IP Library › Granted Patent US 11,638,606
Granted Patent B2
US 11,638,606 · App. 16/849,247 · Granted May 2, 2023

Bipolar electrosurgical pleura sealing device, system, and method of operating same

Inventors: Jordan P. Addison (Chandler, AZ); Koltin K. Glaspie (Chandler, AZ); Heather A. Storm (Phoenix, AZ); Ryan Striedel (Tempe, AZ)
Assignee: Bard Peripheral Vascular, Inc.
A61B18/1477A61B10/0275A61B18/1206A61B2018/0063A61B2018/00083A61B2018/00214A61B2018/00541A61B2018/126
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Quick Facts
Patent No.
US 11,638,606
App. No.
16/849,247
Granted
May 2, 2023
Kind
B2
Abstract

A bipolar electrosurgical pleura sealing device includes an electrosurgical probe assembly having a coaxial arrangement that includes an inner stylet, a first intermediate cannula, a second intermediate cannula, and an outer cannula, having appropriate insulation. A first mesh electrode connects to and extends between a distal end portion of the inner stylet and a distal end of the first intermediate cannula, and is movable between a first extended position and a first retracted position by an axial movement of the inner stylet and/or the first intermediate cannula. A second mesh electrode connects to and extends between a distal end of the second intermediate cannula and a distal end of the outer cannula, and is movable between a second extended position and a second retracted position by an axial movement of the second intermediate cannula and/or the outer cannula.

Claims (38)

1. A bipolar electrosurgical pleura sealing device, comprising:

an electrosurgical probe assembly having a coaxial arrangement that includes an inner stylet having a distal end portion with a piercing tip, a first intermediate cannula having a first distal end, a second intermediate cannula having a second distal end, and an outer cannula having a third distal end, wherein the inner stylet is electrically insulated from the first intermediate cannula, the first intermediate cannula is electrically insulated from the second intermediate cannula, and the second intermediate cannula is electrically insulated from the outer cannula;

a first mesh electrode that is connected to and extends between the distal end portion of the inner stylet and the first distal end of the first intermediate cannula, the first mesh electrode configured to have a first extended position that defines a first collapsed state and a first retracted position that defines a first expanded state, wherein the first mesh electrode is configured to move between the first extended position and the first retracted position by an axial movement of at least one of the inner stylet and the first intermediate cannula; and

a second mesh electrode that is connected to and extends between the second distal end of the second intermediate cannula and the third distal end of the outer cannula, the second mesh electrode configured to have a second extended position that defines a second collapsed state and a second retracted position that defines a second expanded state, wherein the second mesh electrode is configured to move between the second extended position and the second retracted position by an axial movement of at least one of the second intermediate cannula and the outer cannula,

wherein, when the first mesh electrode is in the first expanded state and the second mesh electrode is in the second expanded state, the first mesh electrode and the second mesh electrode define a tissue compression space therebetween that is adjustable to compress tissue between the first mesh electrode and the second mesh electrode.

2. The bipolar electrosurgical pleura sealing device of claim 1 , comprising a first electrical lead connected to the first mesh electrode, and a second electrical lead connected to the second mesh electrode.

3. The bipolar electrosurgical pleura sealing device of claim 1 , wherein each of the first intermediate cannula and the second intermediate cannula is made of an electrically non-conductive material.

4. The bipolar electrosurgical pleura sealing device of claim 1 , wherein the first intermediate cannula has a first insulation coating, and the second intermediate cannula has a second insulation coating.

5. The bipolar electrosurgical pleura sealing device of claim 4 , wherein each of the first insulation coating and the second insulation coating includes at least one of ceramic, rubber, and plastic.

6. A bipolar electrosurgical pleura sealing system, comprising:

a signal generator having a first electrical port and a second electrical port, the signal generator configured to generate an output signal;

an electrosurgical probe assembly having a coaxial arrangement that includes an inner stylet having a distal end portion with a piercing tip, a first intermediate cannula having a first distal end, a second intermediate cannula having a second distal end, and an outer cannula having a third distal end, wherein the inner stylet is electrically insulated from the first intermediate cannula, the first intermediate cannula is electrically insulated from the second intermediate cannula, and the second intermediate cannula is electrically insulated from the outer cannula;

a first mesh electrode coupled in electrical communication with the first electrical port of the signal generator, wherein the first mesh electrode is connected to and extends between the distal end portion of the inner stylet and the first distal end of the first intermediate cannula, the first mesh electrode configured to have a first extended position that defines a first collapsed state and a first retracted position that defines a first expanded state, wherein the first mesh electrode is configured to move between the first extended position and the first retracted position by an axial movement of at least one of the inner stylet and the first intermediate cannula; and

a second mesh electrode coupled in electrical communication with the second electrical port of the signal generator, wherein the second mesh electrode is connected to and extends between the second distal end of the second intermediate cannula and the third distal end of the outer cannula, the second mesh electrode configured to have a second extended position that defines a second collapsed state and a second retracted position that defines a second expanded state, wherein the second mesh electrode is configured to move between the second extended position and the second retracted position by an axial movement of at least one of the second intermediate cannula and the outer cannula,

wherein, when the first mesh electrode is in the first expanded state and the second mesh electrode is in the second expanded state, the first mesh electrode and the second mesh electrode define a tissue compression space therebetween that is adjustable to compress tissue between the first mesh electrode and the second mesh electrode.

