The present disclosure relates to surgical devices and, more particularly, to cutting mechanisms for use with surgical end effector assemblies, instruments, and systems.
A surgical forceps is a pliers-like instrument that relies on mechanical action between its jaw members to grasp, clamp, and constrict tissue. Electrosurgical forceps utilize both mechanical clamping action and energy to heat tissue to treat, e.g., coagulate, cauterize, or seal, tissue. Typically, once tissue is treated, the surgeon has to accurately sever the treated tissue. Accordingly, many electrosurgical forceps are designed to incorporate a knife or cutting member utilized to effectively sever the treated tissue.
As used herein, the term “distal” refers to the portion that is being described which is further from a user, while the term “proximal” refers to the portion that is being described which is closer to a user. Further, to the extent consistent, any or all of the aspects detailed herein may be used in conjunction with any or all of the other aspects detailed herein.
In accordance with aspects of the present disclosure, an end effector assembly for a surgical instrument is provided including first and second jaw members each including a jaw housing, an electrically-conductive tissue-treatment plate, and a longitudinally-extending channel. At least one of the first or second jaw member is movable relative to the other between a spaced-apart position and an approximated position. The end effector assembly further includes a cutting mechanism disposed within the second jaw member. The cutting mechanism includes an inflatable bladder disposed within the longitudinally-extending channel of the second jaw member, a fluid line fluidly coupled to the inflatable bladder and extending proximally from the end effector assembly, and a knife. The fluid line is adapted to connect to a source of fluid for supplying fluid to and removing fluid from the inflatable bladder to transition the inflatable bladder between a deflated condition and an inflated condition. The knife is operably coupled to the inflatable bladder and is movable between a retracted position, corresponding to the deflated condition of the inflatable bladder, wherein the knife is fully disposed within the longitudinally-extending channel of the second jaw member, and an extended position, corresponding to the inflated condition of the inflatable bladder, wherein the knife extends from the longitudinally-extending channel of the second jaw member, between the first and second jaw members, and at least partially into the longitudinally-extending channel of the first jaw member.
In an aspect of the present disclosure, the knife is mounted on the inflatable bladder.
In another aspect of the present disclosure, a guide platform is disposed within the longitudinally-extending channel of the second jaw member. In such aspects, the guide platform includes the knife mounted thereon and is configured such that, upon inflation of the inflatable bladder, the inflatable bladder urges the guide platform to urge the knife from the retracted position to the extended position.
In yet another aspect of the present disclosure, the guide platform includes a support surface having the knife disposed thereon and at least one leg extending therefrom.
In still another aspect of the present disclosure, the at least one leg is slidably disposed within at least one guide track portion of the longitudinally-extending channel of the second jaw member.
Another end effector assembly for a surgical instrument provided in accordance with aspects of the present disclosure includes first and second jaw members each including a jaw housing, an electrically-conductive tissue-treatment plate, and a longitudinally-extending channel. At least one of the first or second jaw members is movable relative to the other between a spaced-apart position and an approximated position. A cutting mechanism is disposed within the second jaw member and includes a fluid line extending proximally from the end effector assembly and adapted to connect to a source of fluid, a knife, and a sealing member engaged to the knife and sealing engaged within the longitudinally-extending channel of the second jaw member so as to define a sealed chamber therein. The fluid line is configured to supply fluid to the sealed chamber to thereby urge the knife and the sealing member from a retracted position, corresponding to a minimum-volume condition of the sealed chamber, wherein the knife is fully disposed within the longitudinally-extending channel of the second jaw member, to an extended position, corresponding to a maximum-volume condition of the sealed chamber, wherein the knife extends from the longitudinally-extending channel of the second jaw member, between the first and second jaw members, and at least partially into the longitudinally-extending channel of the first jaw member.
In an aspect of the present disclosure, the fluid line is configured to supply high-pressure pulses of fluid to the sealed chamber to move the knife from the retracted position to the extended position.
