IP Library Granted Patent US 11,419,604
Granted Patent B2
US 11,419,604 · App. 16/128,172 · Granted Aug 23, 2022

Robotic systems with separate photoacoustic receivers

Inventors: Charles J. Scheib (Loveland, OH); Paul G. Ritchie (Loveland, OH)
Assignee: Cilag GmbH International
A61B17/0482A61B1/00006A61B1/00013A61B1/00043A61B1/00045A61B1/00096A61B1/00149A61B1/04A61B1/045A61B1/05A61B1/051A61B1/06A61B1/063A61B1/0607A61B1/0638A61B1/0661A61B1/07A61B1/3132A61B5/0036A61B5/0086A61B5/0095A61B17/00234A61B17/0218A61B17/0469A61B17/0483A61B17/062A61B17/064A61B17/06066A61B17/1114A61B17/1155A61B17/3423A61B34/20A61B34/30A61B34/32A61B34/73A61B90/03A61B90/13A61B90/30A61B90/35A61B90/36A61B90/361A61B90/37G02F1/1326G06T1/0007A61B1/00009A61B1/0676A61B34/25A61B2017/00061A61B2017/00119A61B2017/00367A61B2017/00477A61B2017/00876A61B2034/105A61B2034/107A61B2034/2051A61B2034/2055A61B2034/2057A61B2034/2063A61B2034/2065A61B2034/301A61B2034/302A61B2090/061A61B2090/064A61B2090/306A61B2090/367A61B2090/373A61B2090/374A61B2090/378A61B2090/3762A61B2505/05A61B2560/0462A61B2576/00
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 11,419,604
App. No.
16/128,172
Granted
Aug 23, 2022
Kind
B2
Abstract

A surgical robotic visualization system comprises a first robotic arm, a second robotic arm, a photoacoustic receiver coupled to the first robotic arm, an emitter assembly coupled to the second robotic arm, and a control circuit. The control circuit is configured to cause the emitter assembly to emit electromagnetic radiation toward an anatomical structure at a plurality of wavelengths capable of penetrating the anatomical structure and reaching an embedded structure located below a surface of the anatomical structure, receive an input of the photoacoustic receiver indicative of an acoustic response signal of the embedded structure, and detect the embedded structure based on the input from the photoacoustic receiver.

Claims (76)

1. A surgical robotic visualization system, comprising:

a first robotic arm;

a second robotic arm;

a photoacoustic receiver coupled to the first robotic arm;

an emitter assembly coupled to the second robotic arm; and

a control circuit configured to:

cause the emitter assembly to emit electromagnetic radiation toward an anatomical structure at a plurality of wavelengths capable of penetrating the anatomical structure and reaching an embedded structure located below a surface of the anatomical structure;

receive an input of the photoacoustic receiver indicative of an acoustic response signal of the embedded structure;

detect the embedded structure based on the input from the photoacoustic receiver;

cause the first robotic arm to move the photoacoustic receiver into contact with the surface of the anatomical structure; and

cause the first robotic arm to increase a pressure applied by the photoacoustic receiver onto the surface of the anatomical structure.

2. The surgical robotic visualization system of claim 1 , wherein the electromagnetic radiation comprises a near infrared radiation.

3. The surgical robotic visualization system of claim 1 , further comprising a robotic control unit configured to control movement of at least one of the first robotic arm and the second robotic arm.

4. The surgical robotic visualization system of claim 1 , wherein the first robotic arm is movable independently from the second robotic arm.

5. The surgical robotic visualization system of claim 1 , wherein the emitter assembly comprises a structured light emitter configured to emit a structured light pattern onto the surface of the anatomical structure.

6. A surgical robotic visualization system, comprising:

a robotic arm;

a photoacoustic receiver coupled to the robotic arm;

an emitter assembly, comprising:

a near infrared light emitter; and

a structured light emitter;

a waveform sensor assembly; and

a control circuit configured to:

cause the structured light emitter to emit a structured light pattern onto a surface of an anatomical structure;

construct a three-dimensional digital representation of the anatomical structure from the reflected structured light pattern detected by the waveform sensor assembly;

receive a user input indicative of a selected position of the photoacoustic receiver with respect to the surface of the anatomical structure;

cause the robotic arm to move the photoacoustic receiver to the selected position;

cause the near infrared light emitter to emit pulses that reach tissue within the anatomical structure; and

cause the robotic arm to adjust a position of the photoacoustic receiver to improve quality of acoustic response signals received by the photoacoustic receiver from the tissue excited by the near infrared light pulses;

wherein the control circuit is configured to cause the robotic arm to increase a pressure applied by the photoacoustic receiver onto the surface of the anatomical structure.

7. The surgical robotic visualization system of claim 6 , wherein the control circuit is configured to cause the robotic arm to decrease a pressure applied by the photoacoustic receiver onto the surface of the anatomical structure.

