EP4366646A2

Co-manipulation surgical system having optical scanners for use with surgical instruments for performing laparoscopic surgery

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.

EP4366646A2, drawing sheet 1
Sheet 1 of 55

Term

15.8 yearsto projected expiry

Projected expiry 1 July 2042, counted from filing; an application has no term until it is granted.

  1. Priority and filed
  2. Published
  3. Today
  4. Projected expiry

50 claims: 16 independent, 34 dependent

  1. 1
    Claims of equivalent WO 2023281372 A2 WHAT IS CLAIMED:1. A co-manipulation surgical robot system for performing a surgical procedure, comprising: a first surgical robot comprising: a base;an arm coupled with the base;and a motor coupled with the arm and configured to move the arm relative to the base;a controller configured to control the arm;and an optical scanner configured to collect depth data.
  2. 5
    The co-manipulation surgical robot system of any one of the previous claims, wherein the optical scanner is configured to collect depth data related to a position and a movement of an instrument, wherein the instrument is freely held by a surgeon and not coupled with a surgical robot.
  3. 6
    The co-manipulation surgical robot system of any one of the previous claims, wherein the optical scanner is configured to collect depth data related to a trocar inserted into the patient.
  4. 8
    The co-manipulation surgical robot system of any one of the previous claims, further comprising a second surgical robot comprising:a second base;a second arm coupled with the second base;and a second motor coupled with the second arm and configured to move the second arm relative to the second base.
  5. 9
    The co-manipulation surgical robot system of any one of the previous claims, wherein the optical scanner has an accuracy of at least 5 mm at a range of 10 meters.
  6. 10
    The co-manipulation surgical robot system of any one of the previous claims, wherein the optical scanner is configured to collect depth data related to a surgeon’s hand during a surgical procedure.
  7. 11
    The co-manipulation surgical robot system of any one of the previous claims, wherein the controller is configured to control the arm of the first surgical robot according to at least one of the following operational modes:passive assistant mode;co-manipulation assistant mode;robotic assistant mode;and haptic mode, wherein: in the passive assistant mode, the arm is static;in the co-manipulation assistant mode, the arm is freely movable by an operator while the motor at least partially simultaneously moves the arm to improve a position and/or orientation of the instrument coupled with an end portion of the arm and/or to compensate at least for a force of gravity on the arm and the instrument that is coupled with the end portion of the arm;in the robotic assistant mode, the motor moves the arm to reposition the instrument coupled with the end portion of the arm;and in the haptic mode, the arm is movable by an operator while the motor compensates at least for a force of gravity on the arm and/or the instrument that is coupled with the end portion of the arm and at least guides the instrument along a predefined trajectory, prevents unwanted movements of the arm and/or the instrument coupled with the end portion of the arm, prevents a movement of the arm outside of a particular space, and/or prevents a movement of the arm into a particular space.
  8. 12
    The co-manipulation surgical robot system of any one of the previous claims, wherein the optical scanner is configured to use the depth data to identify a potential inadvertent collision between the arm of the first surgical robot and at least one of a patient, a support platform supporting at least the first surgical robot, another surgical robot, and/or another object in an operating room, and to warn a user of the potential inadvertent collision and/or inhibit a movement of the arm of the first surgical robot and/or cause movement of the arm of the first surgical robot to avoid such a collision.
  9. 13
    The co-manipulation surgical robot system of any one of the previous claims, wherein the first surgical robot is supported by a support platform and wherein the co manipulation surgical robot system is configured to move the first surgical robot relative to the support platform based on the depth data collected by the optical scanner to optimize a position of the first surgical robot on the support platform.
  10. 14
    The co-manipulation surgical robot system of any one of the previous claims, wherein the optical scanner is configured to collect depth data used to record a movement of a surgeon’s hand during a surgical procedure.
  11. 15
    The co-manipulation surgical robot system of any one of the previous claims, wherein the first surgical robot is supported by a support platform comprising a plurality of wheels configured to permit mobility of the support platform, the plurality of wheels comprising a brake mechanism configured to be engaged to prevent mobility of the support platform.
  12. 22