In another aspect of the present disclosure, the fluid line is configured to withdraw fluid from the sealed chamber to return the knife from the extended position to the retracted position under suction.
Another end effector assembly for a surgical instrument provided in accordance with aspects of the present disclosure includes first and second jaw members each including a jaw housing, an electrically-conductive tissue-treatment plate, and a longitudinally-extending channel. At least one of the first or second jaw members is movable relative to the other between a spaced-apart position and an approximated position. A cutting mechanism is disposed within the second jaw member and includes at least one electromagnet disposed within the jaw housing of the second jaw member, at least one electrical wire coupled to the at least one electromagnet and extending proximally from the end effector assembly to connect to a source of energy for energizing the at least one electromagnet to produce a magnetic field, and a knife at least partially disposed within the longitudinally-extending channel of the second jaw member. The knife includes a magnetic portion or has a magnetic base engaged thereto and is repelled from or attracted to the at least one electromagnet in response to magnetization of the at least one electromagnet to thereby move the knife from a retracted position to an extended position.
In an aspect of the present disclosure, in the retracted position, the knife is fully disposed within the longitudinally-extending channel of the second jaw member, and, in the extended position, the knife extends from the longitudinally-extending channel of the second jaw member, between the first and second jaw members, and at least partially into the longitudinally-extending channel of the first jaw member.
In another aspect of the present disclosure, upon magnetization of the at least one electromagnet, the knife is repelled therefrom such that the knife is urged from the retracted position to the extended position.
In yet another aspect of the preset disclosure, in the retracted position, the knife is disposed partially within the longitudinally-extending channels of the first and second jaw members at proximal ends thereof, and, in the extended position, the knife is disposed partially within the longitudinally-extending channels of the first and second jaw members at distal ends thereof.
In still another aspect of the present disclosure, the at least one electromagnet includes a series of electromagnets arranged longitudinally between the proximal and distal ends of the first and second jaw members.
In still yet another aspect of the present disclosure, the series of electromagnets are successively activated and deactivated in a proximal-to-distal direction to move the knife from the retracted position to the extended position.
In another aspect of the present disclosure, the series of electromagnets are successively activated and deactivated in a distal-to-proximal direction to return the knife from the extended position to the retracted position.
The above and other aspects and features of the present disclosure will become more apparent in view of the following detailed description when taken in conjunction with the accompanying drawings wherein like reference numerals identify similar or identical elements and:
Referring generally to
Forceps 10 includes a housing 20, a handle assembly 30, a trigger assembly 60, a rotating assembly 70, a plurality of articulation actuators 80, an activation switch 4, and an end effector assembly 100. Forceps 10 further includes a shaft 12 having a distal end 12a configured to mechanically engage end effector assembly 100 and a proximal end 12b that mechanically engages housing 20. Forceps 10 also includes cable 2 that connects forceps 10 to an energy source (not shown), e.g., a generator or other suitable power source, although forceps 10 may alternatively be configured as a battery-powered device. Cable 2 includes a wire (or wires) (not shown) extending therethrough that has sufficient length to extend through shaft 12 in order to provide energy to one or both tissue-treating plates 114, 124 of jaw members 110, 120, respectively, of end effector assembly 100. Activation switch 4 is coupled to tissue-treating plates 114, 124 and the source of energy for selectively activating the supply of energy to jaw members 110, 120 for treating, e.g., cauterizing, coagulating/desiccating, and/or sealing, tissue.
Shaft 12 of forceps 10 defines a distal segment 13 positioned towards distal end 12a thereof, a proximal segment 14 positioned towards proximal end 12b thereof, and an articulating section 15 disposed between the distal and proximal segments 13, 14, respectively. Articulating section 15 includes a plurality of articulating links 16 having a plurality of articulation cables 17 extending therethrough. Each cable 17 is operably engaged at its distal end to distal segment 13 and at its proximal end to one of the articulation actuators 80 so as to enable articulation of distal segment 13 and, thus, end effector assembly 100, relative to proximal segment 14 upon actuation of one or more of articulation actuators 80. In some embodiments, articulating section 15 and articulation actuators 80 are omitted, such that shaft 12 of forceps 10 does not articulate. In either configuration, rotating assembly 70 operably couples shaft 12 to housing 20 so as to enable selective rotation of shaft 12 and, thus, end effector assembly 100, relative to housing 20.