8. The surgical robotic visualization system of claim 6 , further comprising a robotic control unit configured to control movement of the robotic arm.

9. The surgical robotic visualization system of claim 6 , further comprising a display configured to selectively depict a three-dimensional rendering of the anatomical structure based on the three-dimensional digital representation of the anatomical structure.

10. The surgical robotic visualization system of claim 9 , wherein the display is configured to solicit the user input regarding the selected position.

11. The surgical robotic visualization system of claim 6 , wherein the control circuit is configured to determine a pressure applied by the photoacoustic receiver onto the surface of the anatomical structure from the reflected structured light pattern detected by the waveform sensor assembly.

12. A surgical robotic visualization system, comprising:

a robotic arm;

a photoacoustic receiver coupled to the robotic arm;

a near infrared light emitter; and

a control circuit configured to:

receive a user input indicative of a selected position of the photoacoustic receiver with respect to a surface of an anatomical structure;

cause the robotic arm to move the photoacoustic receiver to the selected position;

cause the near infrared light emitter to emit pulses that reach tissue within the anatomical structure; and

cause the robotic arm to adjust a position of the photoacoustic receiver to improve quality of acoustic response signals received by the photoacoustic receiver from the tissue excited by the near infrared light pulses;

wherein the control circuit is configured to cause the robotic arm to increase a pressure applied by the photoacoustic receiver onto the surface of the anatomical structure.

13. The surgical robotic visualization system of claim 12 , wherein the control circuit is configured to cause the robotic arm to decrease a pressure applied by the photoacoustic receiver onto the surface of the anatomical structure.

14. The surgical robotic visualization system of claim 12 , further comprising a robotic control unit configured to control movement of the robotic arm.

15. The surgical robotic visualization system of claim 12 , wherein the control circuit is further configured to:

construct a three-dimensional digital representation of the anatomical structure; and

convey the three-dimensional digital representation to an imaging system.

16. The surgical robotic visualization system of claim 15 , wherein the control circuit is further configured to cause the imaging system to selectively depict a three-dimensional rendering of the anatomical structure based on the three-dimensional digital representation of the anatomical structure.

17. The surgical robotic visualization system of claim 16 , wherein the imaging system is configured to solicit the user input regarding the selected position.

18. A surgical robotic visualization system, comprising:

a robotic arm;

a photoacoustic receiver coupled to the robotic arm;

an emitter assembly; and

a control circuit configured to:

cause the emitter assembly to emit electromagnetic radiation toward an anatomical structure at a plurality of wavelengths capable of penetrating the anatomical structure and reaching an embedded structure located below a surface of the anatomical structure;

receive an input of the photoacoustic receiver indicative of an acoustic response signal of the embedded structure;

detect the embedded structure based on the input from the photoacoustic receiver;

cause the robotic arm to move the photoacoustic receiver into contact with the surface of the anatomical structure; and

cause the robotic arm to increase a pressure applied by the photoacoustic receiver onto the surface of the anatomical structure.

19. A surgical robotic visualization system, comprising:

a robotic arm;

a photoacoustic receiver coupled to the robotic arm;

an emitter assembly, comprising:

a near infrared light emitter; and

a structured light emitter;

a waveform sensor assembly; and

a control circuit configured to:

cause the structured light emitter to emit a structured light pattern onto a surface of an anatomical structure;

construct a three-dimensional digital representation of the anatomical structure from the reflected structured light pattern detected by the waveform sensor assembly;

cause the robotic arm to move the photoacoustic receiver to a selected position of the photoacoustic receiver with respect to the surface of the anatomical structure;

cause the near infrared light emitter to emit pulses that reach tissue within the anatomical structure; and

cause the robotic arm to adjust position of the photoacoustic receiver to improve quality of acoustic response signals received by the photoacoustic receiver from the tissue excited by the near infrared light pulses,

wherein the control circuit is configured to cause the robotic arm to increase a pressure applied by the photoacoustic receiver onto the surface of the anatomical structure.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 27, 2021
From: ETHICON LLC
To: CILAG GMBH INTERNATIONAL
Reel/Frame 056601/0339 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 12, 2018
From: SCHEIB, CHARLES J.; RITCHIE, PAUL G.
To: ETHICON LLC
Reel/Frame 047147/0539 →
Continuity (2)
Provisional Application 62698625 · Jul 16, 2018
Related Publication 20200015914A1 · Jan 16, 2020
Cited By (22)
US 12,228,987 US 12,235,697 US 12,239,353 US 12,239,404 US 12,293,432 US 12,315,036 US 12,354,186 US 12,369,960 US 12,369,994 US 12,376,896 US 12,444,094 US 12,462,439 US 12,488,512 US 12,493,996 US 12,505,584 US 12,629,194 US 12,639,250 US 12,661,188 US 12,670,670 US 12,682,578 US 12,682,579 US 12,697,178