Deployment mechanisms for surgical instruments

Information

  • Patent Grant
  • 10080605
  • Patent Number
    10,080,605
  • Date Filed
    Monday, July 13, 2015
    9 years ago
  • Date Issued
    Tuesday, September 25, 2018
    6 years ago
Abstract
An electrosurgical instrument includes a housing, a shaft extending from the housing, and an end effector assembly attached at a distal end of the shaft. A handle assembly is coupled to the housing and includes a movable handle for manipulating the end effector assembly. An outer sleeve is disposed about the shaft and selectively translatable relative thereto. An energizable member is operably coupled to the outer sleeve. A deployment mechanism is provided including a lever rotatably coupled to the housing and positioned proximally of the movable handle and at least one link member coupled between the lever and the outer sleeve. The link member(s) couple to the outer sleeve distally of the movable handle. Rotation of the lever translates the outer sleeve distally to move the outer sleeve over the end effector assembly and simultaneously deploy the energizable member distally past the end effector assembly.
Description
BACKGROUND

Technical Field


The present disclosure relates to deployment mechanisms for surgical instruments. More particularly, the present disclosure relates to deployment mechanisms for multi-functional surgical instruments.


Background of Related Art


Many surgical instruments include one or more movable handles, levers, actuators, triggers, etc. for actuating and/or manipulating one or more functional components of the surgical instrument. For example, a surgical forceps may include a movable handle that is selectively compressible relative to a stationary handle for moving first and second jaw members of the forceps between spaced-apart and approximated positions for grasping tissue therebetween. Such a forceps may further include a trigger for selectively deploying a knife between the jaw members to cut tissue grasped therebetween.


As can be appreciated, as additional functional components are added to the surgical instrument, additional deployment structures or deployment structures capable of actuating more than one component are required. However, multiple deployment structures and/or combined deployment structures may be limited by spatial constraints within the housing of the surgical instrument, functional constraints of the components (e.g., where a combined deployment structure imparts additional force requirements for deploying one or more of the components coupled thereto), and/or may overly complicate the operable components of the surgical instrument.


SUMMARY

In view of the foregoing, deployment mechanisms that are configured for use with multi-functional surgical instruments that are operable in bipolar and/or monopolar modes of operation, and which are easy to operate and inexpensive to manufacture may prove useful in the surgical arena.


As used herein, the term “distal” refers to the portion that is being described that is further from a user, while the term “proximal” refers to the portion that is being described that is closer to a user. Further, to the extent consistent, any of the aspects described herein may be used in conjunction with any of the other aspects described herein.


Provided in accordance with aspects of the present disclosure is an electrosurgical instrument including a housing, a shaft extending distally from the housing, an end effector assembly attached to a distal end of the shaft, and a handle assembly coupled to the housing. The handle assembly includes a movable handle operable to manipulate the end effector assembly. The instrument further includes an outer sleeve disposed about and selectively translatable relative to the shaft, an energizable member operably coupled to the outer sleeve, and a deployment mechanism operably coupled to the housing. The deployment mechanism includes a lever rotatably coupled to the housing and positioned proximally of the movable handle and one or more link members coupled between the lever and the outer sleeve. The one or more link members are coupled to the outer sleeve distally of the movable handle. In use, rotation of the lever relative to the housing moves the one or more link members, which, in turn, translates the outer sleeve distally to move the outer sleeve over the end effector assembly and simultaneously deploy the energizable member distally past the end effector assembly.


In an aspect of the present disclosure, a collar is operably disposed on a proximal end of the outer sleeve. The collar is pivotably coupled to the one or more link members.


In another aspect of the present disclosure, first and second link members are provided. In such aspects a first pivot pin pivotably couples a distal end of the second link member to the collar of the outer sleeve. Further, a proximal end of the first link member may be pivotably coupled to the lever and a distal end of the first link may be pivotably coupled to a proximal end of the second link member via a second pivot pin.


In yet another aspect of the present disclosure, an elongated slot is defined in the housing and extends from an interior wall of the housing. The elongated slot operably receives the second pivot pin. Further, the second pivot pin may be configured to translate within the elongated slot when the lever is rotated relative to the housing to guide movement of the first and second link members.


In still another aspect of the present disclosure, the lever is rotatable between a first configuration, wherein the outer sleeve and energizable member are disposed in retracted positions, and a second configuration, wherein the outer sleeve and energizable member are disposed in deployed positions.


In still yet another aspect of the present disclosure, the lever includes a body portion disposed within the housing and a paddle portion extending from the body portion through an opening in the housing to permit manipulation thereof from an exterior of the housing.


In another aspect of the present disclosure, the end effector assembly is configured for treating tissue with bipolar energy and the energizable member is configured for treating tissue with monopolar energy.


Provided in accordance with other aspects of the present disclosure is an electrosurgical instrument including a housing, a shaft extending distally from the housing, and an end effector assembly attached at a distal end of the shaft. An outer sleeve is disposed about the shaft and selectively translatable relative to the shaft. An energizable member is operably coupled to the outer sleeve. A deployment mechanism is operably coupled to the housing and includes a lever rotatably coupled to the housing via an axle, and first, second, and third link members. The first link member is pivotably coupled to the axle at a fixed end thereof and defines a free end. The second link member is pivotably coupled to the housing at a fixed end thereof and coupled to the deployable assembly at a free end thereof. The second link member defines an intermediate portion disposed between the fixed and free ends. A third link member is pivotably coupled between the fixed end of the first link member and the intermediate portion of the second link member. In use, rotation of the lever about the axle pivots the first and second link members about the respective fixed ends thereof and effects movement of the third link member, thereby translating the outer sleeve distally over the end effector assembly and simultaneously deploying the energizable member distally past the end effector assembly.


In an aspect of the present disclosure, the first link member includes a bifurcated configuration having an opening defined therein that is configured to receive the outer sleeve therebetween.


In another aspect of the present disclosure, the second link member includes a bifurcated configuration having opposing finger portions each defining an elongated slot configured to receive at least a portion of a pivot pin coupled to the outer sleeve.


In still another aspect of the present disclosure, the lever is rotatable between a first configuration, wherein the outer sleeve and energizable member are disposed in retracted positions, and a second configuration, wherein the outer sleeve and energizable member are disposed in deployed positions.


In yet another aspect of the present disclosure, the end effector assembly is configured for treating tissue with bipolar energy and the energizable member is configured for treating tissue with monopolar energy.


In still yet another aspect of the present disclosure, the lever includes a body portion disposed within the housing and a paddle portion extending from the body portion through an opening in the housing to permit manipulation thereof from an exterior of the housing.


Provided in accordance with other aspects of the present disclosure is an electrosurgical instrument including a housing, a shaft extending distally from the housing, and an end effector assembly attached at a distal end of the shaft. An outer sleeve is disposed about the shaft and selectively translatable relative to the shaft. An energizable member is operably coupled to the outer sleeve. A deployment mechanism is operably coupled to the housing and includes a lever rotatably coupled to the housing via an axle, a first link member, and a second link member. The first link member is pivotably coupled to the axle at a fixed end thereof and defines a free end. The second link member is pivotably coupled to the housing at a fixed end thereof and coupled to the deployable assembly at a free end thereof. The second link member defines an intermediate portion disposed between the fixed and free ends. The free end of the first link member is pivotably coupled to the intermediate portion of the second link member. In use, rotation of the lever about the axle pivots the first and second link members about the respective fixed ends thereof, thereby translating the outer sleeve distally over the end effector assembly and simultaneously deploying the energizable member distally past the end effector assembly.


