Claims
- 1. A system for causing the necrosis of a volume of targeted tissue exhibiting a given peripheral extent, comprising:
an electrosurgical generator assembly, having an electrosurgical return, responsive to a first control input to generate a first output for carrying out electrosurgical cutting; a rigid support member having an external surface and extending between a base region and a tip, having a forward end region extending along a longitudinal axis from said tip and positionable in an insertion mode into adjacency with said tissue volume peripheral extent, and said forward end region having a deployment portion adjacent said tip, said deployment portion comprising an outwardly open slot extending along said longitudinal axis between a forward location and a rearward location, having a slot width and extending inwardly along oppositely disposed slot side surfaces. a thin, resilient electrically continuous electrode having a deployable portion extending within said forward end region deployment portion slot during said insertion mode, deployable to move outwardly between said deployment portion forward location and said rearward location to an outer circumscription location adjacent said tissue peripheral extent and retractable to move toward said deployment portion said electrode having a distal end fixed to said support member at a connection location adjacent said forward location and moveable outwardly from said slot generally transversely to said longitudinal axis when deployed to exhibit an arch formation extensible toward said circumscription location, and being configured to define an arch supporting abutment with said slot sides adjacent said forward location and said rearward location when deployed and retracted effective to buttress said deployable portion when said support member is rotated about said longitudinal axis; an actuator assembly extending along said support member from said base region, coupled with said electrode and actuable for effecting the deployment thereof by urging said electrode forwardly in compression to effect said outward movement thereof and to effect the retraction thereof by urging it rearwardly to cause inward movement thereof toward said deployment portion; and a control assembly in electrical communication with said electrosurgical generator and said electrode, actuable simultaneously with said electrode deployment and retraction to effect derivation of said first control input and the application of said first output to said electrode in electrical communication with said electrosurgical return.
- 2. The system of claim 1 in which:
said electrosurgical generator assembly is responsive to a second control input to generate a second output for carrying out electrosurgical coagulation; and said control assembly is actuable in correspondence with a repetition of said electrode deployment and retraction to effect derivation of said second control input and the application of said second output to said electrode in electrical association with said electrosurgical return.
- 3. The system of claim 1 in which:
said electrosurgical generator assembly is responsive to a third control input for carrying out electrosurgical cutting and coagulation; and said control assembly is actuable in correspondence with said electrode deployment and retraction to effect derivation of said third control input and the application of said third output to said electrode in electrical association with said electrosurgical return.
- 4. The system of claim 1 including:
a return electrode mounted upon said support member as a component of said external surface at a location in electrical coupling association with said tissue when said electrode is deployed and retracted; and said control assembly is configured to couple said electrosurgical return with said return electrode.
- 5. The system of claim 1 in which:
said support member includes a deflector guide component located within said electrode deployment portion slot intermediate said forward location and said rearward location; and said electrode is in freely abutting, outwardly biased relationship with said deflector guide during said insertion mode.
- 6. The system of claim 1 including:
a thin and resilient inner electrode extending within said deployment portion during said insertion mode, having a distal end connected with said support member at a connection location adjacent said forward location and extending an inner arch defining distance less than said electrode arch defining distance beyond said rearward location; said actuator assembly is configured to deploy said inner electrode by urging it forwardly in compression to effect outward movement thereof generally transversely to said longitudinal axis along a locus substantially defined by said deployment of said electrode into an outwardly depending arch formation with an inner electrode apex representing an inner maximum displacement from said longitudinal axis less than said electrode apex, and extending substantially between said forward location and said rearward location, and said actuator assembly effecting retraction of said inner electrode by urging it rearwardly to effect inward movement thereof toward said deployment portion; and said control assembly is electrically coupled with said inner electrode and is responsive to effective application of said first output thereto.
- 7. The system of claim 1 in which:
said electrode is configured having predetermined length; said control assembly includes an electrical coding component mounted with said support member and exhibiting an electrical parameter corresponding with said predetermined length; said electrosurgical generator includes a decoding circuit electrically coupled with said control assembly, responsive to electrically interrogate said electrical coding component to derive a corresponding selection signal, and is responsive to said selection signal to generate a predetermined said first output for carrying out electrosurgical cutting corresponding with said predetermined dimensions.
