IP Library Granted Patent US 12,172,740
Granted Patent B2
US 12,172,740 · App. 18/420,687 · Granted Dec 24, 2024

Submersible remote operated vehicle tool change control

Inventors: Mark Leonhardt (Sacramento, CA); Bijou Abraham (Sacramento, CA); Peter Boissiere (Los Ranchos, NM); Steve Cohan (Davis, CA); Kevin Hjelden (Sacramento, CA); Doug Mayne (Vacaville, CA); Tim Ranstrom (Davis, CA); Sean Rogers (Sacramento, CA); Kevin Schell (Davis, CA); Spencer Slam (Sacramento, CA); Adwait Jayant Gandhe (Mountain View, CA)
Assignee: FMC Technologies, Inc.
B63G8/001B25J9/1633B25J9/1664B25J13/085B25J15/0491B63C11/52B63G2008/002B63G2008/005G05B2219/40271
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Quick Facts
Patent No.
US 12,172,740
App. No.
18/420,687
Granted
Dec 24, 2024
Kind
B2
Abstract

A system receives data from a submersible remote operated vehicle (ROV), the data being about the operation of an arm of the ROV. The system automatically controls, based on the data, movement of the arm in docking the arm to a tool holder. In certain instances, the system implements an image based control. In certain instances, the system implements a force accommodation control. In certain instances, the system implements both.

Claims (43)

1. A method, comprising:

receiving data from a submersible remote operated vehicle (ROV) about the operation of an arm of the ROV; and

automatically controlling, based on the data, movement of the arm in docking the arm to a tool holder.

2. The method of claim 1 , where receiving data comprises receiving data from a camera, the data comprising an image of an alignment fiducial associated with the tool holder; and

where automatically controlling movement of the arm comprises automatically controlling the movement of the arm to align the arm relative to the tool holder.

3. The method of claim 1 , where receiving data comprises receiving data from a force sensor of the arm; and

where automatically controlling movement of the arm comprises automatically controlling movement of the arm based on a force threshold and an automatically determined nominal path to the tool holder.

4. The method of claim 3 , where the force sensor comprises a torque sensor; and

where automatically controlling movement of the arm comprises automatically controlling movement of the arm based on a torque threshold and an automatically determined nominal path to the tool holder.

5. The method of claim 3 , where automatically controlling movement of the arm further comprises automatically controlling movement of the arm based on a second, different force threshold in a different direction than the first mentioned force threshold.

6. The method of claim 5 , where the first mentioned threshold is in an extension direction of the arm and the second force threshold is lateral to the extension direction, and where the first mentioned threshold is greater than the second threshold.

7. The method of claim 3 , where receiving data comprises receiving data from a camera, the data comprising an image of the tool holder; and

where automatically controlling movement of the arm further comprises automatically controlling the movement of the arm based on the image to align the arm relative to the tool holder.

8. The method of claim 1 , comprising repeatedly receiving arm movement input from a human operator during the docking.

9. The method of claim 1 , comprising:

receiving an input from a human operator identifying a tool; and

in response to the input operating a tool carousel to present a tool holder containing the tool to an access position.

10. The method of claim 1 , where docking the arm to a tool holder comprises inserting a tool on the arm into the tool holder; and comprising releasing the tool from the arm.

11. A system comprising a processor and memory with instruction stored on the memory operable to cause the system to perform operations comprising:

receive data from a submersible ROV about the operation of an arm of the ROV; and

automatically control, based on the data, movement of the arm in docking the arm to a tool holder.

12. The system of claim 11 , where receiving data comprises receiving data from a camera, the data comprising an image of an alignment fiducial associated with the tool holder; and

where automatically controlling movement of the arm comprises automatically controlling the movement of the arm to align the arm relative to the tool holder.

13. The system of claim 11 , where receiving data comprises receiving data from a force sensor of the arm; and

where automatically controlling movement of the arm comprises automatically controlling movement of the arm based on a force threshold and an automatically determined nominal path to the tool holder.

14. The system of claim 13 , where receiving data comprises receiving data from a camera, the data comprising an image of the tool holder; and

where automatically controlling movement of the arm further comprises automatically controlling the movement of the arm based on the image to align the arm relative to the tool holder.

15. The system of claim 13 , where automatically controlling movement of the arm further comprises automatically controlling movement of the arm based on a second, different force threshold in a different direction than the first mentioned force threshold.

16. The system of claim 15 , where the first mentioned threshold is in an extension direction of the arm and the second force threshold is lateral to the extension direction, and where the first mentioned threshold is greater than the second threshold.

17. A submersible ROV system, comprising:

a submersible ROV with a manipulator arm for carrying a tool;

a tool holder for storing the tool; and

a control system configured to receive data from sensors of the ROV about the operation of the arm and automatically control, based on the data, movement of the arm in docking the arm to the tool holder.

18. The submersible ROV system of claim 17 , where the tool holder is carried by the ROV.

19. The submersible ROV system of claim 17 , where the sensors comprise a camera; and

where the control system is configured to receive image data from the camera.

20. The submersible ROV system of claim 17 , where the sensors comprise a force sensor configured to sense forces exerted by the manipulator arm; and

where the control system is configured to receive force data from the sensor.

21. The submersible ROV system of claim 17 , where the tool holder comprises:

an opening through which the tool is pass when docking the arm to the tool holder; and

a conical guide, surrounding the opening and decreasing in diameter toward the opening.

22. The submersible ROV system of claim 21 , where the conical guide comprises a plurality of lead-in ramps, each having a ramped inward facing surface.

23. The submersible ROV system of claim 17 , comprising a key or keyway on the tool holder configured to interface with a corresponding keyway or key on the tool and lock the tool to the tool holder.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 24, 2024
From: LEONHARDT, MARK; ABRAHAM, BIJOU; BOISSIERE, PETER; COHAN, STEVE; HJELDEN, KEVIN; RANSTROM, TIM; ROGERS, SEAN; SCHELL, KEVIN; SLAM, SPENCER; GANDHE, ADWAIT JAYANT; DOUG MAYNE
To: FMC TECHNOLOGIES, INC.
Reel/Frame 066225/0552 →
Continuity (4)
Continuation 18185947 · Mar 17, 2023
Continuation 16460467 · Jul 2, 2019
Provisional Application 62830104 · Apr 5, 2019
Related Publication 20240278889A1 · Aug 22, 2024