In another aspect of the present disclosure, the second link member includes a bifurcated configuration having opposing finger portions each defining an elongated slot configured to receive at least a portion of a pivot pin coupled to the outer sleeve.


In still another aspect of the present disclosure, the lever is rotatable between a first configuration, wherein the outer sleeve and energizable member are disposed in retracted positions, and a second configuration, wherein the outer sleeve and energizable member are disposed in deployed positions.


In yet another aspect of the present disclosure, the end effector assembly is configured for treating tissue with bipolar energy and the energizable member is configured for treating tissue with monopolar energy.


In still yet another aspect of the present disclosure, the lever includes a body portion disposed within the housing and a paddle portion extending from the body portion through an opening in the housing to permit manipulation thereof from an exterior of the housing.





BRIEF DESCRIPTION OF THE DRAWINGS

Various aspects of the present disclosure are described herein with reference to the drawings wherein like reference numerals identify similar or identical elements:



FIG. 1 is a side, right perspective view of an endoscopic surgical forceps in accordance with an embodiment of the present disclosure;



FIG. 2 is a partial, cut-away view of a proximal end of the endoscopic surgical forceps shown in FIG. 1 with a deployment mechanism of the endoscopic surgical forceps shown in a retracted configuration;



FIG. 3 is a partial, cut-away view of the proximal end of the endoscopic surgical forceps with the deployment mechanism shown in a deployed configuration;



FIG. 4 is a partial, left perspective view of the proximal end of the endoscopic surgical forceps with a thumb paddle of the deployment mechanism shown in the deployed configuration;



FIG. 5A is a cross-sectional view of a distal end of the endoscopic surgical forceps with a monopolar electrode, which is connected to the deployment mechanism shown in FIGS. 2 and 3, shown in the retracted configuration;



FIG. 5B is a cross-sectional view of the distal end of the endoscopic surgical forceps with the monopolar electrode of FIG. 5A shown in the deployed configuration;



FIG. 6 is a partial, perspective view of a proximal end of an endoscopic surgical forceps including a deployment mechanism in accordance with another embodiment of the present disclosure;



FIG. 7 is a partial, cut-away view of the proximal end of the endoscopic surgical forceps shown in FIG. 6 with the deployment mechanism shown in a retracted configuration;



FIG. 8 is an isometric view of FIG. 7;



FIG. 9 is a partial, cut-away view of the proximal end of the endoscopic surgical forceps shown in FIG. 6 with the deployment mechanism of FIG. 7 shown in a deployed configuration;



FIG. 10 is a partial, perspective view of a proximal end of an endoscopic surgical forceps including a deployment mechanism in accordance with yet another embodiment of the present disclosure;



FIG. 11 is an isometric view of FIG. 10; and



FIG. 12 is a partial, cut-away view of the proximal end of the endoscopic surgical forceps shown in FIG. 10 with the deployment mechanism shown in a deployed configuration.





DETAILED DESCRIPTION

Deployment mechanisms that are configured for use with multi-functional surgical instruments that are operable in bipolar and/or monopolar modes of operation may prove useful in the surgical arena, and such deployment mechanisms are described herein. Specifically, the deployment mechanisms described herein include one or more linkage configurations that, when actuated, move a monopolar electrode of the electrosurgical forceps from a retracted configuration to a deployed configuration to electrosurgically treat tissue.



FIGS. 1-4 illustrate a forceps 10 that includes a deployment mechanism 28 in accordance with an embodiment of the present disclosure. The forceps 10 is configured to operate in both a bipolar mode, e.g., for grasping, treating, coagulating and/or sealing tissue, and a monopolar mode, e.g., for treating and/or dissecting tissue, although other configurations are also contemplated.


Briefly, the forceps 10 includes an outer fixed shaft 12 defining a longitudinal axis “A-A,” a housing 14, a handle assembly 16, a trigger assembly 18 (only shown in FIG. 1), a rotating assembly 20, an end effector assembly 22, and a monopolar assembly that includes an outer sleeve 24 and an energizable rod member 26 (the energizable rod 26 is shown in FIG. 5B). For a more detailed description of the forceps 10 and operative components associated therewith, reference is made to commonly-owned U.S. patent application Ser. No. 14/047,474.


The deployment mechanism 28 includes a lever 30 that is positioned within the housing 14 (FIGS. 2 and 3). The lever 30 includes a thumb paddle 32 that is operable by a user from left and/or right exterior side surfaces 14a, 14b, respectively, of the housing 14. In the illustrated embodiment, the thumb paddle 32 is disposed within opposing recesses 34 (FIGS. 1 and 4) defined on the left and right exterior side surfaces 14a, 14b of the housing 14. The thumb paddle 32 may be positioned on only one of the left or right sides side surfaces 14a, 14b of the housing 14. The thumb paddle 32 is movable within the recesses 34 relative to the housing 14 from a first configuration (FIG. 2) to second configuration (FIGS. 1, 3, and 4). In FIG. 1, the paddle 32 is shown between the first and second configurations.


Referring to FIGS. 2 and 3, a bottom portion 36 of the lever 30 is pivotably coupled to a proximal end 38 of the fixed outer shaft 12 adjacent a spring cartridge 40 of a drive assembly 42 of the forceps 10. The bottom portion 36 pivots about the outer fixed shaft 12 when the lever 30 is moved between the first and second configurations. An upper portion 44 of the lever 30 pivotably couples to a linkage 46 via one or more suitable coupling methods, e.g. a pin, rivet or the like (not explicitly shown).


Continuing with reference to FIGS. 2 and 3, the linkage 46 includes a first link member 46a and a second link member 46b. A proximal end 48 of the first link member 46a pivotably couples to the upper portion 44 of the lever 30 via one of the aforementioned coupling members (e.g., a pin, rivet, or the like.). A distal end 50 of the first link member 46a couples to a proximal end 52 of the second link member 46b via a pivot 54 (e.g., a pivot pin 54). The pivot pin 54 is slidably disposed within an elongated slot 56 defined in an interior wall 58 of the housing 14 (as best seen in FIG. 3). The elongated slot 56 has a slight curvature adjacent its distal end and extends distally into a tapered distal end of the housing 14.


In the embodiment illustrated in FIGS. 1-4, the first link member 46a also includes a slight curvature adjacent its distal end, which facilitates sliding the first link member 46a within the elongated slot 56. When the thumb paddle 32 of the lever 30 is moved from the first configuration to the second configuration, the pivot pin 54 is slid into position at a distal end of the elongated slot 56 (FIG. 3) which allows the proximal end 52 of the second link member 46b to pivot about the pivot pin 54 and move a distal end 60 of the second link member 46b distally.


The distal end 60 of the second link member 46b couples to a collar 62 via a pivot pin 64. The collar 62 is operably coupled to a proximal end 66 of the outer insulative sleeve 24 of the monopolar assembly of the forceps 10. When the proximal end 52 of the second link member 46b pivots about the pivot pin 54, the distal end 60 of the second link member 46b moves distally, which, in turn, moves the collar 62 and the outer insulative sleeve 24 distally thereby covering a pair of jaw members 21, 23 of the end effector assembly 22, as will be described in detail below.