- 8. The system of claim 1 in which:
said support member includes a fluid delivery channel extending from a fluid input in the vicinity of said base region to a fluid output at said forward end region; and including a reservoir for retaining a supply of barrier fluid coupled with said fluid input for effecting the expression of said barrier fluid through said fluid delivery channel.
- 9. The system of claim 1 in which:
said support member forward end region is cylindrical, said slot extends inwardly along said oppositely disposed electrically insulative slot side surfaces to an electrically insulative slot bottom surface, said support member including a barrier fluid delivery channel having a fluid input in the vicinity of said base region and an electrically insulative fluid outlet having a predetermined channel width and a channel slot and extending within said open slot in adjacency with said rearward location; and said electrode extending above said fluid outlet.
- 10. The system of claim 30 in which said second fluid outlet is located adjacent said forward location.
- 11. The system of claim 1 in which:
said electrode is formed having an interior fluid transfer cavity, an electrode fluid input in fluid transfer relationship with said fluid transfer cavity and at least one fluid outlet in fluid transfer communication with said fluid transfer cavity at said forward end region assembly; and said support member includes a barrier fluid delivery assembly extending in fluid transfer relationship from a fluid input to said electrode fluid input.
- 12. The system of claim 31 including a shroud severing member slideably mounted over said support member, having a forwardly disposed cutting edge positionable rearwardly of said deployment portion when in a retracted orientation and slideable over said deployment portion from said retracted orientation when said electrode is retracted into said deployment portion subsequent to its deployment to sever said shroud from its connection said electrode and said deployment portion.
- 13. The system of claim 1 in which:
said support member forward end region has a generally cylindrical outer surface extending to said tip, is formed of electrically conductive material, said cylindrical outer surface and said tip being covered with an electrically insulative material; and said electrode is electrically coupled with said support member;
- 14. Apparatus for electrosurgically cutting a targeted region of tissue, utilizing the output, including a return, of an electrosurgical generator, comprising:
a rigid rotatable support member extending between a tip and a base region, having a forward end region extending along a longitudinal axis from said tip and positionable in an insertion mode into adjacency with said targeted region of tissue, and having a sidewall containing deployment portion at said forward end region adjacent said tip which is outwardly open, extending between a forward location and a rearward location; a thin, resilient electrode extending within said deployment portion during said insertion mode and deployable to move outwardly from between said forward and rearward locations to define an arch-shaped electrode cutting portion and retractable to move toward said deployment portion, said deployment portion being configured adjacent said forward and rearward locations to provide a buttressing engagement with said electrode; and an actuator and electrical circuit assembly extending along said support member from said base region, mechanically connected with said electrode for effecting said deployment and retraction thereof, and having a terminal assembly electrically connectable with said generator for coupling a first said applied output to said electrode providing, in operative association with said return, electrosurgical cutting of said tissue by said electrode along said cutting portion during said deployment, when deployed, and during said retraction.
- 15. The apparatus of claim 14 in which:
said electrode has a distal end connected with said support member at an abutment defining connection location adjacent said forward location and extending an arch defining distance beyond said rearward location; and said actuator and electrical circuit assembly is configured to mechanically deploy said electrode by urging it forwardly in compression to effect said movement thereof to an extent curving it into said outwardly depending arch profile.
- 16. The apparatus of claim 15 in which:
said support member includes a deflector guide component located within said electrode deployment portion intermediate said forward location and said rearward location; and said electrode is positioned in freely abutting outwardly biased relationship with said deflector guide component during said insertion mode.
- 17. The apparatus of claim 14 in which:
said support member includes a fluid delivery channel extending from a fluid input in the vicinity of said base region to a fluid output at said forward end region; and said actuator and electrical circuit assembly includes a reservoir for receiving a barrier fluid in fluid transfer communication with said fluid input, and a pump actuable to effect the expression of said barrier fluid from said fluid output.
