IP Library Granted Patent US 11,896,280
Granted Patent B2
US 11,896,280 · App. 17/131,105 · Granted Feb 13, 2024

Clamp arm comprising a circuit

Inventors: Frederick E. Shelton, IV (Hillsboro, OH); David C. Yates (Morrow, OH); Kevin L. Houser (Springboro, OH); Jeffrey D. Messerly (Cincinnati, OH); Jason L. Harris (Lebanon, OH); Geoffrey S. Strobl (Williamsburg, OH)
Assignee: Cilag GmbH International
A61B18/00A61B18/1445A61B2017/003A61B2017/00039A61B2017/00123A61B2017/00314A61B2017/00398A61B2017/00464A61B2017/00734A61B2017/2927A61B2017/2929A61B2017/320078A61B2017/320094A61B2017/320095A61B2018/00297A61B2018/00607A61B2018/00648A61B2018/00666A61B2018/00684A61B2018/00708A61B2018/00767A61B2018/00875A61B2018/00886A61B2018/00898A61B2018/00904A61B2018/00922A61B2018/00946A61B2018/00958A61B2018/00994A61B2018/1226A61B2018/1273A61B2018/1455A61B2034/252A61B2034/731A61B2090/061A61B2560/0209A61B2560/0475A61B2562/0219
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 11,896,280
App. No.
17/131,105
Granted
Feb 13, 2024
Kind
B2
Abstract

An end effector is disclosed comprising an ultrasonic blade and a clamp arm pivotable relative to the ultrasonic blade to capture tissue therebetween. The clamp arm defines an arcuate surface configured to at least partially surround the ultrasonic blade. The clamp arm comprises a circuit positioned on the arcuate surface. The circuit comprises an electrode layer configured to transmit RF energy to the tissue positioned between the clamp arm and the ultrasonic blade, a compressible layer positioned between the electrode layer and the arcuate surface, first pressure sensor layer positioned beneath the compressible layer between the compressible layer and the arcuate surface, and a second pressure sensor layer positioned above the compressible layer. The compressible layer is compressible to allow the electrode layer to deflect away from the ultrasonic blade. The compressible layer is compressible to allow the second pressure sensor layer to deflect away from the ultrasonic blade.

Claims (49)

1. An end effector, comprising:

an ultrasonic blade; and

a clamp arm pivotable relative to the ultrasonic blade to capture tissue therebetween, wherein the clamp arm defines an arcuate surface configured to at least partially surround the ultrasonic blade, wherein the clamp arm comprises a circuit positioned on the arcuate surface, and wherein the circuit comprises:

an electrode layer configured to transmit RF energy to the tissue positioned between the clamp arm and the ultrasonic blade;

a compressible layer positioned between the electrode layer and the arcuate surface, wherein the compressible layer is compressible to allow the electrode layer to deflect away from the ultrasonic blade;

a first pressure sensor layer positioned beneath the compressible layer between the compressible layer and the arcuate surface; and

a second pressure sensor layer positioned above the compressible layer, wherein the compressible layer is compressible to allow the second pressure sensor layer to deflect away from the ultrasonic blade.

2. The end effector of claim 1 , wherein the circuit further comprises a sensor configured to measure a parameter of the tissue.

3. The end effector of claim 2 , wherein the circuit further comprises an insulative layer positioned between the electrode layer and the sensor.

4. The end effector of claim 2 , wherein the sensor comprises a force sensor configured to measure a force applied to the tissue by the clamp arm.

5. The end effector of claim 2 , wherein the sensor comprises an impedance sensor configured to measure an impedance of the tissue.

6. The end effector of claim 2 , wherein the sensor comprises a temperature sensor configured to measure a temperature of the tissue.

7. The end effector of claim 1 , wherein the ultrasonic blade extends along a longitudinal axis, and wherein the ultrasonic blade is rotatable about the longitudinal axis.

8. The end effector of claim 1 , wherein the circuit is a first circuit, wherein the first circuit is positioned on a first lateral side of the arcuate surface, and wherein the end effector further comprises a second circuit positioned on a second lateral side of the arcuate surface.

9. The end effector of claim 8 , wherein the second circuit comprises:

a second electrode layer configured to transmit RF energy to the tissue positioned between the clamp arm and the ultrasonic blade; and

a second compressible layer configured to permit the second electrode layer to deflect away from the ultrasonic blade.

10. The end effector of claim 9 , wherein the electrode layer of the first circuit and the second electrode layer of the second circuit are independently actuatable.

11. The end effector of claim 1 , wherein the electrode layer is operably coupled a first pole of an RF energy source, wherein the ultrasonic blade is operably coupled to a second pole of the RF energy source, and wherein the second pole is opposite of the first pole.

