IP Library Granted Patent US 11,701,190
Granted Patent B2
US 11,701,190 · App. 16/354,461 · Granted Jul 18, 2023

Selectable variable response of shaft motion of surgical robotic systems

Inventors: Clinton W. Denlinger (Cincinnati, OH); Gregory W. Johnson (Minneapolis, MN); Charles J. Scheib (Loveland, OH); Jeffrey S. Swayze (West Chester, OH)
Assignee: Cilag GmbH International
A61B34/37A61B1/000094A61B34/74A61B34/77B25J9/1664B25J9/1694B25J13/085A61B90/361A61B90/37A61B2017/00973A61B2034/301A61B2034/302A61B2034/306A61B2034/742A61B2090/061A61B2090/065
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Quick Facts
Patent No.
US 11,701,190
App. No.
16/354,461
Granted
Jul 18, 2023
Kind
B2
Abstract

A robotic surgical system for treating a patient is disclosed including a surgical tool movable relative to the patient and a user input device including a base and a space joint including a central portion movable relative to the base to effect a motion. The robotic surgical system further includes a control circuit configured to receive a user selection signal indicative of a selection between a first motion scaling profile of the motion of the surgical tool and a second motion scaling profile of the motion of the surgical tool, receive a motion control signal from the user input device indicative of a user input force, and cause the surgical tool to be moved in response to the motion control signal in accordance with the first motion scaling profile or the second motion scaling profile based on the user selection signal. The first motion scaling profile is different than the second motion scaling profile.

Claims (54)

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

a surgical tool movable relative to the patient;

an input control device, comprising:

a base;

a joystick coupled to a multi-dimensional space joint positioned about a central portion supported on the base, wherein the joystick defines a first rotational axis extending through the multi-dimensional space joint and the central portion, wherein the central portion is movable relative to the base to effect a motion of the surgical tool in response to a user input force, and wherein the multi-dimensional space joint and the joystick coupled thereto define a six degree-of-freedom input control for the surgical tool;

a wrist configured to define an input control for a rolling motion of the surgical tool, wherein the wrist is offset from the multi-dimensional space joint by a shaft extending along a second rotational axis that extends transverse the first rotational axis;

a second joint coupled to the wrist, wherein the second joint is configured to allow a rotation of the wrist relative to the joystick about the second rotational axis; and

a control circuit configured to:

receive a user selection signal indicative of a selection between a first motion scaling profile of the motion of the surgical tool and a second motion scaling profile of the motion of the surgical tool, wherein the first motion scaling profile is different than the second motion scaling profile;

receive a motion control signal from the input control device indicative of a user input force; and

cause the surgical tool to be moved in response to the motion control signal in accordance with the first motion scaling profile or the second motion scaling profile based on the user selection signal.

2. The robotic surgical system of claim 1 , wherein the base is stationary.

3. The robotic surgical system of claim 1 , wherein the selection is made using a dial.

4. The robotic surgical system of claim 1 , wherein the selection is made using a pedal assembly.

5. The robotic surgical system of claim 1 , wherein the selection is made using a touch screen.

6. The robotic surgical system of claim 1 , wherein the input control device comprises a force sensor for measuring the user input force.

7. The robotic surgical system of claim 1 , wherein the first rotational axis and the second rotational axis form a right angle.

8. The robotic surgical system of claim 1 , wherein the joystick is spring-biased such that the first rotational axis defined by the joystick is aligned with a z-axis defined by the base.

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

a surgical tool movable relative to the patient;

an input control device, comprising:

a base; and

a multi-dimensional space joint including a central portion supported on the base, wherein the multi-dimensional space joint is positioned about the central portion, wherein the central portion is movable relative to the base to effect a motion of the surgical tool in response to a user input force, and wherein the multi-dimensional space joint is configured to rotate about a first rotational axis; and

a wrist configured to define an input control for a rolling motion of the surgical tool, wherein the wrist is offset from the multi-dimensional space joint by a shaft extending along a second rotational axis that extends transverse the first rotational axis;

a second joint coupled to the wrist, wherein the second joint is configured to allow a rotation of the wrist relative to a joystick of the multi-dimensional space joint about the second rotational axis; and

a control circuit configured to:

determine a distance between the surgical tool and the patient;

receive a motion control signal from the input control device indicative of the user input force; and

cause the surgical tool to be moved in response to the motion control signal in accordance with a first motion scaling profile of the motion of the surgical tool or a second motion scaling profile of the motion of the surgical tool based on the distance between the surgical tool and the patient, wherein the first motion scaling profile is different than the second motion scaling profile.

10. The robotic surgical system of claim 9 , wherein determining the distance between the surgical tool and the patient comprises:

transmitting an electromagnetic wave from the surgical tool to the patient; and

calculating a time-of-flight of the electromagnetic wave reflected by the patient.

11. The robotic surgical system of claim 9 , wherein determining the distance between the surgical tool and the patient comprises receiving an input signal indicative of the distance.

12. The robotic surgical system of claim 9 , wherein the control circuit is configured to compare the distance to a threshold distance.

13. The robotic surgical system of claim 12 , wherein the control circuit is configured to select the first motion scaling profile if the distance is greater than or equal to the threshold distance.

14. The robotic surgical system of claim 12 , wherein the control circuit is configured to select the second motion scaling profile if the distance is less than or equal to the threshold distance.

15. A robotic surgical system for treating a patient, the robotic surgical system comprising:

a surgical tool;

a multi-dimensional space joint positioned about a central portion and configured to rotate about a first rotational axis, wherein the multi-dimensional space joint is configured to cause the surgical tool to move relative to the patient in response to user input forces; and

a wrist configured to define an input control for a rolling motion of the surgical tool, wherein the wrist is offset from the multi-dimensional space joint by a shaft extending along a second rotational axis that extends transverse the first rotational axis;

a second joint configured to allow a rotation of the wrist relative to a joystick of the multi-dimensional space joint about the second rotational axis; and

a control circuit configured to:

receive a first motion control signal from the multi-dimensional space joint indicative of a first user input force;

receive a second motion control signal from the multi-dimensional space joint indicative of a second user input force different than the first user input force;

cause the surgical tool to be moved at a predetermined rate of motion in response the first motion control signal; and

cause the surgical tool to be moved at the predetermined rate of motion in response the second motion control signal.

16. The robotic surgical system of claim 15 , wherein the second user input force is greater than the first user input force.

17. The robotic surgical system of claim 15 , wherein the control circuit is configured to cause the surgical tool to be moved at the predetermined rate of motion in response the first motion control signal in a gross motion mode of the multi-dimensional space joint.

18. The robotic surgical system of claim 17 , wherein the control circuit is configured to cause the surgical tool to be moved at the predetermined rate of motion in response the second motion control signal in a fine motion mode of the multi-dimensional space joint.

19. The robotic surgical system of claim 15 , wherein the robotic surgical system further comprises:

a base; and

the joystick movable relative to the base in response to the user input forces, wherein the multi-dimensional space joint is coupled to the joystick.

20. The robotic surgical system of claim 19 , wherein the base is stationary.

21. The robotic surgical system of claim 20 , wherein the multi-dimensional space joint comprises a force sensor for measuring the user input forces.

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 Aug 14, 2019
From: DENLINGER, CLINTON W.; JOHNSON, GREGORY W.; SCHEIB, CHARLES J.; SWAYZE, JEFFREY S.
To: ETHICON LLC
Reel/Frame 050051/0119 →
Cited By (1)
US 12,239,404