- 18. The apparatus of claim 14 in which:
said support member forward end region is substantially cylindrical and said deployment portion includes an outwardly open slot extending along said longitudinal axis from a securement region adjacent said tip to a forward location, thence along a deployment slot region to a rearward location, having a slot width defined between oppositely disposed said sidewalls extending a slot depth to a slot bottom, including an electrically insulative surface located at said slot sidewalls and bottom; said electrode distal end positioned within said slot securement region and extending an arch defining distance beyond said rearward location; including a forward retainer component positioned over said electrode within said slot securement region and retaining it within said slot, and a rearward retainer component positioned within said slot over said electrode adjacent said rearward location, said electrode being slidably mounted there beneath; and said actuator assembly is configured to deploy said electrode by urging it forwardly in compression to effect outward movement thereof generally transversely to said longitudinal axis to an extent curving it into an outwardly depending arch formation defining said cutting portion, and effecting retraction of said electrode by urging it rearwardly to effect inward movement thereof toward said slot.
- 19. The apparatus of claim 14 in which:
said support member forward end region is substantially cylindrical and said deployment portion includes an outwardly open slot extending along said longitudinal axis from a securement end adjacent said tip to a rearward location, having oppositely disposed said sidewalls extending a slot depth to a slot bottom, and said forward end region having an electrically insulative, generally channel-shaped retention insert fixed within said slot, having an outwardly opening electrode receiving channel with oppositely disposed internal side surfaces extending a channel depth to a channel bottom, having a securement region extending at a first channel depth from said slot securement end to a forward location, thence extending along a channel deployment region having a second depth, thence having a rearward location with a channel depth corresponding with said first channel depth; said electrode having a distal end fixed within said retention insert securement region at said channel bottom and extending therefrom along said channel deployment region and beyond said rearward location an arch defining distance; and said actuator assembly is configured to deploy said electrode by urging it forwardly in compression to effect outward movement thereof generally transversely to said longitudinal axis to an extent curving it into an outwardly depending arch formation defining said cutting portion and effecting retraction of said electrode by urging it rearwardly to effect inward movement thereof toward said slot.
- 20. The apparatus of claim 19 in which said retention insert second channel depth is less than said first channel depth an amount effective to mechanically bias said electrode outwardly during said insertion mode.
- 21. A system for electrosurgically cutting a targeted region of tissue, comprising:
an electrosurgical generator assembly, having an electrosurgical return, responsive to a first control input to generate a first output for carrying out electrosurgical cutting; a rotatable support member extending between a base and tip region, having a forward end region extending along a longitudinal axis from said tip and positionable in an insertion mode into adjacency with said targeted region of tissue, and said forward end region having a sidewall containing deployment portion which is outwardly open adjacent said tip extending between a forward location adjacent said tip and a rearward location; a thin, resilient electrode having an electrically continuous deployable portion extending within said forward end region deployment portion during said insertion mode, deployable to move transversely outwardly from said longitudinal axis to define an electrically continuous electrode cutting portion extending substantially between said forward location and said rearward location and retractable to move toward said deployment portion; said deployment portion being configured adjacent said forward and rearward locations to provide a buttressing engagement with said electrode; an actuator assembly extending along said support member from said base region, coupled with said electrode and actuable for effecting the deployment and retraction thereof; and a control assembly in electrical communication with said electrosurgical generator and said electrode, actuable during said electrode deployment, when deployed and during said retraction to effect derivation of said first control input and the application of said first output to said electrode in electrical communication with said electrosurgical return.
- 22. The system of claim 21 in which:
said electrosurgical generator assembly is responsive to a second control input to generate a second output for carrying out electrosurgical coagulation; and said control assembly is actuable in correspondence with said electrode deployment to effect derivation of said second control input and the application of said second output to said electrode in electrical association with said electrosurgical return.
- 23. The system of claim 21 in which:
said electrosurgical generator assembly is responsive to a third control input for carrying out electrosurgical cutting and coagulation; and said control assembly is actuable in correspondence with said electrode deployment to effect derivation of said third control input and the application of said third output to said electrode in electrical association with said electrosurgical return.
- 24. The system of claim 21 including:
a return electrode mounted as a surface upon said support member at a location in electrical coupling association with said tissue when said electrode is deployed and retracted; and said control assembly is configured to couple said electrosurgical return with said return electrode.
