IP Library Granted Patent US 12,193,697
Granted Patent B2
US 12,193,697 · App. 18/353,616 · Granted Jan 14, 2025

Ultrasonic transducer tissue selectivity

Inventors: Daniel J. Cotter (North Easton, MA); Prakash Manandhar (Lawrence, MA); Nicholas Allen (Bedford, MA); Saurav V. Gupta (Medway, MA)
Assignee: Integra LifeSciences Enterprises, LLLP
A61B17/320068B06B1/0215B06B1/0618A61B2017/00146A61B2017/00185A61B2017/00973A61B2017/320069A61B2017/32007A61B2217/005B06B2201/76
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Quick Facts
Patent No.
US 12,193,697
App. No.
18/353,616
Granted
Jan 14, 2025
Kind
B2
Abstract

Some implementations provide a high-powered compact ultrasonic transducer having an integral piezoelectric ceramic force sensing element utilized to enable enhanced tissue selectivity with a piezoelectric based transducer. Some implementations additionally or alternatively relate to methods and apparatus for driving ultrasonic surgical devices, such as methods and apparatus that modulate an amplitude of a drive signal, provided to an ultrasonic surgical device, in accordance with a selected tissue selectivity level. For example, the amplitude of the drive signal for a given tissue selectivity level can be varied with time in accordance with amplitude modification parameters that are particularized to the given tissue selectivity level. Some of those implementations additionally implement a corresponding duty cycle, for the drive signal, that corresponds to the selected tissue selectivity level.

Claims (26)

1. An ultrasonic surgical apparatus for performing a surgical procedure at a surgical site, comprising:

a handpiece;

at least one drive ceramic disposed in the handpiece, the at least one drive ceramic electrically coupled to at least one controller that selectively generates dynamic output for driving the at least one drive ceramic, wherein the at least one drive ceramic generates corresponding ultrasonic waves in response to being driven by the dynamic output;

a surgical tip mechanically coupled to the at least one drive ceramic, wherein the surgical tip transmits the ultrasonic waves, generated by the at least one drive ceramic, to the surgical site; and

at least one sense ceramic disposed in the handpiece, the at least one sense ceramic providing a sense electrical output that corresponds to deflection of the surgical tip;

wherein at each control cycle of a plurality of control cycles, the at least one controller generates the dynamic output at the control cycle based on the sense electrical output at the control cycle and based on controlling an amplitude of the dynamic output in accordance with a corresponding amplitude modification parameter for the control cycle, wherein the corresponding amplitude modification parameter is utilized in controlling the amplitude at the control cycle based on being one of a plurality of amplitude modification parameters stored in association with a currently selected tissue selectivity level.

2. The ultrasonic surgical apparatus of claim 1 , wherein when the currently selected tissue selectivity level is selected, the at least one controller generates the dynamic output to provide simultaneous pulse width modulation and amplitude modulation, in the dynamic output, that is particularized to the selected tissue selectivity level.

3. The ultrasonic surgical apparatus of claim 1 , wherein:

at a first control cycle of the plurality of control cycles, the at least one controller generates the dynamic output at the first control cycle based on controlling the amplitude in accordance with a first amplitude modification parameter of the plurality of amplitude modification parameters;

at a second control cycle of the plurality of control cycles, the at least one controller generates the dynamic output at the second control cycle based on controlling the amplitude in accordance with a second amplitude modification parameter of the plurality of amplitude modification parameters; and

at a third control cycle of the plurality of control cycles, the at least one controller generates the dynamic output at the third control cycle based on controlling the amplitude in accordance with a third amplitude modification parameter of the plurality of modification parameters.

4. The ultrasonic surgical apparatus of claim 3 , wherein the second control cycle immediately follows the first control cycle.

5. The ultrasonic surgical apparatus of claim 3 , wherein one or more intermediate control cycles are interposed between the first control cycle and the second control cycle.

6. The ultrasonic surgical apparatus of claim 1 , further comprising one or more computer readable media, and wherein the plurality of amplitude modification parameters are stored in a look-up table in the one or more computer readable media.

7. The ultrasonic surgical apparatus of claim 6 , wherein a sequence of the plurality of amplitude modification parameters are stored for a given tissue selectivity level, where each amplitude modification parameter indicates how the amplitude is modulated during a corresponding time period.

8. The ultrasonic surgical apparatus of claim 7 , wherein the sequence of the plurality of amplitude modification parameters are cycled back when an end of the sequence is reached.

9. The ultrasonic surgical apparatus of claim 6 , wherein the look-up table is utilized for creating predetermined waveforms that correspond to a predetermined plurality of tissue selectivity levels including the currently selected tissue selectivity level.

10. The ultrasonic surgical apparatus of claim 1 , wherein the amplitude modification parameter indicates a percentage by which a commanded feedback amplitude is to be reduced.

11. The ultrasonic surgical apparatus of claim 1 , wherein the selected tissue selectivity level is based on user interface input that is received in response to an interaction with at least one user interface input device.

12. The ultrasonic surgical apparatus of claim 11 , wherein the at least one user interface input device comprises a foot pedal.

13. The ultrasonic surgical apparatus of claim 1 , wherein the currently selected tissue selectivity level is selected from a plurality of tissue selectivity levels.

14. The ultrasonic surgical apparatus of claim 1 , wherein the plurality of amplitude modification parameters comprise a plurality of discrete values each indicating an extent by which to reduce a reference amplitude of a feedback based reference signal to generate the dynamic output with the amplitude that is modulated.

15. The ultrasonic surgical apparatus of claim 14 , wherein the plurality of discrete values are stored with an indication of a sequence of the plurality of discrete values.

16. The ultrasonic surgical apparatus of claim 1 , wherein the plurality of amplitude modification parameters define a particular duty cycle that is particularized to the currently selected tissue selectivity level.

17. The ultrasonic surgical apparatus of claim 16 , wherein the plurality of amplitude modification parameters further define a plurality of values that are each utilized to determine the amplitude at a corresponding segment of the duty cycle.

18. The ultrasonic surgical apparatus of claim 1 , wherein a look-up table is configured to generate a tissue selectivity value for a tissue selectivity setting that is associated with the currently selected tissue selectivity level.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 20, 2023
From: COTTER, DANIEL J.; MANANDHAR, PRAKASH; ALLEN, NICHOLAS; GUPTA, SAURAV V.
To: INTEGRA LIFESCIENCES CORPORATION
Reel/Frame 065290/0291 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 20, 2023
From: INTEGRA LIFESCIENCES CORPORATION
To: INTEGRA LIFESCIENCES NR IRELAND LIMITED
Reel/Frame 065290/0367 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 20, 2023
From: INTEGRA LIFESCIENCES NR IRELAND LIMITED
To: INTEGRA LIFESCIENCES ENTERPRISES, LLLP
Reel/Frame 065290/0426 →
Continuity (4)
Division 16907841 · Jun 22, 2020
Division 15816666 · Nov 17, 2017
Provisional Application 62423407 · Nov 17, 2016
Related Publication 20240090915A1 · Mar 21, 2024
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