IP Library Granted Patent US 9,265,553
Granted Patent B2
US 9,265,553 · App. 13/764,636 · Granted Feb 23, 2016

Inductively heated multi-mode surgical tool

Inventors: Kim Manwaring (Phoenix, AZ); David McNally (Salt Lake City, UT)
Assignee: Domain Surgical, Inc.
A61B18/08A61B18/082A61B18/10A61B18/085A61B2018/00107A61B2018/00642A61B2018/00702A61B2018/00791A61M25/00Y10T29/49124
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Quick Facts
Patent No.
US 9,265,553
App. No.
13/764,636
Granted
Feb 23, 2016
Kind
B2
Abstract

Thermal, Electrosurgical and Mechanical modalities may be combined in a surgical tool. Potentially damaging effects in a first modality may be minimized by using a secondary modality. In one example, thermal hemostasis may thus help electrosurgical applications avoid the adverse tissue effects associated with hemostatic monopolar electrosurgical waveforms while retaining the benefits of using incising waveforms.

Claims (35)

1. A multi-mode surgical tool comprising an electro surgical electrode and a thermal element, the thermal element comprising a ferromagnetic coating disposed on and in electrically conductive communication with the electrosurgical electrode; and wherein the ferromagnetic coating has a thickness of between about 1 μm and about 50 μm.

2. The multi-mode surgical tool of claim 1 , wherein the electrosurgical electrode is a monopolar electrode.

3. The multi-mode surgical tool of claim 1 , further comprising a filter disposed in communication with the electrosurgical electrode for limiting a return of at least one supplied oscillating electrical signal along the electrosurgical electrode.

4. A multi-mode surgical tool comprising:

a tip comprising an electrical conductor;

a ferromagnetic coating covering and in electrically conductive communication with at least a portion of the electrical conductor, the ferromagnetic coating being selected from ferromagnetic coatings which can convert some frequencies of oscillating electrical energy into thermal energy and pass other frequencies of oscillating electrical energy into tissue, and

wherein the ferromagnetic coating has a thickness of between about 1 μm and about 50 μm.

5. The multi-mode surgical tool of claim 4 , further comprising means for sending a multiplexed signal into the electrical conductor.

6. The multi-mode surgical tool of claim 4 , wherein the electrical conductor forms an electrosurgical electrode.

7. The multi-mode surgical tool of claim 6 , wherein the electrosurgical electrode is a monopolar electrode.

8. The multi-mode surgical tool of claim 4 , wherein the ferromagnetic coating is configured to simultaneously convert the some frequencies of the oscillating electrical energy into the thermal energy and pass the other frequencies of the oscillating electrical energy into the tissue.

9. The multi-mode surgical tool of claim 4 , further comprising a filter disposed in communication with the electrical conductor for limiting a return of at least one oscillating electrical signal of the some frequencies of oscillating electrical energy or other frequencies of oscillating electrical energy along the electrical conductor so as to cause radiation of said at least one oscillating electrical signal out of the electrical conductor.

10. A thermally adjustable multi-mode surgical tip comprising:

a cable;

an electrical conductor having a proximal and distal end, wherein the proximal end is configured to receive radiofrequency energy from the cable;

a thin plating of ferromagnetic material disposed circumferentially about the electrical conductor and in electrically conductive communication with at least a portion of the electrical conductor, wherein the thin plating of ferromagnetic material is configured with a Curie point sufficiently high to encompass a desired set of therapeutic temperature ranges and wherein the thin plating of ferromagnetic material has a thickness of between about 1 μm and about 50 μm; and

the electrical conductor forming an electrosurgical element configured to receive power from the cable and configured to release the radiofrequency energy into nearby tissue.

11. The thermally adjustable multi-mode surgical tip of claim 10 , further comprising a filter disposed in communication with the electrical conductor for limiting a return of at least some of the radiofrequency energy along the electrical conductor so as to cause radiation of said at least some radiofrequency energy out of the electrical conductor.

12. A thermally adjustable multi-mode surgical tool comprising:

an electrical conductor;

a plating of ferromagnetic material disposed circumferentially about the electrical conductor and in electrically conductive communication with the electrical conductor, wherein the plating of ferromagnetic material has a thickness of between about 1 μm and about 50 μm; and

a power supply configured to provide a first oscillating electrical signal forming an approximate standing wave with a maximum current and a minimum voltage substantially at a first load creating a thermal effect in tissue, and a second oscillating electrical signal with a maximum current and a minimum voltage substantially at a second load to create electrosurgical effects in the tissue.

13. The thermally adjustable multi-mode surgical tool of claim 12 , further comprising a filter disposed in communication with the electrical conductor for limiting a return of at least one oscillating electrical signal of the first oscillating electrical signal or second oscillating electrical signal along the electrical conductor so as to cause radiation of said at least one oscillating electrical signal out of the electrical conductor.

14. The thermally adjustable multi-mode surgical tool of claim 12 wherein the electrical conductor is configured to release radiofrequency energy in response to the second oscillating electrical signal and wherein the plating of ferromagnetic material is configured to heat in response to the first oscillating electrical signal.

15. The thermally adjustable multi-mode surgical tool of claim 12 wherein the power supply is configured to generate the first oscillating electrical signal and the second oscillating electrical signal during overlapping periods of time.

16. A thermally adjustable multi-mode surgical tool comprising:

a gripping portion configured to fit a human hand;

an electrical conductor attached to the gripping portion, wherein the electrical conductor comprises a monopolar electrode configured to receive an oscillating electrical signal and to release electrical energy into tissue adjacent the monopolar electrode; and

a thin plating of ferromagnetic material disposed on and in electrically conductive communication with a portion of the electrical conductor, the thin plating of ferromagnetic material configured to heat when the oscillating electrical signal passes through the electrical conductor, and wherein the thin plating of ferromagnetic material has a thickness of between about 0.5 μm and about 500 μm.

17. The surgical tool of claim 16 , wherein the thin plating of ferromagnetic material has a thickness of between about 1 μm and about 50 μm.

18. A multi-mode surgical tool system comprising:

a thermally adjustable multi-mode surgical tip, the surgical tip having a thin plating of ferromagnetic material disposed circumferentially about an electrical conductor, the thin plating of ferromagnetic material being in electrically conductive communication with at least a portion of the electrical conductor, wherein the thin plating of ferromagnetic material has a thickness of between about 1 μm and about 50 μm and wherein the thin plating of ferromagnetic material is configured to create a thermal effect in tissue when the thin plating of ferromagnetic material receives a first oscillating electrical signal;

a power source;

a heat sink; and

a wirelessly connected control device.

Assignments (4)
INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Jul 31, 2018
From: DOMAIN SURGICAL, INC.
To: SOLAR CAPITAL LTD., AS AGENT
Reel/Frame 046662/0635 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 12, 2013
From: NEXSPROUT, LLC
To: DOMAIN SURGICAL, INC.
Reel/Frame 030204/0895 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 12, 2013
From: MANWARING, KIM; MCNALLY, DAVID
To: NEXSPROUT, LLC
Reel/Frame 030205/0111 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 12, 2013
From: NEXSPROUT, LLC
To: DOMAIN SURGICAL, INC.
Reel/Frame 030205/0226 →
Continuity (5)
Continuation 12647329 · Dec 24, 2009
Provisional Application 61170203 · Apr 17, 2009
Provisional Application 61170220 · Apr 17, 2009
Provisional Application 61170207 · Apr 17, 2009
Related Publication 20130296838A1 · Nov 7, 2013