- 25. The system of claim 21 in which:
said electrode has a distal end connected with said support member at a connection location adjacent said forward location and said deployable portion extends an arch defining distance beyond said rearward location; and said actuator assembly is configured to deploy said electrode by urging it forwardly in compression to effect said outward movement thereof to an extent curving it into an outwardly depending arch formation with an electrode apex representing a maximum displacement from said longitudinal axis and extending between said forward location and said rearward location, and said actuator assembly effecting retraction of said electrode by urging it rearwardly to effect inward movement thereof toward said deployment portion.
- 26. The system of claim 24 in which:
said support member includes a deflector guide component located within said electrode deployment portion intermediate said forward location and said rearward location; and said electrode is in freely abutting, outwardly biased relationship with said deflector guide during said insertion mode.
- 27. The system of claim 21 in which:
said electrode is configured having predetermined length; said control assembly includes an electrical coding component mounted with said support member and exhibiting an electrical parameter corresponding with said predetermined length; said electrosurgical generator includes a decoding circuit electrically coupled with said control assembly, responsive to electrically interrogate said electrical coding component to derive a corresponding selection signal, and is responsive to said selection signal to generate a predetermined said first output for carrying out electrosurgical cutting corresponding with said predetermined dimension.
- 28. The system of claim 21 in which:
said support member includes a fluid delivery channel extending from a fluid input in the vicinity of said base region to a fluid output at said forward end region; and including a reservoir for retaining a supply of barrier fluid coupled with said fluid input for effecting the expression of said fluid through said fluid delivery channel.
- 29. The system of claim 21 in which said support member is an intravascular catheter.
- 30. A system for causing the necrosis of a volume of targeted tissue exhibiting a given peripheral extent, comprising:
an electrosurgical generator assembly, having an electrosurgical return, responsive to a first control input to generate a first output for carrying out electrosurgical cutting; a support member extending between a base region and a tip, having a forward end region extending along a longitudinal axis from said tip and positionable in an insertion mode into adjacency with said tissue volume peripheral extent, and said forward end region having a deployment portion adjacent said tip; said support member forward end region being cylindrical and said deployment portion is an outwardly open slot extending along said longitudinal axis between a forward location and a rearward location, having a slot width and extending inwardly along oppositely disposed electrically insulative slot side surfaces to an electrically insulative slot bottom surface, said support member including a barrier fluid delivery channel having a fluid input in the vicinity of said base region and an electrically insulative fluid outlet having a predetermined channel width and a channel slot and extending within said open slot in adjacency with said rearward location; said support member including a second barrier fluid delivery channel having a second fluid input in the vicinity of said base region and extending within said open slot beneath said electrode to a second fluid outlet; an electrode having a deployable portion extending within said forward end region deployment portion during said insertion mode, deployable to move outwardly from two spaced apart locations at said deployment portion to an outer circumscription location adjacent said tissue peripheral extent and retractable to move toward said deployment portion; said electrode being thin, elongate and resilient, having a distal end connected with said support member at a connection location adjacent said forward location and extending above said fluid outlet an arch defining distance within said support member beyond said rearward location; an actuator assembly extending along said support member from said base region, coupled with said electrode and actuable for effecting the deployment and refraction thereof; said actuator assembly being configured to deploy said electrode by urging it forwardly in compression to effect outward movement thereof generally transversely to said longitudinal axis to an extent curving it into an outwardly depending arch formation and extending through said fluid outlet channel slot and between said rearward location and said forward location, and said actuator assembly effecting retraction of said electrode by urging it rearwardly to effect inward movement thereof toward said deployment portion; and a control assembly in electrical communication with said electrosurgical generator and said electrode, actuable in correspondence with said electrode deployment and retraction to effect derivation of said first control input and the application of said first output to said electrode in electrical communication with said electrosurgical return.
