IP Library Granted Patent US 8,758,341
Granted Patent B2
US 8,758,341 · App. 12/465,927 · Granted Jun 24, 2014

Thermotherapy device

View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,758,341
App. No.
12/465,927
Granted
Jun 24, 2014
Kind
B2
Abstract

This invention relates to the working end of a medical instrument that applies energy to tissue. In one embodiment, the instrument has a microfluidic tissue-engaging surface fabricated by soft lithography means together with optional superlattice cooling means that allows for very precise control of energy application, for example in neurosurgery applications. The tissue-engaging surface can eject a high-heat content vapor into the engaged tissue for treating tissue, while the superlattice cooling structure can prevent collateral thermal damage. Also, the superlattice cooling structure can be used to localize heat at a selected depth in tissue and prevent surface ablation. Also, the superlattice cooling structure can be used to prevent tissue sticking to a thermal energy delivery surface. In another embodiment, the tissue-engaging surface can be used in a jaw structure for sealing tissue together with hydrojet means for transecting the tissue.

Claims (25)

1. A system for applying energy to tissue comprising a polymeric monolith with fluidic channels therein, the monolith having a tissue-engaging surface for engaging tissue, and a fluid media source that introduces fluid media into the fluidic channels for applying energy to engaged tissue the system further comprising an energy source within the fluidic channels wherein the energy source is configured to modulate between a first initial energy amount to surpass a heat of vaporization of the media and a subsequent energy amount to maintain the media in a vapor phase where application of the first initial energy amount to the fluid media provides a vapor media having an increased volume within the fluidic channels to sufficiently cause ejection of the vapor media from the fluid channels at a high velocity.

2. A system for applying energy to tissue as in claim 1 wherein the fluidic channels have mean cross-section of less than 1 mm.

3. A system for applying energy to tissue as in claim 2 wherein the elastomeric composition of the tissue-engaging surface has a substantially thin dimension overlying the fluidic channels to allow capacitive coupling therethrough.

4. A system for applying energy to tissue as in claim 3 wherein the elastomeric composition of the tissue-engaging surface overlying the fluidic channels is fluid permeable.

5. A system for applying energy to tissue as in claim 1 wherein the fluidic channels have mean cross-section of less than 0.5 min.

6. A system for applying energy to tissue as in claim 1 wherein the polymeric monolith is of an elastomeric composition.

7. A system for applying energy to tissue as in claim 1 wherein the fluid media is a vapor phase media capable of releasing the heat of vaporization to apply energy to tissue.

8. A system for applying energy to tissue as in claim 7 wherein the fluidic channels have an increase in cross-section proximate the tissue-engaging surface for allowing a vapor to liquid phase transition of the media.

9. A system for applying energy to tissue as in claim 7 wherein the fluidic channels include ports in the tissue-engaging surface for allowing outflow of vapor from the fluidic channels to interact with tissue.

10. A system for applying energy to tissue as in claim 1 further comprising thin film nanolattice cooling means coupled to the monolith.

11. A system for applying energy to tissue as in claim 1 wherein the fluid media comprises a conductive liquid in communication with an electrical energy source.

12. A system for applying energy to tissue as in claim 1 wherein the fluidic channels define first and second spaced apart paths each carrying a conductive liquid in communication with opposing poles of an electrical energy source.

13. A system for applying energy to tissue as in claim 12 wherein said opposing poles of the electrical energy source comprise first and second electrode elements carried in said first and second spaced apart paths proximate the tissue-engaging surface.

14. A system for applying energy to tissue comprising:

a polymeric monolith with fluidic channels therein, the monolith having a tissue engaging surface for engaging tissue,

a fluid media source that introduces fluid media into the fluidic channels for applying energy to engaged tissue,

the system further comprising a power supply configured deliver energy modulated between a first initial energy amount to surpass a heat of vaporization of the media and a subsequent energy amount to maintain the media in a vapor phase where application of the first initial energy amount to the fluid media provides a vapor media having an increased volume within the fluidic channels to sufficiently cause ejection of the vapor media from the fluid channels at a high velocity.

15. A system for applying energy to tissue as in claim 14 wherein the fluidic channels have mean cross-section of less than 1 mm.

16. A system for applying energy to tissue as in claim 14 wherein the fluidic channels have mean cross-section of less than 0.5 mm.

17. A system for applying energy to tissue as in claim 14 wherein the polymeric monolith is of an elastomeric composition.

18. A system for applying energy to tissue as in claim 17 wherein the elastomeric composition is fluid permeable.

19. A system for applying energy to tissue as in claim 14 wherein the fluid media is a vapor phase media capable of releasing the heat of vaporization to apply energy to tissue.

20. A system for applying energy to tissue as in claim 19 wherein the fluidic channels have an increase in cross-section proximate the tissue-engaging surface for allowing a vapor to liquid phase transition of the media.

21. A system for applying energy to tissue as in claim 19 wherein the fluidic channels include ports in the tissue-engaging surface for allowing outflow of vapor from the fluidic channels to interact with tissue.

22. A system for applying energy to tissue as in claim 14 wherein the fluid media comprises a conductive liquid in communication with an electrical energy source.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Mar 1, 2018
From: OXFORD FINANCE LLC, AS COLLATERAL AGENT
To: AEGEA MEDICAL INC.
Reel/Frame 045482/0001 →
SECURITY INTEREST Recorded Oct 13, 2017
From: AEGEA MEDICAL INC.
To: OXFORD FINANCE LLC, AS COLLATERAL AGENT AND AS A LENDER
Reel/Frame 044261/0696 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 27, 2009
From: SHADDUCK, JOHN H.
To: TSUNAMI MEDTECH, LLC
Reel/Frame 023159/0247 →