The outer insulative sleeve 24 is slidably disposed about outer fixed shaft 12 and is configured for translation about and relative to the outer fixed shaft 12 between a fully retracted configuration (FIGS. 2 and 5A) and a fully deployed configuration (FIGS. 3, 4, and 5B). In the retracted configuration, the outer insulative sleeve 24 is disposed proximal of the end effector assembly 22, and in the deployed configuration, the outer insulative sleeve 24 is disposed about the end effector assembly 22 to substantially cover the jaw members 21, 23.


Referring to FIGS. 5A and 5B, the energizable rod member 26 is coupled to the outer insulative sleeve 24 such that advancement of the outer insulative sleeve 24 between the retracted and deployed configurations and advancement of energizable rod member 26 between the retracted and deployed configurations are effected concurrently or near concurrently, via actuation of the lever 30. Energizable rod member 26 is coupled to a source of energy for providing energy to a distal tip 25 of the energizable rod member 26, e.g., upon actuation of an activation switch 68 (FIGS. 1-4) in a monopolar mode of operation, for treating tissue using monopolar energy.


As discussed above, the forceps 10 is operable in both the bipolar mode, e.g., for grasping, treating, coagulating, sealing and/or cutting tissue, and the monopolar mode, e.g., for electrosurgical tissue treatment. In use, with respect to either mode of operation, initially, forceps 10 is manipulated such that end effector assembly 22 is positioned and oriented as desired within a surgical site.


In the bipolar mode, the outer insulative sleeve 24 and energizable rod member 26 of the monopolar assembly remain disposed in the retracted configuration, as shown in FIGS. 2 and 5A. With the jaw members 21, 23 of the end effector assembly 22 disposed in the spaced-apart configuration, the end effector assembly 22 may be maneuvered into position such that tissue to be grasped and treated is disposed between jaw members 21, 23. Next, the movable handle 17 (FIG. 1) of the handle assembly 16 is actuated, or pulled proximally relative to a fixed handle 15 (FIG. 1) such that jaw member 21 is pivoted relative to jaw member 23 from the spaced-apart configuration to the approximated configuration to grasp tissue therebetween, as shown in FIG. 5A. In this approximated configuration, energy may be selectively supplied, e.g., via activation switch 68, to tissue-sealing plates (not explicitly shown) of the jaw members 21, 23 and conducted through tissue to effect a tissue seal or otherwise treat tissue.


With respect to the monopolar mode of operation, the movable handle 17 is first depressed relative to fixed handle 15 to pivot jaw member 21 relative to jaw member 23 from the spaced-apart configuration to the approximated configuration. Once jaw members 21, 23 are disposed in the approximated configuration, the thumb paddle 32 of the lever 30 is moved from the first configuration to the second configuration, thereby urging the first and second link members 46a, 46b distally. Distal translation of the first and second link members 46a, 46b, in turn, translates the collar 36 distally through the housing 14. Distal translation of the collar 36 moves the outer insulative sleeve 24 of the monopolar assembly distally over the end effector assembly 22 and moves the energizable rod member 26 distally such that the distal tip 25 of energizable rod member 26 extends distally from both the end effector assembly 22 and the outer insulative sleeve 24 (FIG. 5B).


With the distal tip 25 of the energizable rod 26 disposed in the deployed configuration, the activation switch 68 of the forceps 10 may be selectively actuated to supply energy to the distal tip 25 of energizable rod member 26 for electrosurgically treating tissue. The distal tip 25 may also be used in a mechanical fashion depending upon the shape of the distal tip 25.


The deployment mechanism 28 described herein for use with the forceps 10 is easy to operate and inexpensive to manufacture when compared to the aforementioned conventional deployment mechanisms, as the deployment mechanism 28 is not interconnected with the handle assembly 16, rotation assembly 20 and/or the trigger assembly 18 of the forceps 10.


From the foregoing and with reference to the various figure drawings, those skilled in the art will appreciate that certain modifications can also be made to the present disclosure without departing from the scope of the same. For example, other linkage configurations may be used to move the outer sleeve 24 including the energizable rod 26 between the retracted and deployed configurations.


Referring now to FIGS. 6-9, a forceps 110 that includes a deployment mechanism 128 according an embodiment of the instant disclosure is shown. For clarity, the forceps 110 is shown without the rotation assembly, the movable handle assembly, trigger assembly, and the end effector assembly. The deployment mechanism 128 is similar to the deployment mechanism 28, thus only those features unique to the deployment mechanism 128 are described herein.


A lever 130 having a generally elongated configuration may be positioned on the left (not shown) and/or right sides 114a of the housing 114. For illustrative purposes, the lever 130 is shown positioned on the right side 114a of the housing 114. The lever 130 is configured to allow a user to selectively move the lever 130 between the first and second configurations to effect movement of an outer insulative sleeve 124 including an energizable rod, e.g., energizable rod 26.


An axle 131 supports the lever 130 and extends through an aperture (not explicitly shown) defined through the housing 114. The axle 131 is rotatable with respect to the housing 114 and connects the lever 130 to a linkage 146 including a first link member 146a, a second link member 146b, and a third link member 146c.


The first link member 146a includes an aperture defined therein at a bottom end thereof (not explicitly shown) configured to receive the axle 131. First link member 146a is bifurcated and includes opposing finger portions 147a, 147b that extend from the bottom end of the first link member 146a and define an opening 148 therebetween configured to receive the outer insulative sleeve 124 (FIG. 8). The opening 148 allows the outer insulative sleeve 124 to translate between the opposing finger portions 147a, 147b when the lever 130 is moved between the first and second configurations.


The second link member 146b includes an aperture (not explicitly shown) at a distal end 150 thereof that, along with apertures (not explicitly shown) defined through top portions of the opposing finger portions 147a, 147b, are configured to receive a pivot pin 164. The pivot pin 164 connects the distal end 150 of the second link member 146b to the opposing finger portions 147a, 147b of the first link member 146a.


The second link member 146b includes at its proximal end an aperture (not explicitly shown) defined therein that, along with apertures (not explicitly shown) defined through opposing finger portions 149a, 149b of the third link member 146c, are configured to receive a pivot pin 166. The pivot pin 166 connects the proximal end of the second link member 146b to the opposing finger portions 149a, 149b of the third link member 146c.


The third link member 146c includes a detent 154 at a top end thereof that is rotatably seated within a corresponding indent (not explicitly shown) defined within an interior wall portion 158 of the housing 114. This indent and detent configuration allows the third link member 146c to rotate in relation to the interior wall 158 of the housing 114 when the lever 130 is moved between the first and second configurations.


A pair of elongated slots 160a, 160b are defined through the opposing finger portions 149a, 149b of the third link member 146c and are configured receive a pivot pin 168 positioned on the outer insulative sleeve 124. The pivot pin 168 couples to the proximal end of the outer insulative sleeve 124 and extends transversely in relation to the longitudinal axis “A-A.”


In use, once the jaw members 21, 23 are disposed in the approximated configuration, the lever 130 is moved from the first configuration to the second configuration, thereby urging the first, second, and third link members 146a, 146b, 146c distally. Distal translation of the first, second, and third link members 146a, 146b, 146c, in turn, moves the outer insulative sleeve 124 and the energizable rod member 126 in a manner as described above with respect to the outer insulative sleeve 24 and the energizable rod member 26 (see FIG. 9).



FIGS. 10-12 illustrate a forceps 210 that includes a deployment mechanism 228 according yet another embodiment of the instant disclosure. Deployment mechanism 228 is similar to deployment mechanism 128 and, accordingly, only those features unique to the deployment mechanism 228 are described herein.