- 31. A system for causing the necrosis of a volume of targeted tissue exhibiting a given peripheral extent, comprising:
an electrosurgical generator assembly, having an electrosurgical return, responsive to a first control input to generate a first output for carrying out electrosurgical cutting; a support member extending between a base region and a tip, having a forward end region extending along a longitudinal axis from said tip and positionable in an insertion mode into adjacency with said tissue volume peripheral extent, and said forward end region having a deployment portion adjacent said tip; said support member forward end region electrode deployment portion being outwardly open, extending along said forward end region between a forward location adjacent said tip and a rearward location; an electrode having a deployable portion extending within said forward end region deployment portion during said insertion mode, deployable to move outwardly from two spaced apart locations at said deployment portion to an outer circumscription location adjacent said tissue peripheral extent and retractable to move toward said deployment portion; said electrode being thin, elongate and resilient, having a distal end connected with said support member at a connection location adjacent said forward location and extending above said fluid outlet an arch defining distance within said support member beyond said rearward location; an actuator assembly extending along said support member from said base region, coupled with said electrode and actuable for effecting the deployment and refraction thereof; a control assembly in electrical communication with said electrosurgical generator and said electrode, actuable in correspondence with said electrode deployment and retraction to effect derivation of said first control input and the application of said first output to said electrode in electrical communication with said electrosurgical return; and including a thin flexible anatomically resorbable barrier shroud having an outer edge coupled with said electrode, extending within said deployment portion during said insertion mode and deployable with said electrode for positioning about said volume of targeted tissue, said shroud being formed of a material effective to retard neovascularization across the interface of an electrosurgical cut formed by said electrode.
- 32. A system for causing the necrosis of a volume of targeted tissue exhibiting a given peripheral extent, comprising:
an electrosurgical generator assembly, having an electrosurgical return, responsive to a first control input to generate a first output for carrying out electrosurgical cutting; a support member extending between a base region and a tip, having a forward end region extending along a longitudinal axis from said tip and positionable in an insertion mode into adjacency with said tissue volume peripheral extent, and said forward end region having a deployment portion adjacent said tip; said support member forward end region electrode deployment portion being outwardly open, extending along said forward end region between a forward location adjacent said tip and a rearward location; an electrode having a deployable portion extending within said forward end region deployment portion during said insertion mode, deployable to move outwardly from two spaced apart locations at said deployment portion to an outer circumscription location adjacent said tissue peripheral extent and retractable to move toward said deployment portion; said electrode being thin, elongate and resilient, having a distal end connected with said support member at a connection location adjacent said forward location and extending above said fluid outlet an arch defining distance within said support member beyond said rearward location; said electrode being configured having an interior fluid transfer cavity and slidably extends along said support member to driven connection with said actuator assembly at an electrode fluid input, said electrode having at least one fluid outlet at said forward end region in fluid transfer relationship with said fluid transfer cavity; an actuator assembly extending along said support member from said base region, coupled with said electrode and actuable for effecting the deployment and refraction thereof; said actuator assembly being configured to deploy said electrode by urging it forwardly in compression to effect outward movement thereof generally transversely to said longitudinal axis to an extent curving it into an outwardly depending arch formation with an electrode apex representing a maximum displacement from said longitudinal axis and extending between said forward location and said rearward location, and said actuator assembly effecting retraction of said electrode by urging it rearwardly to effect inward movement thereof toward said deployment portion; a control assembly in electrical communication with said electrosurgical generator and said electrode, actuable in correspondence with said electrode deployment and retraction to effect derivation of said first control input and the application of said first output to said electrode in electrical communication with said electrosurgical return; and including a barrier fluid delivery assembly having a flexible fluid input conduit extending in fluid transfer relationship from a remote external fluid input to fluid transfer connection with said electrode fluid input.
