IP Library Granted Patent US 10,022,186
Granted Patent B2
US 10,022,186 · App. 15/642,071 · Granted Jul 17, 2018

Microwave antenna with cooled handle

Inventors: Richard A. Willyard (Loveland, CO); Joseph D. Brannan (Lyons, CO)
Assignee: Covidien LP
A61B18/1815A61B18/18H01Q1/02H01Q9/16A61B2018/00011A61B2018/00017A61B2018/00023A61B2018/00577A61B2018/1838A61B2018/1861A61B2018/1869A61B2018/1892Y10T29/49016
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Quick Facts
Patent No.
US 10,022,186
App. No.
15/642,071
Granted
Jul 17, 2018
Kind
B2
Abstract

According to one aspect of the present disclosure, a microwave antenna assembly is disclosed. The antenna assembly includes a feedline having an inner conductor, an outer conductor and an inner insulator disposed therebetween and a radiating portion including a dipole antenna having a proximal portion and a distal portion. The antenna assembly also comprises a sheath disposed over the feedline and the radiating portion defining a chamber around the feedline and the radiating portion. The chamber is adapted to circulate coolant fluid therethrough. The antenna assembly further includes a connection hub having cable connector coupled to the feedline, an inlet fluid port and an outlet fluid port. The connection hub includes a bypass tube configured to provide for flow of the coolant fluid from the cable connector directly to the outlet fluid port.

Claims (35)

1. An electrosurgical energy delivery device comprising:

a hub including a proximal portion and a distal portion;

a sheath extending distally from the hub, the sheath defining a chamber;

a feedline configured to deliver electrosurgical energy, the feedline including an inner conductor, an outer conductor, and an inner insulator disposed between at least a portion of the inner conductor and the outer conductor, wherein at least a portion of the feedline is disposed within the chamber defined by the sheath; and

a fluid flow tube disposed within the chamber defined by the sheath, the fluid flow tube configured to deliver a fluid to the chamber defined by the sheath to cool the portion of the feedline disposed within the chamber defined by the sheath and to return the fluid to the hub.

2. The electrosurgical energy delivery device according to claim 1 , wherein the fluid is a gas, a liquid, or a combination of a gas and a liquid.

3. The electrosurgical energy delivery device according to claim 1 , further comprising:

a dielectric layer formed circumferentially about at least a portion of the outer conductor; and

a conductive layer formed circumferentially about at least a portion of the dielectric layer, at least a portion of the conductive layer electrically coupled to a portion of the outer conductor of the feedline, wherein the dielectric layer and the conductive layer limit propagation of electrosurgical energy in a proximal direction.

4. The electrosurgical energy delivery device according to claim 3 , wherein the conductive layer includes a proximal portion electrically coupled to the outer conductor of the feedline.

5. The electrosurgical energy delivery device according to claim 3 , wherein the dielectric layer and the conductive layer define a quarter wavelength choke.

6. The electrosurgical energy delivery device according to claim 3 , further comprising a second dielectric layer formed circumferentially about the dielectric layer between the dielectric layer and the conductive layer.

7. The electrosurgical energy delivery device according to claim 3 , wherein the feedline includes a radiating portion configured to deliver microwave energy to tissue and a distal portion of the conductive layer is disposed proximal a proximal portion of the radiating portion.

8. The electrosurgical energy delivery device according to claim 1 , wherein the fluid flow tube extends through the hub and into the chamber defined by the sheath.

9. The electrosurgical energy delivery device according to claim 1 , wherein the fluid flow tube is disposed adjacent at least a portion of the feedline within the chamber defined by the sheath.

10. The electrosurgical energy delivery device according to claim 1 , wherein the feedline includes a radiating portion configured to deliver microwave energy to tissue and wherein a distal portion of the fluid flow tube is disposed proximal to the radiating portion.

11. The electrosurgical energy delivery device according to claim 1 , wherein fluid flow from the fluid flow tube is directed in a direction of a tip disposed at a distal portion of the electrosurgical energy delivery device and reflected in a proximal direction.

12. The electrosurgical energy delivery device according to claim 1 , further comprising a second fluid flow tube configured to deliver fluid, a distal portion of the second flow tube disposed distal a distal portion of the fluid flow tube.

13. A system comprising:

an electrosurgical energy generator;

a fluid supply; and

an electrosurgical energy delivery device configured to couple to the electrosurgical energy generator and the fluid supply, the electrosurgical energy delivery device comprising:

a hub including a proximal portion and a distal portion;

a sheath extending distally from the hub, the sheath defining a chamber;

a feedline configured to deliver microwave energy generated by the microwave generator, the feedline including an inner conductor, an outer conductor, and an inner insulator disposed between at least a portion of the inner conductor and the outer conductor, wherein at least a portion of the feedline is disposed within the chamber defined by the sheath; and

a fluid flow tube disposed within the chamber defined by the sheath, the fluid flow tube configured to deliver a fluid from the fluid supply to the chamber defined by the sheath to cool the portion of the feedline disposed within the chamber defined by the sheath and to return the fluid to the hub.

14. The system according to claim 13 , wherein the fluid is a gas, a liquid or a combination of a gas and a liquid.

15. The system according to claim 13 , wherein the electrosurgical energy delivery device includes:

a dielectric layer formed circumferentially about at least a portion of the outer conductor; and

a conductive layer formed circumferentially about at least a portion of the dielectric layer, at least a portion of the conductive layer electrically coupled to a portion of the outer conductor of the feedline, wherein the dielectric layer and the conductive layer limit propagation of electrosurgical energy in a proximal direction.

16. The system according to claim 15 , wherein the conductive layer includes a proximal portion electrically coupled to the outer conductor of the feedline.

17. The system according to claim 15 , wherein the dielectric layer and the conductive layer define a quarter wavelength choke.

18. The system according to claim 15 , wherein the electrosurgical energy delivery device includes a second dielectric layer formed circumferentially about the dielectric layer between the dielectric layer and the conductive layer.

19. The system according to claim 13 , wherein the feedline includes a radiating portion configured to deliver microwave energy to tissue and a distal portion of the conductive layer is disposed proximal a proximal portion of the radiating portion.

20. The system according to claim 13 , wherein the electrosurgical energy delivery device includes a second fluid flow tube configured to deliver fluid, a distal portion of the second flow tube disposed distal a distal portion of the fluid flow tube.

Assignments (5)
MERGER Recorded Aug 3, 2017
From: VIVANT MEDICAL LLC
To: COVIDIEN LP
Reel/Frame 043190/0943 →
CHANGE OF NAME Recorded Aug 3, 2017
From: VIVANT MEDICAL, INC.
To: VIVANT MEDICAL LLC
Reel/Frame 043442/0850 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 3, 2017
From: VIVANT MEDICAL LLC
To: COVIDIEN LP
Reel/Frame 043442/0858 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 5, 2017
From: WILLYARD, RICHARD A.
To: VIVANT MEDICAL, INC.
Reel/Frame 042911/0226 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 5, 2017
From: BRANNAN, JOSEPH D.
To: COVIDIEN LP
Reel/Frame 042911/0267 →
Continuity (8)
Continuation 15194810 · Jun 28, 2016
Continuation 14925025 · Oct 28, 2015
Continuation 14659860 · Mar 17, 2015
Continuation 14338509 · Jul 23, 2014
Continuation 14014937 · Aug 30, 2013
Continuation 13596785 · Aug 28, 2012
Continuation 12199935 · Aug 28, 2008
Related Publication 20170312030A1 · Nov 2, 2017