12. A surgical system, comprising:

an ultrasonic waveguide;

an ultrasonic blade extending from the ultrasonic waveguide; and

a clamp arm rotatable relative to the ultrasonic blade to capture tissue therebetween, wherein the clamp arm defines a curved surface configured to curve at least partially around a perimeter of the ultrasonic blade, wherein the clamp arm comprises a flex circuit positioned on the curved surface, and wherein the flex circuit comprises:

an electrode layer configured to transmit RF energy to the tissue positioned between the clamp arm and the ultrasonic blade;

a compressible layer positioned between the electrode layer and the curved surface, wherein the compressible layer is compressible to allow the electrode layer to move away from the ultrasonic blade;

a first pressure sensor layer positioned beneath the compressible layer between the compressible layer and the curved surface; and

a second pressure sensor layer positioned above the compressible layer, wherein the compressible layer is compressible to allow the second pressure sensor layer to move away from the ultrasonic blade.

13. The surgical system of claim 12 , wherein the flex circuit further comprises a sensor configured to measure a parameter of the tissue.

14. The surgical system of claim 13 , wherein the flex circuit further comprises an insulative layer positioned between the electrode layer and the sensor.

15. The surgical system of claim 12 , wherein the flex circuit is a first flex circuit, wherein the first flex circuit is positioned on a first lateral side of the curved surface, and wherein the clamp arm further comprises a second flex circuit positioned on a second lateral side of the curved surface.

16. The surgical system of claim 15 , wherein the second flex circuit comprises:

a second electrode layer configured to transmit RF energy from to the tissue positioned between the clamp arm and the ultrasonic blade; and

a second compressible layer positioned between the second electrode layer and the curved surface, wherein the compressible layer is compressible to allow the second electrode layer to move away from the ultrasonic blade.

17. The surgical system of claim 16 , wherein the electrode layer of the first flex circuit and the second electrode layer of the second flex circuit are independently actuatable.

18. The surgical system of claim 12 , wherein the electrode layer is operably coupled a first pole of an RF energy source, wherein the ultrasonic blade is operably coupled to a second pole of the RF energy source, and wherein the second pole is opposite of the first pole.

19. An end effector, comprising:

an ultrasonic blade operably coupled to a first pole of an RF energy source; and

a clamp arm movable relative to the ultrasonic blade to capture tissue therebetween, wherein the clamp arm defines a bowed surface configured to extend at least partially around a perimeter of the ultrasonic blade, and wherein the clamp arm comprises a flex circuit assembly, comprising:

a first flex circuit positioned on a first lateral side of the bowed surface, wherein the first flex circuit comprises:

a first electrode layer configured to transmit RF energy to the tissue positioned between the clamp arm and the ultrasonic blade, wherein the first electrode layer is operably coupled a second pole of the RF energy source, and wherein the second pole is opposite of the first pole;

a first compressible layer positioned between the first electrode layer and the bowed surface, wherein the first compressible layer is compressible to allow the first electrode layer to deflect away from the ultrasonic blade;

a first pressure sensor layer positioned beneath the first compressible layer between the first compressible layer and the bowed surface; and

a second pressure sensor layer positioned above the first compressible layer, wherein the first compressible layer is compressible to allow the second pressure sensor layer to deflect away from the ultrasonic blade;

a second flex circuit positioned on a second lateral side of the bowed surface, wherein the second flex circuit comprises:

a second electrode layer configured to transmit RF energy to the tissue positioned between the clamp arm and the ultrasonic blade, wherein the second electrode layer is operably coupled the second pole of the RF energy source;

a second compressible layer positioned between the second electrode layer and the bowed surface, wherein the second compressible layer is compressible to allow the second electrode layer to deflect away from the ultrasonic blade;

a third pressure sensor layer positioned beneath the second compressible layer between the second compressible layer and the bowed surface; and

a fourth pressure sensor layer positioned above the second compressible layer, wherein the second compressible layer is compressible to allow the fourth pressure sensor layer to deflect away from the ultrasonic blade.

20. The end effector of claim 19 , wherein the first electrode layer and the second electrode layer are independently actuatable.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 27, 2021
From: ETHICON LLC
To: CILAG GMBH INTERNATIONAL
Reel/Frame 056601/0339 →
CORRECTIVE ASSIGNMENT TO CORRECT THE DOCKET NUMBER FROM END7911USCNT5/160006-CN5 TO END7911USCNT5/160006-1CN5 PREVIOUSLY RECORDED AT REEL: 055872 FRAME: 0760. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Apr 15, 2021
From: SHELTON, FREDERICK E., IV; YATES, DAVID C.; HOUSER, KEVIN L.; MESSERLY, JEFFREY D.; HARRIS, JASON L.; STROBL, GEOFFREY S.
To: ETHICON ENDO-SURGERY, LLC
Reel/Frame 055949/0053 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 9, 2021
From: SHELTON, FREDERICK E., IV; YATES, DAVID C.; HOUSER, KEVIN L.; MESSERLY, JEFFREY D.; HARRIS, JASON L.; STROBL, GEOFFREY S.
To: ETHICON ENDO-SURGERY, LLC
Reel/Frame 055872/0760 →
CHANGE OF NAME Recorded Apr 9, 2021
From: ETHICON ENDO-SURGERY, LLC
To: ETHICON LLC
Reel/Frame 055872/0835 →
Continuity (4)
Continuation 15382238 · Dec 16, 2016
Provisional Application 62330669 · May 2, 2016
Provisional Application 62279635 · Jan 15, 2016
Related Publication 20210177481A1 · Jun 17, 2021