IP Library › Granted Patent US 12,134,189
Granted Patent B2
US 12,134,189 · App. 18/378,319 · Granted Nov 5, 2024

Systems and methods for efficiently moving a variety of objects

Inventors: Thomas Wagner (Concord, MA); Kevin Ahearn (Nebo, NC); Benjamin Cohen (Somerville, MA); Michael Dawson-Haggerty (Pittsburgh, PA); Christopher Geyer (Arlington, MA); Thomas Koletschka (Cambridge, MA); Kyle Maroney (North Attleboro, MA); Matthew T. Mason (Pittsburgh, PA); Gene Temple Price (Cambridge, MA); Joseph Romano (Arlington, MA); Daniel Smith (Canonsburg, PA); Siddhartha Srinivasa (Seattle, WA); Prasanna Velagapudi (Pittsburgh, PA); Thomas Allen (Reading, MA)
Assignee: Berkshire Grey Operating Company, Inc.
B25J9/1055B25J9/108B25J15/0004B25J15/0616B25J17/02F16C19/184F16C19/364Y10S901/29Y10S901/40
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Quick Facts
Patent No.
US 12,134,189
App. No.
18/378,319
Granted
Nov 5, 2024
Kind
B2
Abstract

A programmable motion system is disclosed that includes a dynamic end effector system. The dynamic end effector system includes an end effector that is coupled via a dynamic coupling to the programmable motion system, wherein the dynamic coupling provides that at least a portion of the end effector may spin with respect to an other portion of the end effector.

Claims (38)

1. A method of grasping an object with an end-effector of a programmable motion device, said method comprising:

moving the end-effector using the programmable motion device to an object to be grasped;

grasping the object with a distal end of the end-effector using a vacuum at the distal end of the end-effector, the distal end of the end-effector including a vacuum cup that is mounted to a first portion of the end-effector, the first portion of the end-effector being rotatably coupled with respect to a second portion of the end-effector, the second portion of the end-effector being coupled to the programmable motion device;

lifting the object using the vacuum at a distal end of the vacuum cup of the end-effector, the vacuum being provided through both the first portion of the end-effector and the second portion of the end-effector; and

permitting the first portion of the end-effector and the vacuum cup with the grasped object to rotate together with respect to the second portion of the end-effector that is attached to the programmable motion device, the rotation of the first portion of the end-effector with respect to the second portion of the end-effector being responsive to gravitational forces applied to the object as held by the end-effector.

2. The method of claim 1 , wherein the vacuum cup is provided as a flexible bellows.

3. The method of claim 1 , wherein the vacuum at the distal end of the end-effector is provided by a vacuum source that is remote from the programmable motion device.

4. The method of claim 1 , wherein the second portion of the end-effector is coupled to the first portion of the end-effector via radial deep groove ball bearings.

5. The method of claim 1 , wherein the second portion of the end-effector is coupled to the first portion of the end-effector via four-contact point ball bearings.

6. The method of claim 1 , wherein the second portion of the end-effector is coupled to the first portion of the end-effector via a pair of tapered roller bearings.

7. The method of claim 1 , wherein the second portion of the end-effector is coupled to the first portion of the end-effector via cylindrical roller bearings.

8. The method of claim 1 , wherein the second portion of the end-effector is coupled to the first portion of the end-effector via solid bushings.

9. The method of claim 1 , wherein the method further includes providing a damping force inhibiting rotation of the first portion of the end effector with respect to the second portion of the end effector.

10. A method of grasping an object with an end-effector of a programmable motion device, said method comprising:

moving the end-effector using the programmable motion device to an object to be grasped;

grasping the object with a distal end of the end-effector using a vacuum at the distal end of the end-effector, the distal end of the end-effector including a vacuum cup that is mounted to a first portion of the end effector, the first portion of the end-effector being rotatably coupled via a rotational bearing system to a second portion of the end-effector, the second portion of the end-effector being coupled to the programmable motion device;

lifting the object using the vacuum at a distal end of the vacuum cup of the end-effector, the vacuum being provided through both the first portion of the end-effector and the second portion of the end-effector; and

permitting the first portion of the end-effector and the vacuum cup with the grasped object to rotate via the rotational bearing system with respect to the second portion of the end-effector that is attached to the programmable motion device, the rotation of the first portion of the end-effector with respect to the second portion of the end-effector being responsive to gravitational forces applied to the object as held by the end-effector.

11. The method of claim 10 , wherein the distal end of the end-effector includes a vacuum cup that is provided as a flexible bellows.

12. The method of claim 10 , wherein the vacuum at the distal end of the end-effector is provided by a vacuum source that is remote from the programmable motion device.

13. The method of claim 10 , wherein the rotational bearing system includes radial deep groove ball bearings.

14. The method of claim 10 , wherein the rotational bearing system includes four-contact point ball bearings.

15. The method of claim 10 , wherein the rotational bearing system includes a pair of tapered roller bearings.

16. The method of claim 10 , wherein the rotational bearing system includes cylindrical roller bearings.

17. The method of claim 10 , wherein the rotational bearing system includes solid bushings.

18. The method of claim 10 , wherein the method further includes providing a damping force inhibiting rotation of the first portion of the end effector with respect to the second portion of the end effector.

19. A programmable motion system including an end-effector for grasping and moving objects, said end-effector comprising:

a vacuum cup at a distal end of the end-effector, said end-effector including a first portion that is coupled to the vacuum cup and a second portion that is coupled to the programmable motion system;

a rotational bearing system that is positioned between the first portion of the end-effector and the second portion of the end-effector, the rotational bearing system permitting the first portion of the end-effector to freely rotate with respect to the second portion of the end-effector; and

a vacuum conduit that passes through the rotational bearing system, said vacuum conduit being coupled to a vacuum source and providing a flow of air at a vacuum pressure to the vacuum cup.

20. The programmable motion system of claim 19 , wherein the distal end of the end-effector includes a vacuum cup that is provided as a flexible bellows.

21. The programmable motion system of claim 19 , wherein the vacuum at the vacuum source is remote from the programmable motion system.

22. The programmable motion system of claim 19 , wherein the rotational bearing system includes radial deep groove ball bearings.

23. The programmable motion system of claim 19 , wherein the rotational bearing system includes four-contact point ball bearings.

24. The programmable motion system of claim 19 , wherein the rotational bearing system includes a pair of tapered roller bearings.

25. The programmable motion system of claim 19 , wherein the rotational bearing system includes cylindrical roller bearings.

26. The programmable motion system of claim 19 , wherein the rotational bearing system includes solid bushings.

27. The programmable motion system of claim 19 , wherein the programmable motion system further includes a damping system for providing a damping force inhibiting rotation of the first portion of the end effector with respect to the second portion of the end effector.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 19, 2023
From: WAGNER, THOMAS; AHEARN, KEVIN; COHEN, BENJAMIN; DAWSON-HAGGERTY, MICHAEL; GEYER, CHRISTOPHER; KOLETSCHKA, THOMAS; MARONEY, KYLE; MASON, MATTHEW T.; PRICE, GENE TEMPLE; ROMANO, JOSEPH; SMITH, DANIEL; SRINIVASA, SIDDHARTHA; VELAGAPUDI, PRASANNA; ALLEN, THOMAS
To: BERKSHIRE GREY OPERATING COMPANY, INC.
Reel/Frame 065904/0979 →
Continuity (5)
Continuation 17509473 · Oct 25, 2021
Continuation 16825010 · Mar 20, 2020
Continuation 15912003 · Mar 5, 2018
Provisional Application 62467509 · Mar 6, 2017
Related Publication 20240109185A1 · Apr 4, 2024