A lever 230 having a generally elongated configuration is disposed on the left and/or right sides of the housing 214. For illustrative purposes, the lever 230 is shown for actuation from the right side of the housing 214. The lever 230 is configured to allow a user to move the lever 230 between the first and second configurations to effect movement of an outer insulative sleeve 224 including an energizable rod, e.g., the energizable rod 26.


The lever 230 includes an axle 231 at a top end thereof that extends through an aperture (not explicitly shown) defined through the housing 214. The axle 231 is rotatable with respect to the housing 214 and connects the lever 230 to a linkage assembly 246 including a first link member 246a, a second link member 246b, and a third link member 246c.


Referring to FIG. 11, the first link member 246a includes a body portion 247 having a cylindrical configuration. The body portion 247 rotatably seats within a corresponding cylindrical aperture (not explicitly shown) defined within an interior wall portion 258 of the housing 214. The body portion 247 includes an aperture (not explicitly shown) that receives the axle 231 of the lever 230 to secure the lever 230 to the body portion 247 of the first link member 246a. The body portion 247 also includes a flange 249 that is positioned between opposing wall portions 248a, 248b provided at a distal end of the second link member 246b.


The opposing wall portions 248a, 248b have apertures (not explicitly shown) that, along with an aperture (not explicitly shown) defined through the flange 249, receive a pivot pin 264 that connects the wall portions 248a, 248b of the second link member 246b to the flange 249 of the first link member 246a.


The second link member 246b includes an aperture (not explicitly shown) at a proximal end thereof that, along with apertures (not explicitly shown) defined through opposing finger portions 251a, 251b of the third link member 246c, receive a pivot pin 266 that connects the proximal end of the second link member 246b to the opposing finger portions 251a, 251b of the third link member 246c.


The third link member 246c includes a detent 254 at a top end thereof that couples to a corresponding indent (not explicitly shown) defined within the interior wall portion 258 of the housing 214. This indent and detent configuration allows the third link member 246c to rotate in relation to the interior wall 258 of the housing 214 when the lever 230 is moved between the first and second configurations.


Elongated slots 260a, 260b are defined through the opposing finger portions 251a, 251b of the third link member 246c and are configured to receive a pivot pin 268 disposed on the outer insulative sleeve 224. The pivot pin 268 couples to a proximal end of the outer insulative sleeve 224 and extends transversely in relation to the longitudinal axis “A-A.”


In use, once the jaw members 21, 23 are disposed in the approximated configuration, the lever 230 is moved from the first configuration to the second configuration, thereby urging the first, second, and third link members 246a, 246b, 246c distally. Distal translation of the first, second, and third link members 246a, 246b, 246c, in turn, moves the outer insulative sleeve 224 and of the energizable rod member 26 in a manner as described above with respect to the outer insulative sleeve 24 and the energizable rod member 26.


It is noted that the aforementioned advantages described with respect to the deployment mechanism 28 configured for use with the forceps 10 are attainable also with the deployment mechanisms 128, 228.


The various embodiments disclosed herein may also be configured to work with robotic surgical systems and what is commonly referred to as “Telesurgery”. Such systems employ various robotic elements to assist the surgeon in the operating theatre and allow remote operation (or partial remote operation) of surgical instrumentation. Various robotic arms, gears, cams, pulleys, electric and mechanical motors, etc. may be employed for this purpose and may be designed with a robotic surgical system to assist the surgeon during the course of an operation or treatment. Such robotic systems may include, remotely steerable systems, automatically flexible surgical systems, remotely flexible surgical systems, remotely articulating surgical systems, wireless surgical systems, modular or selectively configurable remotely operated surgical systems, etc.


The robotic surgical systems may be employed with one or more consoles that are next to the operating theater or located in a remote location. In this instance, one team of surgeons or nurses may prep the patient for surgery and configure the robotic surgical system with one or more of the instruments disclosed herein while another surgeon (or group of surgeons) remotely control the instruments via the robotic surgical system. As can be appreciated, a highly skilled surgeon may perform multiple operations in multiple locations without leaving his/her remote console which can be both economically advantageous and a benefit to the patient or a series of patients.


The robotic arms of the surgical system are typically coupled to a pair of master handles by a controller. The handles can be moved by the surgeon to produce a corresponding movement of the working ends of any type of surgical instrument (e.g., end effectors, graspers, knifes, scissors, etc.) which may complement the use of one or more of the embodiments described herein. The movement of the master handles may be scaled so that the working ends have a corresponding movement that is different, smaller or larger, than the movement performed by the operating hands of the surgeon. The scale factor or gearing ratio may be adjustable so that the operator can control the resolution of the working ends of the surgical instrument(s).


The master handles may include various sensors to provide feedback to the surgeon relating to various tissue parameters or conditions, e.g., tissue resistance due to manipulation, cutting or otherwise treating, pressure by the instrument onto the tissue, tissue temperature, tissue impedance, etc. As can be appreciated, such sensors provide the surgeon with enhanced tactile feedback simulating actual operating conditions. The master handles may also include a variety of different actuators for delicate tissue manipulation or treatment further enhancing the surgeon's ability to mimic actual operating conditions.


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.

