Claims
- 1. An electrosurgical probe comprising:
a shaft having a proximal end and a distal end; at least one active electrode located at or near said distal end; and an element capable of imparting a vibratory or oscillatory motion on said at least one active electrode, said element being located at or near said proximal end.
- 2. The electrosurgical probe of claim 1, wherein said element capable of imparting a vibratory or oscillatory motion is an oscillator electromechanically coupled to said active electrode.
- 3. The electrosurgical probe of claim 1, wherein said element capable of imparting a vibratory or oscillatory motion is a piezoelectric element.
- 4. The electrosurgical probe of claim 1, wherein said element capable of imparting a vibratory or oscillatory motion is a gear mechanism.
- 5. The electrosurgical probe of claim 1, wherein said element capable of imparting a vibratory or oscillatory motion includes an eccentric weight affixed to said distal end of said shaft.
- 6. The electrosurgical probe of claim 1, wherein said element capable of imparting a vibratory or oscillatory motion is an electromagnetic mechanism.
- 7. The electrosurgical probe of claim 1, wherein said element capable of imparting a vibratory or oscillatory motion is a pneumatic mechanism.
- 8. The electrosurgical probe of claim 1, wherein said element capable of imparting a vibratory or oscillatory motion is a sound or an ultrasound mechanism.
- 9. An electrosurgical system for the electrosurgical treatment of tissue immersed in a conductive fluid comprising:
a power supply source; an electrosurgical probe comprising a shaft having a proximal end and a distal end, and an active electrode located at or near said distal end, said shaft being electromechanically coupled to said electrosurgical probe; means for applying high frequency voltage to said electrosurgical probe; and means for imparting a vibratory motion to said active electrode of said probe.
- 10. The electrosurgical system of claim 9, wherein said means for imparting a vibratory motion is an oscillator located external to a handle attached to said proximal end of said shaft electromechanically coupled to said electrosurgical probe.
- 11. The electrosurgical system of claim 9, wherein said means for imparting a vibratory motion is an oscillator located within a handle attached to said proximal end of said shaft electromechanically coupled to said electrosurgical probe.
- 12. The electrosurgical system of claim 9, wherein said means for imparting a vibratory motion is a piezoelectric element located external to a handle attached to said proximal end of said shaft electromechanically coupled to said electrosurgical probe.
- 13. The electrosurgical system of claim 9, wherein said means for imparting a vibratory motion is a piezoelectric element located within a handle attached to said proximal end of said shaft.
- 14. A method of conducting an electrosurgical procedure comprising the steps of:
providing an active electrode of an electrosurgical probe; positioning said active electrode in a first region located in the proximity of a tissue to be treated in the presence of an electrically conductive fluid; applying a high frequency voltage to said active electrode to generate an electric field and current adjacent said active electrode; effecting ablation of at least a portion of said tissue to be treated in said first region; and imparting a vibratory motion to said active electrode so as to rapidly and alternately reposition said active electrode between said first region and a second region located in the proximity of said tissue to be treated in the presence of said electrically conductive fluid.
- 15. The method of claim 14, wherein said step of imparting a vibratory motion to said active electrode includes connecting said active electrode electromechanically to an oscillator.
- 16. The method of claim 14, wherein said step of imparting a vibratory motion to said active electrode includes connecting said active electrode electromechanically to a piezoelectric element.
- 17. The method of claim 14, wherein said step of imparting a vibratory motion to said active electrode includes connecting said active electrode electromechanically to a gear mechanism.
- 18. A method of reducing the non-sparking time of an electrosurgical ablator for use in an electrosurgical procedure, said method comprising:
positioning an active electrode of said electrosurgical ablator in a first region of a tissue to be treated in the presence of an electrically conductive fluid; applying a high frequency voltage to said active electrode to generate an electric field and current adjacent said first region; imparting a vibratory motion to said active electrode so as to rapidly and alternately reposition said active electrode between said first region and a second region located in the proximity of said tissue to be treated in the presence of said electrically conductive fluid; and applying a high frequency voltage to said active electrode to generate an electric field and current adjacent said second region.
- 19. The method of claim 18, wherein said step of imparting a vibratory motion to said active electrode includes connecting said active electrode to an oscillator.
- 20. The method of claim 18, wherein said step of imparting a vibratory motion to said active electrode further includes connecting said active electrode to a piezoelectric element.
- 21. The method of claim 18, wherein said step of imparting a vibratory motion to said active electrode includes connecting said active electrode to a gear mechanism.
Parent Case Info
[0001] The present application claims the benefit under 35 U.S.C. 119(e) of U.S. Provisional Application Serial No. 60/295,541 filed on Jun. 4, 2001, the disclosure of which is incorporated by reference herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60295541 |
Jun 2001 |
US |