7. The bipolar electrosurgical pleura sealing system of claim 6 , comprising:

a first electrical lead that is electrically coupled to each of the first mesh electrode and the first electrical port of the signal generator; and

a second electrical lead that is electrically coupled to each of the second mesh electrode and the second electrical port of the signal generator.

8. The bipolar electrosurgical pleura sealing system of claim 6 , wherein the signal generator is a radio frequency signal generator and the output signal is a radio frequency signal.

9. The bipolar electrosurgical pleura sealing system of claim 8 , wherein one of the first mesh electrode and the second mesh electrode is a primary electrode and the other of the first mesh electrode and the second mesh electrode is a return electrode, and wherein the radio frequency signal travels through the tissue captured between the first mesh electrode in the first expanded state and the second mesh electrode in the second expanded state to heat the tissue.

10. The bipolar electrosurgical pleura sealing system of claim 8 , wherein the radio frequency signal has a frequency in a range of 300 kHz and 600 kHz.

11. The bipolar electrosurgical pleura sealing system of claim 8 , wherein the radio frequency signal has a frequency of, or about, 492 kHz.

12. The bipolar electrosurgical pleura sealing system of claim 8 , wherein the radio frequency signal generator is configured to supply the radio frequency signal to the electrosurgical probe assembly when the first mesh electrode is in the first expanded state and the second mesh electrode is in the second expanded state.

13. The bipolar electrosurgical pleura sealing system of claim 6 , wherein each of the first intermediate cannula and the second intermediate cannula is made of an electrically non-conductive material.

14. The bipolar electrosurgical pleura sealing system of claim 6 , wherein the first intermediate cannula has a first insulation coating, and the second intermediate cannula has a second insulation coating.

15. The bipolar electrosurgical pleura sealing system of claim 14 , wherein each of the first insulation coating and the second insulation coating includes at least one of ceramic, rubber, and plastic.

16. A method of operating a bipolar electrosurgical pleura sealing system, comprising:

providing a bipolar electrosurgical pleura sealing device that has an electrosurgical probe assembly coupled to a first mesh electrode and a second mesh electrode, each of the first mesh electrode and the second mesh electrode being coupled in electrical communication with a signal generator, the first mesh electrode being movable between a first extended position that defines a first collapsed state and a first retracted position that defines a first expanded state, and the second mesh electrode being movable between a second extended position that defines a second collapsed state and a second retracted position that defines a second expanded state;

inserting the bipolar electrosurgical pleura sealing device along an access path in a subject;

operating the electrosurgical probe assembly to deploy the first mesh electrode to the first expanded state and to deploy the second mesh electrode to the second expanded state, the first mesh electrode and the second mesh electrode defining a space between that is adjusted by movement of the first mesh electrode and the second mesh electrode relative to one another to capture and hold tissue between the first mesh electrode and the second mesh electrode; and

activating the signal generator to generate an output signal that energizes the first mesh electrode and the second mesh electrode to heat the tissue between the first mesh electrode and the second mesh electrode.

17. The method of claim 16 , wherein the signal generator is a radio frequency signal generator and the output signal is a radio frequency signal, the method further comprising supplying the radio frequency signal between the first mesh electrode and the second mesh electrode through the tissue.

18. The method of claim 17 , wherein a frequency of the radio frequency signal is in a range of 300 kHz and 600 kHz.

19. The method of claim 17 , wherein a frequency of the radio frequency signal is of, or about, 492 kHz.

20. The method of claim 16 , wherein:

the electrosurgical probe assembly has a coaxial arrangement that includes an inner stylet having a distal end portion with a piercing tip, a first intermediate cannula having a first distal end, a second intermediate cannula having a second distal end, and an outer cannula having a third distal end, wherein the inner stylet is electrically insulated from the first intermediate cannula, the first intermediate cannula is electrically insulated from the second intermediate cannula, and the second intermediate cannula is electrically insulated from the outer cannula,

the first mesh electrode is connected to and extends between the distal end portion of the inner stylet and the first distal end of the first intermediate cannula, and

the second mesh electrode is connected to and extends between the second distal end of the second intermediate cannula and the third distal end of the outer cannula.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 15, 2020
From: ADDISON, JORDAN P.; GLASPIE, KOLTIN K.; STORM, HEATHER A.; STRIEDEL, RYAN
To: BARD PERIPHERAL VASCULAR, INC.
Reel/Frame 052404/0883 →
Continuity (1)
Related Publication 20210322091A1 · Oct 21, 2021