Claims
  • 1. An electrosurgical instrument, comprising: a housing;a shaft extending distally from the housing having an end effector assembly attached at a distal end thereof;a handle assembly coupled to the housing, the handle assembly including a movable handle operable to manipulate the end effector assembly;an outer sleeve disposed about the shaft and selectively translatable relative thereto;an energizable member operably coupled to the outer sleeve; anda deployment mechanism operably coupled to the housing, the deployment mechanism including: a lever rotatably coupled to the housing and positioned proximally of the movable handle; andat least one link member coupled between the lever and the outer sleeve, the at least one link member coupled to the outer sleeve distally of the movable handle,wherein rotation of the lever relative to the housing moves the at least one link member, which, in turn, translates the outer sleeve distally to move the outer sleeve over the end effector assembly and simultaneously deploy the energizable member distally past the end effector assembly.
  • 2. The electrosurgical instrument according to claim 1, further comprising a collar operably disposed on a proximal end of the outer sleeve, the collar pivotably coupled to the at least one link member.
  • 3. The electrosurgical instrument according to claim 2, wherein the at least one link member includes first and second link members and wherein a first pivot pin pivotably couples a distal end of the second link member to the collar of the outer sleeve.
  • 4. The electrosurgical instrument according to claim 3, wherein a proximal end of the first link member is pivotably coupled to the lever and a distal end of the first link is pivotably coupled to a proximal end of the second link member via a second pivot pin.
  • 5. The electrosurgical instrument according to claim 4, wherein an elongated slot defined in the housing extends from an interior wall of the housing and operably receives the second pivot pin.
  • 6. The electrosurgical instrument according to claim 5, wherein the second pivot pin translates within the elongated slot when the lever is rotated relative to the housing to guide movement of the first and second link members.
  • 7. The electrosurgical instrument according to claim 1, wherein the lever is rotatable between a first configuration, wherein the outer sleeve and energizable member are disposed in retracted positions, and a second configuration, wherein the outer sleeve and energizable member are disposed in deployed positions.
  • 8. The electrosurgical instrument according to claim 1, wherein the lever includes a body portion disposed within the housing and a paddle portion extending from the body portion through an opening in the housing to permit manipulation thereof from an exterior of the housing.
  • 9. The electrosurgical instrument according to claim 1, wherein the end effector assembly is configured for treating the tissue with bipolar energy and wherein the energizable member is configured for treating tissue with monopolar energy.
  • 10. An electrosurgical instrument, comprising: a housing;a shaft extending distally from the housing having an end effector assembly attached at a distal end thereof;an outer sleeve disposed about the shaft and selectively translatable relative thereto;an energizable member operably coupled to the outer sleeve; anda deployment mechanism operably coupled to the housing, the deployment mechanism including: a lever rotatably coupled to the housing via an axle;a first link member pivotably coupled to the axle at a fixed end thereof and defining a free end;a second link member pivotably coupled to the housing at a fixed end thereof and coupled to the deployable assembly at a free end thereof, the second link member defining an intermediate portion disposed between the fixed and free ends; anda third link member pivotably coupled between the fixed end of the first link member and the intermediate portion of the second link member,wherein rotation of the lever about the axle pivots the first and second link members about the respective fixed ends thereof and effects movement of the third link member, thereby translating the outer sleeve distally over the end effector assembly and simultaneously deploying the energizable member distally past the end effector assembly.
  • 11. The electrosurgical instrument according to claim 10, wherein the first link member includes a bifurcated configuration having an opening defined therein configured to receive the outer sleeve therebetween.
  • 12. The electrosurgical instrument according to claim 10, wherein the second link member includes a bifurcated configuration having opposing finger portions each defining an elongated slot configured to receive at least a portion of a pivot pin coupled to the outer sleeve.
  • 13. The electrosurgical instrument according to claim 10, wherein the lever is rotatable between a first configuration, wherein the outer sleeve and energizable member are disposed in retracted positions, and a second configuration, wherein the outer sleeve and energizable member are disposed in deployed positions.
  • 14. The electrosurgical instrument according to claim 10, wherein the end effector assembly is configured for treating tissue with bipolar energy and wherein the energizable member is configured for treating the tissue with monopolar energy.
  • 15. The electrosurgical instrument according to claim 10, wherein the lever includes a body portion disposed within the housing and a paddle portion extending from the body portion through an opening in the housing to permit manipulation thereof from an exterior of the housing.
  • 16. An electrosurgical instrument, comprising: a housing;a shaft extending distally from the housing having an end effector assembly attached at a distal end thereof;an outer sleeve disposed about the shaft and selectively translatable relative thereto;an energizable member operably coupled to the outer sleeve; anda deployment mechanism operably coupled to the housing, the deployment mechanism including: a lever rotatably coupled to the housing via an axle;a first link member pivotably coupled to the axle at a fixed end thereof and defining a free end; anda second link member pivotably coupled to the housing at a fixed end thereof and coupled to the deployable assembly at a free end thereof, the second link member defining an intermediate portion disposed between the fixed and free ends, the free end of the first link member pivotably coupled to the intermediate portion of the second link member,wherein rotation of the lever about the axle pivots the first and second link members about the respective fixed ends thereof, thereby translating the outer sleeve distally over the end effector assembly and simultaneously deploying the energizable member distally past the end effector assembly.
  • 17. The electrosurgical instrument according to claim 16, wherein the second link member includes a bifurcated configuration having opposing finger portions each defining an elongated slot configured to receive at least a portion of a pivot pin coupled to the outer sleeve.
  • 18. The electrosurgical instrument according to claim 16, wherein the lever is rotatable between a first configuration, wherein the outer sleeve and energizable member are disposed in retracted positions, and a second configuration, wherein the outer sleeve and energizable member are disposed in deployed positions.
  • 19. The electrosurgical instrument according to claim 16, wherein the lever includes a body portion disposed within the housing and a paddle portion extending from the body portion through an opening in the housing to permit manipulation thereof from an exterior of the housing.
  • 20. The electrosurgical instrument according to claim 16, wherein the end effector assembly is configured for treating tissue with bipolar energy and wherein the energizable member is configured for treating the tissue with monopolar energy.
CROSS REFERENCE TO RELATED APPLICATION

The present application claims the benefit of and priority to U.S. Provisional Application Ser. No. 62/051,376, filed on Sep. 17, 2014, the entire contents of which are incorporated herein by reference.

