IP Library Granted Patent US 10,905,901
Granted Patent B2
US 10,905,901 · App. 15/809,304 · Granted Feb 2, 2021

Ultrasound device for precise tissue sealing and blade-less cutting

Inventor: Nikolay Kharin (Loveland, CO)
Assignee: COVIDIEN LP
A61N7/00A61B18/1445A61B2017/320093A61B2017/320094A61B2017/320095A61N2007/0078
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Quick Facts
Patent No.
US 10,905,901
App. No.
15/809,304
Granted
Feb 2, 2021
Kind
B2
Abstract

An electrosurgical instrument for sealing and cutting tissue is provided. The instrument includes a housing having a plurality of transducers included therein and a waveguide coupled to and extending from the housing. An end effector assembly disposed at a distal end of the waveguide includes a pair of opposing jaw members, where at least one of the jaw members includes a transducer. The transducer is configured to receive an acoustic signal from the plurality of transducers in the housing.

Claims (42)

1. An electrosurgical instrument, comprising:

a housing;

a plurality of transducers disposed within the housing;

a waveguide extending distally from the housing; and

an end effector assembly supported by a distal portion of the waveguide, the end effector assembly including a first jaw member having a probe configured to both receive an acoustic signal from the plurality of transducers and output an electrical signal in response to receiving the acoustic signal, wherein the probe is configured to transmit the electrical signal to a generator.

2. The electrosurgical instrument according to claim 1 , wherein the plurality of transducers is configured to receive a time-reversed single from the generator.

3. The electrosurgical instrument according to claim 2 , wherein the plurality of transducers is configured to transmit the time-reversed signal to the probe through the waveguide.

4. The electrosurgical instrument according to claim 1 , wherein the probe is a piezoceramic transducer.

5. The electrosurgical instrument according to claim 1 , wherein the probe is disposed beneath a sealing surface of the first jaw member.

6. The electrosurgical instrument according to claim 1 , wherein the probe is formed as an integral part of a sealing surface of the first jaw member.

7. The electrosurgical instrument according to claim 1 , wherein the probe is formed as a stop member disposed on a sealing surface of the first jaw member.

8. A method of providing energy to tissue using an electrosurgical instrument including a housing, a plurality of transducers disposed within the housing, a waveguide extending distally from the housing, and an end effector assembly supported by a distal portion of the waveguide, the end effector assembly including a first jaw member having a probe, the method comprising:

generating an acoustic signal with the plurality of transducers;

receiving the acoustic signal with the probe; and

converting the acoustic signal to an electrical signal with the probe.

9. The method according to claim 8 , further comprising transmitting the acoustic signal through the waveguide with the plurality of transducers.

10. The method according to claim 8 , further comprising:

transmitting the electrical signal to a generator with the probe;

processing the electrical signal in the generator to generate a time-reversed signal;

receiving at the plurality of transducers the time-reversed signal;

converting the time-reversed signal to a time-reversed acoustic signal with the plurality of transducers; and

transmitting the time-reversed acoustic signal to the probe.

11. An electrosurgical instrument, comprising:

a housing;

a plurality of transducers disposed within the housing;

a waveguide extending distally from the housing; and

an end effector assembly supported by a distal portion of the waveguide, the end effector assembly including a first jaw member having a probe configured to both receive an acoustic signal from the plurality of transducers and output an electrical signal in response to receiving the acoustic signal, wherein the probe is a piezoceramic transducer.

12. An electrosurgical instrument, comprising:

a housing;

a plurality of transducers disposed within the housing;

a waveguide extending distally from the housing; and

an end effector assembly supported by a distal portion of the waveguide, the end effector assembly including a first jaw member having a probe configured to both receive an acoustic signal from the plurality of transducers and output an electrical signal in response to receiving the acoustic signal, wherein the probe is disposed beneath a sealing surface of the first jaw member.

13. An electrosurgical instrument, comprising:

a housing;

a plurality of transducers disposed within the housing;

a waveguide extending distally from the housing; and

an end effector assembly supported by a distal portion of the waveguide, the end effector assembly including a first jaw member having a probe configured to both receive an acoustic signal from the plurality of transducers and output an electrical signal in response to receiving the acoustic signal, wherein the probe is formed as an integral part of a sealing surface of the first jaw member.

14. An electrosurgical instrument, comprising:

a housing;

a plurality of transducers disposed within the housing;

a waveguide extending distally from the housing; and

an end effector assembly supported by a distal portion of the waveguide, the end effector assembly including a first jaw member having a probe configured to both receive an acoustic signal from the plurality of transducers and output an electrical signal in response to receiving the acoustic signal, wherein the probe is formed as a stop member disposed on a sealing surface of the first jaw member.

Assignments (2)
CHANGE OF NAME Recorded Nov 10, 2017
From: TYCO HEALTHCARE GROUP LP
To: COVIDIEN LP
Reel/Frame 044747/0944 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 10, 2017
From: KHARIN, NIKOLAY
To: TYCO HEALTHCARE GROUP LP
Reel/Frame 044091/0163 →
Continuity (3)
Continuation 14604283 · Jan 23, 2015
Continuation 13111678 · May 19, 2011
Related Publication 20180064964A1 · Mar 8, 2018
Cited By (1)
US 12,605,180