- 33. A system for causing the necrosis of a volume of targeted tissue exhibiting a given peripheral extent, comprising:
an electrosurgical generator assembly, having an electrosurgical return, responsive to a first control input to generate a first output for carrying out electrosurgical cutting; a support member extending between a base region and a tip, having a forward end region extending along a longitudinal axis from said tip and positionable in an insertion mode into adjacency with said tissue volume peripheral extent, and said forward end region having a deployment portion adjacent said tip; said support member forward end region electrode deployment portion being outwardly open, extending along said forward end region between a forward location adjacent said tip and a rearward location; said support member including a fluid delivery channel extending from said forward end region to said actuator assembly; an electrode having a deployable portion extending within said forward end region deployment portion during said insertion mode, deployable to move outwardly from two spaced apart locations at said deployment portion to an outer circumscription location adjacent said tissue peripheral extent and retractable to move toward said deployment portion; said electrode being thin, elongate and resilient, having a distal end connected with said support member at a connection location adjacent said forward location and extending above said fluid outlet an arch defining distance within said support member beyond said rearward location; an actuator assembly extending along said support member from said base region, coupled with said electrode and actuable for effecting the deployment and refraction thereof; said actuator assembly being configured to deploy said electrode by urging it forwardly in compression to effect outward movement thereof generally transversely to said longitudinal axis to an extent curving it into an outwardly depending arch formation with an electrode apex representing a maximum displacement from said longitudinal axis and extending between said forward location and said rearward location, and said actuator assembly effecting retraction of said electrode by urging it rearwardly to effect inward movement thereof toward said deployment portion; a control assembly in electrical communication with said electrosurgical generator and said electrode, actuable in correspondence with said electrode deployment and retraction to effect derivation of said first control input and the application of said first output to said electrode in electrical communication with said electrosurgical return; including a barrier fluid delivery conduit slidably mounted within said fluid delivery channel, having a flexible output portion fixed to the underside of said electrode at said deployable portion, extending, in turn, to a barrier fluid outlet, said barrier fluid delivery conduit extending to a conduit fluid input and a driven connection with said actuator assembly, and including a barrier fluid delivery assembly having a flexible fluid input conduit extending in fluid transfer relationship from a remote external fluid input to fluid transfer connection with said electrode fluid input.
- 34. A system for causing the necrosis of a volume of targeted tissue exhibiting a given peripheral extent, comprising:
an electrosurgical generator assembly, having an electrosurgical return, responsive to a first control input to generate a first output for carrying out electrosurgical cutting; a support member extending between a base region and a tip, having a forward end region extending along a longitudinal axis from said tip and positionable in an insertion mode into adjacency with said tissue volume peripheral extent, and said forward end region having a deployment portion adjacent said tip; said support member forward end region electrode deployment portion being outwardly open, extending along said forward end region between a forward location adjacent said tip and a rearward location; said support member including a barrier fluid delivery conduit extending from said forward end region toward said base region to an externally disposed barrier fluid input for receiving barrier fluid, and having a flexible tubular output portion with a fluid outlet for expressing barrier fluid, coupled with said electrode at said deployable portion and deployable therewith; an electrode having a deployable portion extending within said forward end region deployment portion during said insertion mode, deployable to move outwardly from two spaced apart locations at said deployment portion to an outer circumscription location adjacent said tissue peripheral extent and retractable to move toward said deployment portion; said electrode being thin and resilient, having a distal end connected with said support member at a connection location adjacent said forward location and extending an arch defining distance beyond said rearward location; an actuator assembly extending along said support member from said base region, coupled with said electrode and actuable for effecting the deployment and retraction thereof; said actuator assembly being configured to deploy said electrode by urging it forwardly in compression to effect outward movement thereof generally transversely to said longitudinal axis to an extent curving it into an outwardly depending arch formation with an electrode apex representing a maximum displacement from said longitudinal axis and extending between said forward location and said rearward location, and said actuator assembly effecting retraction—of said electrode by urging it rearwardly to effect inward movement thereof toward said deployment portion; a control assembly in electrical communication with said electrosurgical generator and said electrode, actuable in correspondence with said electrode deployment and retraction to effect derivation of said first control input and the application of said first output to said electrode in electrical communication with said electrosurgical return; and a reservoir for retaining a supply of barrier fluid, coupled with said barrier fluid input.