US Referenced Citations (275)
Number Name Date Kind
4005714 Hiltebrandt Feb 1977 A
D249549 Pike Sep 1978 S
D263020 Rau, III Feb 1982 S
D295893 Sharkany et al. May 1988 S
D295894 Sharkany et al. May 1988 S
D298353 Manno Nov 1988 S
D299413 DeCarolis Jan 1989 S
5026379 Yoon Jun 1991 A
D343453 Noda Jan 1994 S
5312391 Wilk May 1994 A
5318589 Lichtman Jun 1994 A
5324254 Phillips Jun 1994 A
D348930 Olson Jul 1994 S
D349341 Lichtman et al. Aug 1994 S
5342359 Rydell Aug 1994 A
5368600 Failla et al. Nov 1994 A
D354564 Medema Jan 1995 S
5401274 Kusunoki Mar 1995 A
D358887 Feinberg May 1995 S
5411519 Tovey et al. May 1995 A
5445638 Rydell et al. Aug 1995 A
5458598 Feinberg et al. Oct 1995 A
5527313 Scott et al. Jun 1996 A
5556397 Long et al. Sep 1996 A
5611813 Lichtman Mar 1997 A
D384413 Zlock et al. Sep 1997 S
5665100 Yoon Sep 1997 A
5735873 MacLean Apr 1998 A
H1745 Paraschac Aug 1998 H
5792164 Lakatos et al. Aug 1998 A
5807393 Williamson, IV et al. Sep 1998 A
D402028 Grimm et al. Dec 1998 S
D408018 McNaughton Apr 1999 S
5893863 Yoon Apr 1999 A
5919202 Yoon Jul 1999 A
D416089 Barton et al. Nov 1999 S
6004319 Goble et al. Dec 1999 A
D424694 Tetzlaff et al. May 2000 S
D425201 Tetzlaff et al. May 2000 S
6113596 Hooven et al. Sep 2000 A
H1904 Yates et al. Oct 2000 H
6156009 Grabek Dec 2000 A
6190386 Rydell Feb 2001 B1
6270497 Sekino et al. Aug 2001 B1
D449886 Tetzlaff et al. Oct 2001 S
6299625 Bacher Oct 2001 B1
D453923 Olson Feb 2002 S
D454951 Bon Mar 2002 S
D457958 Dycus et al. May 2002 S
D457959 Tetzlaff et al. May 2002 S
6387094 Eitenmuller May 2002 B1
H2037 Yates et al. Jul 2002 H
D465281 Lang Nov 2002 S
D466209 Bon Nov 2002 S
6551313 Levin Apr 2003 B1
6558385 McClurken et al. May 2003 B1
6679882 Kornerup Jan 2004 B1
D493888 Reschke Aug 2004 S
D496997 Dycus et al. Oct 2004 S
6808525 Latterell et al. Oct 2004 B2
D499181 Dycus et al. Nov 2004 S
6837888 Ciarrocca et al. Jan 2005 B2
D502994 Blake, III Mar 2005 S
D509297 Wells Sep 2005 S
6942662 Goble et al. Sep 2005 B2
7033356 Latterell et al. Apr 2006 B2
7063699 Hess et al. Jun 2006 B2
D525361 Hushka Jul 2006 S
D531311 Guerra et al. Oct 2006 S
7128254 Shelton, IV et al. Oct 2006 B2
D533274 Visconti et al. Dec 2006 S
D533942 Kerr et al. Dec 2006 S
D535027 James et al. Jan 2007 S
D538932 Malik Mar 2007 S
D541418 Schechter et al. Apr 2007 S
7208005 Frecker et al. Apr 2007 B2
D541611 Aglassinger May 2007 S
D541938 Kerr et al. May 2007 S
D545432 Watanabe Jun 2007 S
7232440 Dumbauld et al. Jun 2007 B2
D547154 Lee Jul 2007 S
D564662 Moses et al. Mar 2008 S
D567943 Moses et al. Apr 2008 S
7367976 Lawes et al. May 2008 B2
7402162 Ouchi Jul 2008 B2
D575395 Hushka Aug 2008 S
D575401 Hixson et al. Aug 2008 S
7442194 Dumbauld et al. Oct 2008 B2
7445621 Dumbauld et al. Nov 2008 B2
D582038 Swoyer et al. Dec 2008 S
7481810 Dumbauld et al. Jan 2009 B2
7510562 Lindsay Mar 2009 B2
7588570 Wakikaido et al. Sep 2009 B2
7658311 Boudreaux Feb 2010 B2
D617900 Kingsley et al. Jun 2010 S
D617901 Unger et al. Jun 2010 S
D617902 Twomey et al. Jun 2010 S
D617903 Unger et al. Jun 2010 S
D618798 Olson et al. Jun 2010 S
7758577 Nobis et al. Jul 2010 B2
D621503 Otten et al. Aug 2010 S
7789878 Dumbauld et al. Sep 2010 B2
7815636 Ortiz Oct 2010 B2
7819872 Johnson et al. Oct 2010 B2
D627462 Kingsley Nov 2010 S
D628289 Romero Nov 2010 S
D628290 Romero Nov 2010 S
D630324 Reschke Jan 2011 S
7879035 Garrison et al. Feb 2011 B2
D649249 Guerra Nov 2011 S
D649643 Allen, IV et al. Nov 2011 S
D661394 Romero et al. Jun 2012 S
8257352 Lawes et al. Sep 2012 B2
8333765 Johnson et al. Dec 2012 B2
8353437 Boudreaux Jan 2013 B2
8454602 Kerr et al. Jun 2013 B2
8523898 Bucciaglia et al. Sep 2013 B2
8529566 Kappus et al. Sep 2013 B2
8568408 Townsend et al. Oct 2013 B2
8591510 Allen, IV et al. Nov 2013 B2
8628557 Collings et al. Jan 2014 B2
8679098 Hart Mar 2014 B2
8679140 Butcher Mar 2014 B2
RE44834 Dumbauld et al. Apr 2014 E
8685009 Chernov et al. Apr 2014 B2
8685056 Evans et al. Apr 2014 B2
8696667 Guerra et al. Apr 2014 B2
8702737 Chojin et al. Apr 2014 B2
8702749 Twomey Apr 2014 B2
8745840 Hempstead et al. Jun 2014 B2
8747413 Dycus Jun 2014 B2
8747434 Larson et al. Jun 2014 B2
8752264 Ackley et al. Jun 2014 B2
8756785 Allen, IV et al. Jun 2014 B2
8845636 Allen, IV et al. Sep 2014 B2
8852185 Twomey Oct 2014 B2
8864753 Nau, Jr. et al. Oct 2014 B2
8864795 Kerr et al. Oct 2014 B2
8887373 Brandt et al. Nov 2014 B2
8888771 Twomey Nov 2014 B2
8900232 Ourada Dec 2014 B2
8920461 Unger et al. Dec 2014 B2
8939972 Twomey Jan 2015 B2
8961513 Allen, IV et al. Feb 2015 B2
8961514 Garrison Feb 2015 B2
8961515 Twomey et al. Feb 2015 B2
8968283 Kharin Mar 2015 B2
8968298 Twomey Mar 2015 B2
8968305 Dumbauld et al. Mar 2015 B2
8968306 Unger Mar 2015 B2
8968307 Evans et al. Mar 2015 B2
8968308 Homer et al. Mar 2015 B2
8968309 Roy et al. Mar 2015 B2
8968310 Twomey et al. Mar 2015 B2
8968311 Allen, IV et al. Mar 2015 B2
8968317 Evans et al. Mar 2015 B2
8968360 Garrison et al. Mar 2015 B2
9011435 Brandt et al. Apr 2015 B2
9023035 Allen, IV et al. May 2015 B2
9028492 Kerr et al. May 2015 B2
9033981 Olson et al. May 2015 B2
9034009 Twomey et al. May 2015 B2
9039691 Moua et al. May 2015 B2
9039704 Joseph May 2015 B2
9039732 Sims et al. May 2015 B2
9060780 Twomey et al. Jun 2015 B2
9072524 Heard et al. Jul 2015 B2
9113882 Twomey et al. Aug 2015 B2
9113899 Garrison et al. Aug 2015 B2
9113901 Allen, IV et al. Aug 2015 B2
9113909 Twomey et al. Aug 2015 B2
9113933 Chernova et al. Aug 2015 B2
9113934 Chernov et al. Aug 2015 B2
9113938 Kerr Aug 2015 B2
9161807 Garrison Oct 2015 B2
20020049442 Roberts et al. Apr 2002 A1
20040236326 Schulze et al. Nov 2004 A1
20050113827 Dumbauld May 2005 A1
20050187547 Sugi Aug 2005 A1
20060129146 Dycus et al. Jun 2006 A1
20070078458 Dumbauld et al. Apr 2007 A1
20070106295 Garrison et al. May 2007 A1
20070213707 Dumbauld et al. Sep 2007 A1
20070278277 Wixey et al. Dec 2007 A1
20080083813 Zemlok et al. Apr 2008 A1
20080215050 Bakos Sep 2008 A1
20080243120 Lawes et al. Oct 2008 A1
20090012556 Boudreaux et al. Jan 2009 A1
20090112206 Dumbauld et al. Apr 2009 A1
20090125026 Rioux et al. May 2009 A1