Handle assembly 30 of forceps 10 includes a fixed handle 50 and a movable handle 40. Fixed handle 50 is integrally associated with housing 20 and handle 40 is movable relative to fixed handle 50. Movable handle 40 of handle assembly 30 is operably coupled to a drive assembly (not shown) that, together, mechanically cooperate to impart movement of one or both of jaw members 110, 120 of end effector assembly 100 about a pivot 103 between a spaced-apart position (
Trigger assembly 60 includes a trigger 62 coupled to housing 20 and movable relative thereto between an un-actuated position and an actuated position. Trigger 62 is operably coupled to a cutting mechanism, various embodiments of which are detailed below, so as to actuate the cutting mechanism to cut tissue grasped between jaw members 110, 120 of end effector assembly 100 upon actuation of trigger 62. As an alternative to a pivoting trigger 62, a slide trigger, push-button, toggle switch, or other suitable actuator may be provided.
End effector assembly 100, as noted above, includes first and second jaw members 110, 120. Each jaw member 110, 120 includes a proximal flange portion 111, 121, an outer insulative jaw housing 112, 122 disposed about the distal portion (not explicitly shown) of each jaw member 110, 120, and a tissue-treating plate 114, 124, respectively. Proximal flange portions 111, 121 are pivotably coupled to one another about pivot 103 for moving jaw members 110, 120 between the spaced-apart and approximated positions, although other suitable mechanisms for pivoting jaw members 110, 120 relative to one another are also contemplated. The distal portions (not explicitly shown) of the jaw members 110, 120 are configured to support jaw housings 112, 122, and tissue-treating plates 114, 124, respectively, thereon.
Outer insulative jaw housings 112, 122 of jaw members 110, 120 support and retain tissue-treating plates 114, 124 on respective jaw members 110, 120 in opposed relation relative to one another. Tissue-treating plates 114, 124 are formed from an electrically conductive material, e.g., for conducting electrical energy therebetween for treating tissue, although tissue-treating plates 114, 124 may alternatively be configured to conduct any suitable energy, e.g., thermal, microwave, light, ultrasonic, etc., through tissue grasped therebetween for energy-based tissue treatment. As mentioned above, tissue-treating plates 114, 124 are coupled to activation switch 4 and the source of energy (not shown), e.g., via the wires (not shown) extending from cable 2 through forceps 10, such that energy may be selectively supplied to tissue-treating plate 114 and/or tissue-treating plate 124 and conducted therebetween and through tissue disposed between jaw members 110, 120 to treat tissue. One or both of jaw members 110, 120 may further define a longitudinally-extending channel 125 (only the channel of jaw member 120 is shown).
Referring to
Forceps 210 includes two elongated shaft members 212a, 212b, each having a proximal end 216a, 216b, and a distal end 214a, 214b, respectively. Forceps 210 is configured for use with an end effector assembly 100′ similar to end effector assembly 100 (
One of the shaft members 212a, 212b of forceps 210, e.g., shaft member 212b, includes a proximal shaft connector 219 configured to connect forceps 210 to a source of energy (not shown), e.g., a generator. Proximal shaft connector 219 secures a cable 202 to forceps 210 such that the user may selectively supply energy to jaw members 110′, 120′ for treating tissue and for energy-based tissue cutting. More specifically, an activation switch 204 is provided for supplying energy to jaw members 110′, 120′ to treat tissue upon sufficient approximation of shaft members 212a, 212b, e.g., upon activation of activation switch 204 via shaft member 212a.
