed Corporation (Largo, FL)
Inventors: Michael Barenboym (Boston, MA), Daniel P. Damato (Boston, MA), Doug Sjostrom (Tewksbury, MA)
Application Number: 18/030,799