20090125027 Fischer May 2009 A1
20090131974 Pedersen et al. May 2009 A1
20090171350 Dycus et al. Jul 2009 A1
20090182327 Unger Jul 2009 A1
20090254084 Naito Oct 2009 A1
20100185196 Sakao et al. Jul 2010 A1
20100185197 Sakao et al. Jul 2010 A1
20100292690 Livneh Nov 2010 A1
20110071525 Dumbauld et al. Mar 2011 A1
20110087218 Boudreaux et al. Apr 2011 A1
20110130757 Horlle et al. Jun 2011 A1
20110264093 Schall Oct 2011 A1
20110276049 Gerhardt Nov 2011 A1
20110319886 Chojin et al. Dec 2011 A1
20120083827 Artale et al. Apr 2012 A1
20120209263 Sharp et al. Aug 2012 A1
20120239034 Horner et al. Sep 2012 A1
20120259331 Garrison Oct 2012 A1
20120265241 Hart et al. Oct 2012 A1
20120296205 Chernov et al. Nov 2012 A1
20120296238 Chernov et al. Nov 2012 A1
20120296239 Chernov et al. Nov 2012 A1
20120296323 Chernov et al. Nov 2012 A1
20120296371 Kappus et al. Nov 2012 A1
20120303026 Dycus et al. Nov 2012 A1
20120323238 Tyrrell et al. Dec 2012 A1
20120330308 Joseph Dec 2012 A1
20120330351 Friedman et al. Dec 2012 A1
20130018364 Chernov et al. Jan 2013 A1
20130022495 Allen, IV et al. Jan 2013 A1
20130071282 Fry Mar 2013 A1
20130072927 Allen, IV et al. Mar 2013 A1
20130079760 Twomey et al. Mar 2013 A1
20130079774 Whitney et al. Mar 2013 A1
20130085496 Unger et al. Apr 2013 A1
20130103030 Garrison Apr 2013 A1
20130103031 Garrison Apr 2013 A1
20130138101 Kerr May 2013 A1
20130144284 Behnke, II et al. Jun 2013 A1
20130165907 Attar Jun 2013 A1
20130197503 Orszulak Aug 2013 A1
20130218198 Larson et al. Aug 2013 A1
20130245623 Twomey Sep 2013 A1
20130247343 Horner et al. Sep 2013 A1
20130253489 Nau, Jr. et al. Sep 2013 A1
20130255063 Hart et al. Oct 2013 A1
20130267948 Kerr et al. Oct 2013 A1
20130267949 Kerr Oct 2013 A1
20130274736 Garrison Oct 2013 A1
20130282010 McKenna et al. Oct 2013 A1
20130289561 Waaler et al. Oct 2013 A1
20130296854 Mueller Nov 2013 A1
20130296922 Allen, IV et al. Nov 2013 A1
20130296923 Twomey et al. Nov 2013 A1
20130304058 Kendrick Nov 2013 A1
20130304059 Allen, IV et al. Nov 2013 A1
20130304066 Kerr et al. Nov 2013 A1
20130310832 Kerr et al. Nov 2013 A1
20130325057 Larson et al. Dec 2013 A1
20130331837 Larson Dec 2013 A1
20130338666 Bucciaglia et al. Dec 2013 A1
20130338693 Kerr et al. Dec 2013 A1
20130345701 Allen, IV et al. Dec 2013 A1
20130345706 Garrison Dec 2013 A1
20130345735 Mueller Dec 2013 A1
20140005663 Heard et al. Jan 2014 A1
20140005666 Moua et al. Jan 2014 A1
20140025052 Nau, Jr. et al. Jan 2014 A1
20140025053 Nau, Jr. et al. Jan 2014 A1
20140025059 Kerr Jan 2014 A1
20140025060 Kerr Jan 2014 A1
20140025066 Kerr Jan 2014 A1
20140025067 Kerr et al. Jan 2014 A1
20140025070 Kerr et al. Jan 2014 A1
20140025073 Twomey et al. Jan 2014 A1
20140031821 Garrison Jan 2014 A1
20140031860 Stoddard et al. Jan 2014 A1
20140046323 Payne et al. Feb 2014 A1
20140066910 Nau, Jr. Mar 2014 A1
20140066911 Nau, Jr. Mar 2014 A1
20140074091 Arya et al. Mar 2014 A1
20140100564 Garrison Apr 2014 A1
20140100568 Garrison Apr 2014 A1
20140135758 Mueller May 2014 A1
20140276797 Batchelor et al. Sep 2014 A1
Foreign Referenced Citations (97)
Number Date Country
2011253698 Dec 2011 AU
21299462 Sep 2009 CN
201299462 Sep 2009 CN
101636120 Jan 2010 CN
2415263 Oct 1975 DE
02514501 Oct 1976 DE
2627679 Jan 1977 DE
03423356 Jun 1986 DE
03612646 Apr 1987 DE
8712328 Feb 1988 DE
4242143 Jun 1994 DE
04303882 Feb 1995 DE
04403252 Aug 1995 DE
19515914 Jul 1996 DE
19506363 Aug 1996 DE
29616210 Nov 1996 DE
19608716 Apr 1997 DE
19751106 May 1998 DE
19751108 May 1999 DE
19946527 Jul 2001 DE
20121161 Apr 2002 DE
10045375 Oct 2002 DE
20 2007 009317 Aug 2007 DE
202007009165 Aug 2007 DE
202007009318 Aug 2007 DE
10031773 Nov 2007 DE
202007016233 Jan 2008 DE
19738457 Jan 2009 DE
102004026179 Jan 2009 DE
102008018406 Jul 2009 DE
1281878 Feb 2003 EP
1159926 Mar 2003 EP
1530952 May 2005 EP
2842509 Mar 2015 EP
61-501068 Sep 1984 JP
10-24051 Jan 1989 JP
11-47150 Jun 1989 JP
6-502328 Mar 1992 JP
5-5106 Jan 1993 JP
05-40112 Feb 1993 JP
0006030945 Feb 1994 JP
6-121797 May 1994 JP
6-285078 Oct 1994 JP
6-511401 Dec 1994 JP
06343644 Dec 1994 JP
07265328 Oct 1995 JP
8-56955 May 1996 JP
08252263 Oct 1996 JP
8-289895 Nov 1996 JP
8-317934 Dec 1996 JP
8-317936 Dec 1996 JP
9-10223 Jan 1997 JP
09000538 Jan 1997 JP
9-122138 May 1997 JP
0010000195 Jan 1998 JP
10-155798 Jun 1998 JP
11-47149 Feb 1999 JP
11-070124 Mar 1999 JP
11-169381 Jun 1999 JP
11-192238 Jul 1999 JP
11244298 Sep 1999 JP
2000-102545 Apr 2000 JP
2000-135222 May 2000 JP
2000342599 Dec 2000 JP
2000350732 Dec 2000 JP
2001008944 Jan 2001 JP
2001-29355 Feb 2001 JP
2001029356 Feb 2001 JP
2001-03400 Apr 2001 JP
2001128990 May 2001 JP
2001-190564 Jul 2001 JP
2002-136525 May 2002 JP
2002-528166 Sep 2002 JP
2003-116871 Apr 2003 JP
2003-175052 Jun 2003 JP
2003245285 Sep 2003 JP
2004-517668 Jun 2004 JP
2004-528869 Sep 2004 JP
2005-152663 Jun 2005 JP
2005-253789 Sep 2005 JP
2006-015078 Jan 2006 JP
2006-501939 Jan 2006 JP
2006-095316 Apr 2006 JP
2011125195 Jun 2011 JP
401367 Oct 1973 SU
0036986 Jun 2000 WO
0059392 Oct 2000 WO
0115614 Mar 2001 WO
0154604 Aug 2001 WO
02045589 Jun 2002 WO
0245589 Jun 2002 WO
2005110264 Nov 2005 WO
2006021269 Mar 2006 WO
05110264 Apr 2006 WO
2007118608 Oct 2007 WO
08040483 Apr 2008 WO
2011018154 Feb 2011 WO
Non-Patent Literature Citations (51)
Entry
U.S. Appl. No. 08/926,869, James G. Chandler.
U.S. Appl. No. 09/177,950, Randel A. Frazier.
U.S. Appl. No. 09/387,883, Dale F. Schmaltz.
U.S. Appl. No. 09/591,328, Thomas P. Ryan.
U.S. Appl. No. 12/336,970, Paul R. Sremeich.
Michael Choti, “Abdominoperineal Resection with the LigaSure Vessel Sealing System and LigaSure Atlas 20 cm Open Instrument”; Innovations That Work, Jun. 2003.
Carbonell et al., “Comparison of theGyrus PlasmaKinetic Sealer and the Valleylab LigaSure Device in the Hemostasis of Small, Medium, and Large-Sized Arteries” Carolinas Laparoscopic and Advanced Surgery Program, Carolinas Medical Center,Charlotte,NC; Date: Aug. 2003.
Peterson et al. “Comparison of Healing Process Following Ligation with Sutures and Bipolar Vessel Sealing” Surgical Technology International (2001).
