IP Library Granted Patent US 11,583,350
Granted Patent B2
US 11,583,350 · App. 16/354,481 · Granted Feb 21, 2023

Jaw coordination of robotic surgical controls

Inventors: Clinton W. Denlinger (Cincinnati, OH); Charles J. Scheib (Loveland, OH); Jeffrey S. Swayze (West Chester, OH)
Assignee: Cilag GmbH International
A61B34/35A61B34/74A61B34/76A61B34/77A61B90/361A61B90/37A61B2034/305A61B2034/742A61B2034/743A61B2034/744
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Quick Facts
Patent No.
US 11,583,350
App. No.
16/354,481
Granted
Feb 21, 2023
Kind
B2
Abstract

An input control device can be configured to operate in different modes depending on proximity data provided by a proximity detection system. The input control device can include a feedback generator configured to generate feedback in response to the input control device switching between operational modes, the proximity data provided by the proximity detection system, and/or other conditions of the surgical procedure, robotic surgical tool, surgical site, and/or patient. The input control device can include a variable resistance assembly for resisting input control motions applied to an actuator thereof. Additionally or alternatively, the input control device can include an end effector actuator assembly for repositioning the end effector actuator based on feedback from a paired robotic surgical tool.

Claims (46)

1. A control system for a robotic surgical system, the control system comprising:

a first robotic tool comprising a first pair of tool jaws movable through a first range of positions;

a second robotic tool comprising a second pair of tool jaws movable through a second range of positions;

an input control device selectively operable to control the first robotic tool and the second robotic tool, wherein the input control device comprises:

a linear actuator; and

a pair of pivotable jaws coupled to the linear actuator, wherein the pair of pivotable jaws is configured to pivot in response to a user input control motion, and wherein the linear actuator is configured to selectively pivot the pair of pivotable jaws; and

a control circuit configured to:

receive a first input control signal indicative of the user input control motion received by the pair of pivotable jaws, wherein the user input control motion comprises pivoting the pair of pivotable jaws;

provide a first output control signal to the first robotic tool based on the first input control signal, wherein the first output control signal comprises moving the first pair of tool jaws from a first configuration, wherein a first angle is defined between the first pair of tool jaws, to a second configuration, wherein a second angle is defined between the first pair of tool jaws;

detect that the first robotic tool has been operably decoupled from the input control device and that the second robotic tool has been operably coupled to the input control device;

receive a second input control signal from the second robotic tool indicative of a third angle defined between the second pair of tool jaws; and

provide a second output control signal to the input control device based on the second input control signal, wherein the second output control signal is configured to drive the pair of pivotable jaws through a range of motion based on a difference between the third angle and the second angle.

2. The control system of claim 1 , wherein the linear actuator comprises:

a rack; and

a servomechanism operably coupled to the rack.

3. The control system of claim 1 , wherein the linear actuator comprises:

a reciprocating element; and

a first connector pivotably coupled to the pair of pivotable jaws and the reciprocating element.

4. The control system of claim 1 , further comprising a third robotic tool comprising a third pair of tool jaws moveable through a third range of positions, wherein the input control device further comprises a second pair of pivotable jaws configured to pivot in response to a second user input control motion.

5. The control system of claim 1 , wherein the input control device further comprises a second linear actuator.

6. The control system of claim 5 , wherein the linear actuator is independent of the second linear actuator.

7. The control system of claim 1 , wherein the input control device is located remotely to the first robotic tool and the second robotic tool.

8. The control system of claim 1 , wherein the control circuit is configured to provide the second output control signal to the linear actuator of the input control device based on the second input control signal.

9. A control system for a robotic surgical system, the control system comprising:

a first robotic tool, comprising:

a first end effector comprising a first pair of jaws movable through a first range of positions; and

a first sensor configured to detect the position of the first pair of jaws within the first range of positions;

a second robotic tool, comprising:

a second end effector comprising a second pair of jaws movable through a second range of positions; and

a second sensor configured to detect the position of the second pair of jaws within the second range of positions; and

a control circuit configured to:

receive a first input control signal indicative of a user input control motion received by input jaws of an input control device, wherein the user input control motion comprises moving the input jaws;

drive the first pair of jaws from a first position within the first range of positions, wherein a first angle is defined between the first pair of jaws, to a second position within the first range of positions, wherein a second angle is defined between the first pair of jaws, based on the first input control signal;

detect that the first robotic tool has been operably decoupled from the input control device and that the second robotic tool has been operably coupled to the input control device;

receive a second input control signal from the second robotic tool indicative of a third angle defined between the second pair of jaws; and

provide an output control signal to the input jaws of the input control device based on the second input control signal, wherein the output control signal is configured to adjust an orientation of the input jaws based on a difference between the third angle and the second angle.

10. The control system of claim 9 , wherein the first sensor comprises a first rotary encoder, and wherein the second sensor comprises a second rotary encoder.

11. A method, comprising:

receiving a first input control signal indicative of a user input control motion applied to a controller jaw of an input control device, wherein the user input control motion comprises moving the controller jaw;

driving a jaw of a first robotic tool to a first angular orientation in response to the first input control signal;

switching operable control by the input control device from the first robotic tool to a second robotic tool;

receiving a second input control signal from the second robotic tool indicative of a second angular orientation of a jaw of the second robotic tool; and

driving the controller jaw of the input control device to correspond to the second angular orientation of the jaw of the second robotic tool in response to the second input control signal, based on a difference between the second angular orientation of the jaw of the second robotic tool and the first angular orientation of the jaw of the first robotic tool.

12. The method of claim 11 , further comprising:

receiving a third input control signal from the second robotic tool indicative of a third angular orientation of a second jaw of the second robotic tool; and

driving a second controller jaw of the input control device to correspond to the third angular orientation of the second jaw of the second robotic tool in response to the third input control signal.

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 Apr 24, 2019
From: DENLINGER, CLINTON W.; SCHEIB, CHARLES J.; SWAYZE, JEFFREY S.
To: ETHICON LLC
Reel/Frame 048982/0413 →
Cited By (1)
US 12,433,696