IP Library Granted Patent US 12,635,996
Granted Patent B2
US 12,635,996 · App. 19/303,259 · Granted May 26, 2026

Co-manipulation surgical system for use with surgical instruments for performing surgery and having sensors for detecting motion

Inventors: Victoria Cheng-Tan Wu (San Francisco, CA); Jad Fayad (Paris, FR); David Paul Noonan (San Francisco, CA); Jeffery Byron Alvarez (San Carlos, CA); Ehsan Basafa (Redwood City, CA); Ritwik Ummalaneni (San Francisco, CA); Nicolas Linard (Montrouge, FR); Jesus Mago (Saint-Mande, FR)
Assignee: Moon Surgical SAS
A61B17/00234A61B34/30A61B2017/0023A61B2017/00318A61B2017/00477A61B2017/00876A61B2034/301
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Quick Facts
Patent No.
US 12,635,996
App. No.
19/303,259
Granted
May 26, 2026
Kind
B2
Abstract

Co-manipulation robotic systems are described herein that may be used for assisting with laparoscopic surgical procedures. The co-manipulation robotic systems allow a surgeon to use commercially-available surgical tools while providing benefits associated with surgical robotics. Advantageously, the surgical tools may be seamlessly coupled to the robot arms using a disposable coupler while the reusable portions of the robot arm remain in a sterile drape. Further, the co-manipulation robotic system may operate in multiple modes to enhance usability and safety, while allowing the surgeon to position the instrument directly with the instrument handle and further maintain the desired position of the instrument using the robot arm.

Claims (44)

1 . A co-manipulation surgical system to assist with surgery performed on a patient on a patient bed using a surgical instrument having a handle, an operating end, and an elongated shaft therebetween, the co-manipulation surgical system comprising:

a robot arm comprising a proximal end, a distal region configured to be removably coupled to the surgical instrument, a plurality of joints comprising at least one motorized joint and at least one passive joint, and a plurality of links comprising at least one wrist link at the distal region, the at least one wrist link interconnected via the at least one passive joint;

at least one sensor configured to generate sensor data indicative of a position and/or angulation of the robot arm; and

a controller operatively coupled to the robot arm and the at least one sensor, the controller programmed to:

detect, when the surgical instrument removably coupled to the distal end of the robot is inserted through a trocar port into the patient's body, movement of the patient bed based on the sensor data; and

automatically adjust the position and/or angulation of the robot arm via the at least one motorized joint to accommodate the movement of the patient bed and maintain a relative position between the distal end of the robot arm and the trocar port,

wherein the at least one wrist link is configured to passively move about the at least one passive joint as the position and/or angulation of the robot arm is automatically adjusted to accommodate the movement of the patient bed.

2 . The co-manipulation surgical system of claim 1 , wherein the at least one wrist link comprises a middle wrist link rotatably coupled to a proximal wrist link via a first passive joint of the at least one passive joint, and a distal wrist link rotatably coupled to the middle wrist link via a second passive joint of the at least one passive joint.

3 . The co-manipulation surgical system of claim 2 , wherein the distal wrist link comprises a coupler interface configured to be removably coupled to the surgical instrument via a coupler body configured to be removably coupled to the surgical instrument and to the coupler interface.

4 . The co-manipulation surgical system of claim 1 , wherein the at least one sensor comprises at least one encoder disposed on or adjacent to at least one of the plurality of joints, the at least one encoder configured to measure angulation between adjacent links of the plurality of links associated with the at least one of the plurality of joints.

5 . The co-manipulation surgical system of claim 4 , wherein the at least one encoder is disposed on or adjacent to the at least one passive joint, and configured to measure angulation of the at least one wrist link associated with the at least one passive joint.

6 . The co-manipulation surgical system of claim 1 , wherein the at least one sensor comprises an optical scanner configured to collect 3D depth data and/or pixel image data.

7 . The co-manipulation surgical system of claim 6 , wherein the controller is configured to detect movement of the patient bed based on the 3D depth data and/or pixel image data.

8 . The co-manipulation surgical system of claim 6 , wherein the controller is configured to:

detect a position and/or orientation of the trocar port relative to the patient's body based on the 3D depth data and/or pixel image data; and

automatically adjust, upon actuation by a user during setup of the co-manipulation surgical system, the position and/or angulation of the robot arm via the at least one motorized joint to position the robot arm in a preferred configuration relative to the trocar port.

9 . The co-manipulation surgical system of claim 8 , wherein the controller is configured to:

detect a position and/or orientation of at least one additional trocar port relative to the patient's body based on the 3D depth data and/or pixel image data; and

automatically adjust, upon actuation by the user during setup of the co-manipulation surgical system, the position and/or angulation of the robot arm via the at least one motorized joint to position the robot arm in the preferred configuration relative to the trocar port based on at least one of the position and/or angulation of the robot arm or the position and/or orientation of the at least one additional trocar port.

10 . The co-manipulation surgical system of claim 8 , wherein the controller is configured to execute a transform function to convert the position and/or orientation of the trocar port from a coordinate frame of the optical scanner to a coordinate frame of the robot arm.

11 . The co-manipulation surgical system of claim 1 , wherein the controller is configured to determine a position and/or orientation of the trocar port relative to the distal end of the robot arm based on the sensor data.

12 . The co-manipulation surgical system of claim 11 , wherein the controller is configured to detect movement of the patient bed based on the position and/or orientation of the trocar port relative to the distal end of the robot arm.