    A co-manipulation surgical robot system for performing a surgical procedure, comprising:a surgical robot comprising: a base;an arm coupled with the base;and a motor coupled with the arm;an optical scanner configured to track a movement of one or more objects around a patient;and a controller configured to collect data from the optical sensor regarding the movement of one or more objects and to move the arm of the surgical robot in response to the movement of one or more objects.
  13. 24
    A co-manipulation surgical system to assist with laparoscopic surgery performed 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 end configured to be removably coupled to the surgical instrument, a plurality of links, and a plurality of joints;a platform configured to support the robot arm, the platform comprising a plurality of wheels configured to permit mobility of the platform;a plurality of optical sensors coupled to the platform and configured to collect depth data;a display operatively coupled to the platform;and a controller configured to permit the robot arm to be freely moveable responsive to movement at the handle of the surgical instrument for performing laparoscopic surgery using the surgical instrument, the controller programmed to: receive the depth data collected by the plurality of optical sensors;generate a map of an area surrounding the platform based on the depth data;and cause the display to display the map.
  14. 30
    A method for assisting with laparoscopic surgery using a robot arm comprising a plurality of links, a plurality of joints, a proximal end supported by a platform comprising a plurality of wheels configured to permit mobility of the platform, and a distal end configured to be removably coupled to a surgical instrument, the method comprising:collecting depth data from a plurality of optical scanners coupled to the platform;generating a map of an area surrounding the platform based on the depth data, the map comprising graphical representations of the platform relative to at least one of one or more objects or one or more persons within the area surrounding the platform;and causing a display to display the map while the platform is moving to guide movement of the platform within an operating room.
  15. 31
    A co-manipulation surgical system to assist with laparoscopic surgery performed 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 end configured to be removably coupled to the surgical instrument, a plurality of links, and a plurality of joints between the proximal end and the distal end;a base operatively coupled to the proximal end of the robot arm;a plurality of motors disposed within the base, the plurality of motors operatively coupled to at least some joints of the plurality of joints;and a controller operatively coupled to the plurality of motors and configured to permit the robot arm to be freely moveable relative to the base responsive to movement at the handle of the surgical instrument for performing laparoscopic surgery using the surgical instrument, the controller programmed to: measure a position of the distal end of the robot arm;determine a point of entry of the surgical instrument into the patient by determining a point of intersection of a plurality of virtual lines parallel to the longitudinal axis of the surgical instrument as the position of the distal end of the robot arm moves relative to the point of entry;calculate a compensation force required to compensate for gravity of the surgical instrument based on the position of the distal end of the robot arm, the point of entry, and one or more instrument parameters stored in a memory of the controller;and apply torque to the at least some joints of the plurality of joints of the robot arm via the plurality of motors based on the compensation force to compensate for gravity of the surgical instrument during operation of the co-manipulation surgical system.
  16. 46
    A method for assisting with laparoscopic surgery using a robot arm comprising a proximal end, a distal end configured to be removably coupled to a surgical instrument, a plurality of links, and a plurality of joints between the proximal end and the distal end, the method comprising:measuring, via a controller operatively coupled to a plurality of motors operatively coupled to at least some joints of the plurality of joints, a position of the distal end of the robot arm;determining a point of entry of the surgical instrument into the patient by determining a point of intersection of a plurality of virtual lines parallel to the longitudinal axis of the surgical instrument as the position of the distal end of the robot arm moves relative to the point of entry;calculating a compensation force required to compensate for gravity of the surgical instrument based on the position of the distal end of the robot arm, the point of entry, and one or more instrument parameters stored in a memory of the controller;and applying torque to the at least some joints of the plurality of joints of the robot arm via the plurality of motors based on the compensation force to compensate for gravity of the surgical instrument during the laparoscopic surgery, wherein controller is configured to permit the robot arm to be freely moveable relative to a base operatively coupled to the proximal end of the robot arm responsive to movement at the handle of the surgical instrument for performing laparoscopic surgery using the surgical instrument while compensating for gravity of the surgical instrument.
Independent claims16