- 35. Apparatus for electrosurgically cutting a targeted region of tissue, utilizing the output, including a return, of an electrosurgical generator, comprising:
a support member extending between a tip and a base region, having a forward end region extending along a longitudinal axis from said tip and positionable in an insertion mode into adjacency with said targeted region of tissue, and having a deployment portion at said forward end region adjacent said tip; said support member forward end region being substantially cylindrical and said deployment portion including an outwardly open slot extending along said longitudinal axis from a securement region adjacent said tip to a forward location, thence along a deployment slot region to a rearward location, having a slot width defined between oppositely disposed slot sides extending a slot depth to a slot bottom, including an electrically insulative surface located at said slot sides and bottom, said support member forward end region slot depth exhibiting a first dimensional extent from said securement region to an output location, and exhibiting a second dimensional extent greater than said first dimensional extent therefrom rearwardly toward said base region, said support member including a barrier fluid delivery channel having a fluid input in the vicinity of said base region and extending within said slot beneath said electrode to said output location, a thin, resilient electrode extending within said deployment portion during said insertion mode and deployable to move outwardly from two spaced apart support locations to define an electrode cutting portion and retractable to move toward said deployment portion; said electrode having a distal end positioned within said slot securement region and extending an arch defining distance beyond said rearward location; an actuator and electrical circuit assembly extending along said support member from said base region, mechanically connected with said electrode for effecting said deployment and retraction thereof, and having a terminal assembly electrically connectable with said generator for coupling a first said applied output to said electrode providing, in operative association with said return, electrosurgical cutting of said tissue by said electrode along said cutting portion when deployed; including a forward retainer component positioned over said electrode within said slot securement region and retaining it within said slot, and a rearward retainer component positioned within said slot over said electrode, said electrode being slidably mounted there beneath; and said actuator assembly being configured to deploy said electrode by urging it forwardly in compression to effect outward movement thereof generally transversely to said longitudinal axis to an extent curving it into an outwardly depending arch formation, and effecting retraction of said electrode by urging it rearwardly to effect inward movement thereof toward said slot.
- 36. Apparatus for electrosurgically cutting a targeted region of tissue, utilizing the output, including a return, of an electrosurgical generator, comprising:
a support member extending between a tip and a base region, having a forward end region extending along a longitudinal axis from said tip and positionable in an insertion mode into adjacency with said targeted region of tissue, and having a deployment portion at said forward end region adjacent said tip; said support member forward end region being substantially cylindrical and said deployment portion including an outwardly open slot extending along said longitudinal axis from a securement region adjacent said tip to a forward location, having oppositely disposed slot sides extending a slot depth to a slot bottom, and said forward end region having an electrically insulative, generally channel-shaped retention insert fixed within said slot, having an outwardly opening electrode receiving channel with oppositely disposed internal side surfaces extending a channel depth to a channel bottom, having a securement region extending at a first channel depth from said slot securement end to a forward location, thence extending along a channel deployment region having a second depth, thence having a rearward location with a channel depth corresponding with said first channel depth; said support member including a barrier fluid delivery channel having a fluid input in the vicinity of said base region and extending within said slot above said electrode to a fluid outlet extending from said rearward location within said retention insert channel deployment region, said fluid outlet having a channel width and a channel slot defining oppositely disposed channel outlet regions; a thin, resilient electrode extending within said deployment portion during said insertion mode and deployable to move outwardly from two spaced apart support locations to define an electrode cutting portion and retractable to move toward said deployment portion; said electrode having a distal end fixed with said retention insert securement region at said channel bottom and extending therefrom along said channel deployment region and beyond said rearward location an arch defining distance; an actuator and electrical circuit assembly extending along said support member from said base region, mechanically connected with said electrode for effecting said deployment and retraction thereof, and having a terminal assembly electrically connectable with said generator for coupling a first said applied output to said electrode providing, in operative association with said return, electrosurgical cutting of said tissue by said electrode along said cutting portion when deployed; said actuator assembly being configured to deploy said electrode by urging it forwardly in compression to effect outward movement thereof generally transversely to said longitudinal axis to an extent curving it into an outwardly depending arch formation, and effecting retraction of said electrode by urging it rearwardly to effect inward movement thereof toward said slot; and said actuator assembly being configured to effect movement of said electrode adjacent said rearward location into said channel slot during said outward movement.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation of U.S. patent application Ser. No. 09/418,923, filed Oct. 15, 1999
Continuations (1)
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Number |
Date |
Country |
Parent |
09418923 |
Oct 1999 |
US |
Child |
10238376 |
Sep 2002 |
US |