13 . The co-manipulation surgical system of claim 1 , wherein the controller is configured to apply torque to the robot arm via the at least motorized joint that minimizes an error between a current position of the robot arm and a desired position of the robot arm to thereby maintain the relative position between the distal end of the robot arm and the trocar port during movement of the patient bed.

14 . The co-manipulation surgical system of claim 1 , wherein, upon detection of the movement of the patient bed, the controller is configured to switch the robot arm to a passive mode.

15 . The co-manipulation surgical system of claim 1 , wherein the controller is configured to cause the distal end of the robot arm to retract the operating end of the surgical instrument within the trocar port prior to automatically adjusting the position and/or angulation of the robot arm, such that the operating end of the surgical instrument is positioned away from anatomical structures within the patient's body.

16 . The co-manipulation surgical system of claim 1 , wherein the controller is configured to permit the robot arm to be freely moveable responsive to movement at the handle of the surgical instrument for performing surgery using the surgical instrument.

17 . The co-manipulation surgical system of claim 1 , further comprising a platform coupled to the proximal end of the robot arm, the platform configured to move the robot arm in at least two degrees of freedom.

18 . The co-manipulation surgical system of claim 17 , wherein the controller is configured to automatically cause the platform to move the robot arm to adjust the position and/or angulation of the robot arm to accommodate the movement of the patient bed and maintain the relative position between the distal end of the robot arm and the trocar port.

19 . The co-manipulation surgical system of claim 17 , wherein the controller is configured to automatically adjust the position and/or angulation of the robot arm via the at least one motorized joint to maintain the relative position between the distal end of the robot arm and the trocar port during movement of the robot arm by the platform.

20 . The co-manipulation surgical system of claim 19 , wherein the controller is configured to cause the platform to move the robot arm responsive to user input.

21 . A method for assisting with surgery performed on a patient on a patient bed using a surgical instrument having a handle, an operating end, and an elongated shaft therebetween, the method comprising:

providing a robot arm comprising a proximal end, a distal region configured to be removably coupled to the surgical instrument, a plurality of joints comprising at least one motorized joint and at least one passive joint, and a plurality of links comprising at least one wrist link at the distal region, the at least one wrist link interconnected via the at least one passive joint;

generating, via at least one sensor, sensor data indicative of a position and/or angulation of the robot arm;

detecting, when the surgical instrument removably coupled to the distal end of the robot is inserted through a trocar port into the patient's body, movement of the patient bed based on the sensor data; and

automatically adjusting the position and/or angulation of the robot arm via the at least one motorized joint to accommodate the movement of the patient bed and maintain a relative position between the distal end of the robot arm and the trocar port,

wherein the at least one wrist link is configured to passively move about the at least one passive joint as the position and/or angulation of the robot arm is automatically adjusted to accommodate the movement of the patient bed.

22 . The method of claim 21 , wherein generating sensor data indicative of the position and/or angulation of the robot arm comprises measuring, via at least one encoder disposed on or adjacent to the at least one passive joint, angulation of the at least one wrist link associated with the at least one passive joint.

23 . The method of claim 21 , further comprising:

generating, via an optical scanner, 3D depth data and/or pixel image data indicative of a position and/or orientation of the trocar port relative to the patient's body;

detecting a position and/or orientation of the trocar port relative to the patient's body based on the 3D depth data and/or pixel image data; and

automatically adjusting, upon actuation by a user during setup of the robot arm, the position and/or angulation of the robot arm via the at least one motorized joint to position the robot arm in a preferred configuration relative to the trocar port.

24 . The method of claim 23 , further comprising:

detecting a position and/or orientation of at least one additional trocar port relative to the patient's body based on the 3D depth data and/or pixel image data,

wherein automatically adjusting the position and/or angulation of the robot arm to position the robot arm in the preferred configuration relative to the trocar port comprises automatically adjusting, upon actuation by the user during setup of the robot arm, the position and/or angulation of the robot arm via the at least one motorized joint to position the robot arm in the preferred configuration relative to the trocar port based on at least one of the position and/or angulation of the robot arm or the position and/or orientation of the at least one additional trocar port.

Assignments (3)
SECURITY INTEREST Recorded Aug 4, 2026
From: MOON SURGICAL SAS
To: HSBC CONTINENTAL EUROPE
Reel/Frame 075519/0344 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 22, 2025
From: WU, VICTORIA CHENG-TAN; FAYAD, JAD; NOONAN, DAVID PAUL; ALVAREZ, JEFFERY BYRON; BASAFA, EHSAN; UMMALANENI, RITWIK; LINARD, NICOLAS
To: MOON SURGICAL SAS
Reel/Frame 072647/0217 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 22, 2025
From: MAGO, JESUS
To: MOON SURGICAL SAS
Reel/Frame 072647/0325 →
Priority Claims (5)
EP 21305417 · Mar 31, 2021 · regional
EP 21305929 · Jul 5, 2021 · regional
EP 21306904 · Dec 22, 2021 · regional
EP 21306905 · Dec 22, 2021 · regional
EP 22306496 · Oct 5, 2022 · regional
Continuity (9)
Continuation 19006090 · Dec 30, 2024
Continuation 18743763 · Jun 14, 2024
Continuation PCTIB2023059981 · Oct 4, 2023
Continuation In Part 18318699 · May 16, 2023
Continuation 18057191 · Nov 18, 2022
Continuation In Part 17815885 · Jul 28, 2022
Continuation PCTIB2022052989 · Mar 30, 2022
Provisional Application 63378434 · Oct 5, 2022
Related Publication 20250380934A1 · Dec 18, 2025
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