Forceps 210 further includes a trigger assembly 260 including a trigger 262 coupled to one of the shaft members, e.g., shaft member 212a, and movable relative thereto between an un-actuated position and an actuated position. Trigger 262 is operably coupled to a cutting mechanism, various embodiments of which are detailed below, so as to actuate the cutting mechanism to cut tissue grasped between jaw members 110,′ 120′ of end effector assembly 100′ upon movement of trigger 262 to the actuated position. Similarly as noted above, other suitable actuators for the cutting mechanism are also contemplated.
Referring generally to
Robotic surgical system 1000 includes a plurality of robot arms 1002, 1003; a control device 1004; and an operating console 1005 coupled with control device 1004. Operating console 1005 may include a display device 1006, which may be set up in particular to display three-dimensional images; and manual input devices 1007, 1008, by means of which a surgeon may be able to telemanipulate robot arms 1002, 1003 in a first operating mode. Robotic surgical system 1000 may be configured for use on a patient 1013 lying on a patient table 1012 to be treated in a minimally invasive manner. Robotic surgical system 1000 may further include a database 1014, in particular coupled to control device 1004, in which are stored, for example, pre-operative data from patient 1013 and/or anatomical atlases.
Each of the robot arms 1002, 1003 may include a plurality of members, which are connected through joints, and an attaching device 1009, 1011, to which may be attached, for example, an end effector assembly 1100, 1200, respectively. End effector assembly 1100 is similar to end effector assemblies 100, 100′ (
Referring generally to
With reference to
End effector assembly 300 is similar to end effector assemblies 100, 100′, 1100 (
One of the jaw members, e.g., jaw member 320, includes a cutting mechanism 330 housed within jaw housing 322 thereof. Cutting mechanism 330 includes an inflatable bladder 332 fluidly coupled to a fluid line 334 for supplying fluid to and/or removing fluid from inflatable bladder 332. Fluid, as utilized herein may refer to a liquid (e.g., water or saline), gas (e.g., air), other flowable substance, or combinations thereof. Inflatable bladder 332 is disposed within longitudinally-extending channel 325 of jaw member 320. Fluid line 334 may extend proximally from end effector assembly 300 through and/or around articulating components, pivoting components, and/or other components of the surgical instrument used with end effector assembly 300. Fluid line 334 defines a flexible configuration so as not to be interrupted by or interrupt articulation, pivoting, etc. of the surgical instrument. Fluid line 334 may ultimately be coupled to a fluid source (not shown) within the housing of the surgical instrument, an external fluid source, or other suitable fluid source. The actuator, e.g., trigger, of the surgical instrument may be operably coupled to the fluid source and/or fluid line 334 so as to supply fluid to fluid line 334 and, thus, to inflatable bladder 332, upon actuation of the trigger and to withdraw fluid from fluid line 334 and, thus, inflatable bladder 332, upon return of the trigger to an un-actuated position.
Cutting mechanism 330 further includes a knife 336 mounted on inflatable bladder 332 and disposed within longitudinally-extending channel 325 of jaw member 320. Knife 336 may define a length that extends a substantial portion of the length of jaw member 320, e.g., between 50% and 90% of the length thereof. Knife 336 is initially disposed in a retracted position (
With reference to
End effector assembly 400 is similar to end effector assembly 300 (
One of the jaw members, e.g., jaw member 420, includes a cutting mechanism 430 housed within jaw housing 422 thereof. Cutting mechanism 430 includes an inflatable bladder 432 fluidly coupled to a fluid line (not shown), a knife 436, and a guide platform 438. Inflatable bladder 432 is disposed within longitudinally-extending channel 425 of jaw member 420 and, more specifically, central track 429 thereof. Guide platform 438 defines a support surface 439a and a pair of spaced-apart legs 439b extending from support surface 439a and is disposed within longitudinally-extending channel 425 of jaw member 420. More specifically, legs 439b are disposed within outer guide tracks 428 of enlarged base 426 of longitudinally-extending channel 425 so as to confine movement of guide platform 438 to towards and away from jaw member 410 in generally perpendicular orientation relative to support surface 439a.