E. David Crawford “Evaluation of a New Vessel Sealing Device in Urologic Cancer Surgery”, 2000.
Johnson et al. “Evaluation of the LigaSure Vessel Sealing System in Hemorrhoidectormy” American College of Surgeons (ACS) Clinicla Congress Poster (2000).
Muller et al., “Extended Left Hemicolectomy Using the LigaSure Vessel Sealing System” Innovations That Work, Sep. 1999.
Kennedy et al. “High-burst-strength, feedback-controlled bipolar vessel sealing” Surgical Endoscopy (1998) 12:876-878.
Burdette et al. “In Vivo Probe Measurement Technique for Determining Dielectric Properties at VHF Through Microwave Frequencies”, IEEE Transactions on Microwave Theory and Techniques, vol. TT-28, No. 4, Apr. 1980 pp. 414-427.
Carus et al., “Initial Experience With the LigaSure Vessel Sealing System in Abdominal Surgery” Innovations That Work, Jun. 2002.
Heniford et al. “Initial Research and Clinical Results with an Electrothermal Bipolar Vessel Sealer” Oct. 1999.
Heniford et al. “Initial Results with an Electrothermal Bipolar Vessel Sealer” Surgical Endoscopy (2000) 15:799-801.
Herman et al., “Laparoscopic Intestinal Resection With the LigaSure Vessel Sealing System: A Case Report”; Innovations That Work, Feb. 2002.
Koyle et al., “Laparoscopic Palomo Varicocele Ligation in Children and Adolescents” Pediatric Endosurgery & Innovative Techniques, vol. 6, No. 1, 2002.
LigaSure Vessel Sealing System, the Seal of Confidence in General, Gynecologic, Urologic, and Laparaoscopic Surgery; Sales/Product Literature; Apr. 2002.
Joseph Ortenberg “LigaSure System Used in Laparoscopic 1st and 2nd Stage Orchiopexy” Innovations That Work, Nov. 2002.
Sigel et al. “The Mechanism of Blood Vessel Closure by High Frequency Electrocoagulation” Surgery Gynecology & Obstetrics, Oct. 1965 pp. 823-831.
Sampayan et al, “Multilayer Ultra-High Gradient Insulator Technology” Discharges and Electrical Insulation in Vacuum, 1998. Netherlands Aug. 17-21, 1998; vol. 2, pp. 740-743.
Paul G. Horgan, “A Novel Technique for Parenchymal Division During Hepatectomy” The American Journal of Surgery, vol. 181, No. 3, Apr. 2001 pp. 236-237.
Benaron et al., “Optical Time-Of-Flight and Absorbance Imaging of Biologic Media”, Science, American Association for the Advancement of Science, Washington, DC, vol. 259, Mar. 5, 1993, pp. 1463-1466.
Olsson et al. “Radical Cystectomy in Females” Current Surgical Techniques in Urology, vol. 14, Issue 3, 2001.
Palazzo et al. “Randomized clinical trial of Ligasure versus open haemorrhoidectomy” British Journal of Surgery 2002, 89, 154-157.
Levy et al. “Randomized Trial of Suture Versus Electrosurgical Bipolar Vessel Sealing in Vaginal Hysterectomy” Obstetrics & Gynecology, vol. 102, No. 1, Jul. 2003.
“Reducing Needlestick Injuries in the Operating Room”, 2001.
Bergdahl et al. “Studies on Coagulation and the Development of an Automatic Computerized Bipolar Coagulator” J. Neurosurg, vol. 75, Jul. 1991, pp. 148-151.
Strasberg et al. “A Phase I Study of the LigaSure Vessel Sealing System in Hepatic Surgery” Section of HPB Surger, Washington University School of Medicine, St. Louis MO, Presented at AHPBA, Feb. 2001.
Sayfan et al. “Sutureless Closed Hemorrhoidectomy: A New Technique” Annals of Surgery vol. 234 No. 1 Jul. 2001; pp. 21-24.
Dulemba et al. “Use of a Bipolar Electrothermal Vessel Sealer in Laparoscopically Assisted Vaginal Hysterectomy” Sales/Product Literature; Jan. 2004.
Strasberg et al., “Use of a Bipolar Vessel-Sealing Device for Parenchymal Transection During Liver Surgery” Journal of Gastrointestinal Surgery, vol. 6, No. 4, Jul./Aug. 2002 pp. 569-574.
Sengupta et al., “Use of a Computer-Controlled Bipolar Diathermy System in Radical Prostatectomies and Other Open Urological Surgery” ANZ Journal of Surgery (2001) 71.9 pp. 538-540.
Rothenberg et al. “Use of the LigaSure Vessel Sealing System in Minimally Invasive Surgery in Children” Int'l Pediatric Endosurgery Group (IPEG) 2000.
Crawford et al. “Use of the LigaSure Vessel Sealing System in Urologic Cancer Surgery” Grand Rounds in Urology 1999 vol. 1 Issue 4 pp. 10-17.
Craig Johnson, “Use of the LigaSure Vessel Sealing System in Bloodless Hemorrhoidectomy” Innovations That Work, Mar. 2000.
Levy et al. “Use of a New Energy-based Vessel Ligation Device During Vaginal Hysterectomy” Int'l Federation of Gynecology and Obstetrics (FIGO) World Congress 1999.
Barbara Levy, “Use of a New Vessel Ligation Device During Vaginal Hysterectomy” FIGO 2000, Washington, D.C.
E. David Crawford “Use of a Novel Vessel Sealing Technology in Management of the Dorsal Veinous Complex”, 2000.
Jarrett et al., “Use of the LigaSure Vessel Sealing System for Peri-Hilar Vessels in Laparoscopic Nephrectomy” Sales/Product Literature 2000.
Crouch et al. “A Velocity-Dependent Model for Needle Insertion in Soft Tissue” MICCAI 2005; LNCS 3750 pp. 624-632, Dated: 2005.
McLellan et al. “Vessel Sealing for Hemostasis During Pelvic Surgery” Int'l Federation of Gynecology and Obstetrics FIGO World Congress 2000, Washington, D.C.
McLellan et al. “Vessel Sealing for Hemostasis During Gynecologic Surgery” Sales/Product Literature 1999.
Chung et al., “Clinical Experience of Sutureless Closed Hemorrhoidectomy with LigaSure” Diseases of the Colon & Rectum vol. 46, No. 1 Jan. 2003.
Tinkcler L.F., “Combined Diathermy and Suction Forceps” , Feb. 6, 1967 (Feb. 6, 1965), British Medical Journal Feb. 6, 1976, vol. 1, nr. 5431 p. 361, ISSN: 0007-1447.
“Electrosurgery: A Historical Overview” Innovations in Electrosurgery; Sales/Product Literature; Dec. 31, 2000.
Johnson et al. “Evaluation of a Bipolar Electrothermal Vessel Sealing Device in Hemorrhoidectomy” Sales/Product Literature; Jan. 2004.
European Search report issued in corresponding application No. 15178242.2 dated Mar. 14, 2016.
W. Scott Helton, “LigaSure Vessel Sealing System: Revolutionary Hemostasis Product for General Surgery”; Sales/Product Literature 1999.
Levy et al., “Update on Hysterectomy—New Technologies and Techniques” OBG Management, Feb. 2003.
Related Publications (1)
Number Date Country
20160074097 A1 Mar 2016 US
Provisional Applications (1)
Number Date Country
62051376 Sep 2014 US