Knife 436 is mounted on support surface 439a of guide platform 438 and is positioned to extend through narrowed opening 427 of longitudinally-extending channel 425 upon deployment of knife 436. More specifically, knife 436 is initially disposed in a retracted position (
With reference to
End effector assembly 500 is similar to end effector assemblies 100, 100′, 1100 (
One of the jaw members, e.g., jaw member 520, includes a cutting mechanism 530 housed within jaw housing 522 thereof. Cutting mechanism 530 includes a fluid line 534 for supplying fluid to and/or removing fluid from longitudinally-extending channel 525 of jaw member 520. Fluid line 534 may be configured similarly as fluid line 334 of cutting mechanism 330 (
Knife 536 is initially disposed in a retracted position (
With reference to
End effector assembly 600 is similar to end effector assemblies 100, 100′, 1100 (
One of the jaw members, e.g., jaw member 620, includes a cutting mechanism 630 housed within jaw housing 622 thereof. Cutting mechanism 630 includes an electromagnet 632 coupled to an electrical wire 634 for energizing electromagnet 632 to produce a magnetic field about electromagnet 632. Electrical wire 634 may extend proximally from end effector assembly 600 through and/or around articulating components, pivoting components, and/or other components of the surgical instrument used with end effector assembly 600. Electrical wire 634 defines a flexible configuration so as not to be interrupted by or interrupt articulation, pivoting, etc. of the surgical instrument. Electrical wire 634 may ultimately be coupled to an energy source (not shown) within the housing of the surgical instrument, an external energy source, or other suitable energy source. The actuator, e.g., trigger, of the surgical instrument may be operably coupled to the energy source and/or electrical wire 634 so as to supply energy to electrical wire 634 and, thus, to electromagnet 632, upon actuation of the trigger and to stop the supply of energy to electrical wire 634 and, thus, electromagnet 632, upon return of the trigger to an un-actuated position.
Cutting mechanism 630 further includes a knife 636 disposed within longitudinally-extending channel 625 of jaw member 620. Knife 636 may be formed from a magnetic material, or may include a base 638 engaged thereto that is formed from a magnetic material. Knife 636 may define a length that extends a substantial portion of the length of jaw member 620, e.g., between 50% and 90% of the length thereof. Knife 636 is initially disposed in a retracted position (
With reference to
End effector assembly 700 is similar to end effector assemblies 100, 100′, 1100 (
One of the jaw members, e.g., jaw member 720, includes a cutting mechanism 730 at least partially housed within jaw housing 722 thereof. Cutting mechanism 730 includes a series of electromagnets 732a-e (although greater or fewer than five (5) electromagnets are also contemplated) extending longitudinally along jaw member 720 from the proximal end to the distal end thereof. Cutting mechanism 730 further includes a plurality of electrical wires 734, one of which is coupled to each of the electromagnets 732a-e to provide energy thereto to produce a magnetic field about that electromagnet 732a-e. Electrical wires 734 may extend proximally from end effector assembly 700 similarly as detailed above with respect to electrical wire 634 (see
Cutting mechanism 730 further includes a knife 736 extending between jaw members 710, 720 with a portion thereof disposed within each of the longitudinally-extending channels of jaw members 710, 720. Knife 736 may be formed from a magnetic material, or may include a base 738 engaged thereto that is formed from a magnetic material. Knife 736 is initially disposed in a retracted position (
While several embodiments of the disclosure have been shown in the drawings, it is not intended that the disclosure be limited thereto, as it is intended that the disclosure be as broad in scope as the art will allow and that the specification be read likewise. Therefore, the above description should not be construed as limiting, but merely as exemplifications of particular embodiments. Those skilled in the art will envision other modifications within the scope and spirit of the claims appended hereto.
The present application claims the benefit of and priority to U.S. Provisional Application Ser. No. 62/343,883, filed on Jun. 1, 2016, the entire contents of which are incorporated herein by reference.
Number | Date | Country | |
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62343883 | Jun 2016 | US |