IP Library Granted Patent US 11,613,024
Granted Patent B2
US 11,613,024 · App. 17/086,818 · Granted Mar 28, 2023

Gripper mechanism

Inventor: Brian Dellon (West Roxbury, MA)
Assignee: Boston Dynamics, Inc.
B25J15/0028B25J15/0042
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Quick Facts
Patent No.
US 11,613,024
App. No.
17/086,818
Granted
Mar 28, 2023
Kind
B2
Abstract

A gripper mechanism includes a pair of gripper jaws, a linear actuator, and a rocker bogey. The linear actuator drives a first gripper jaw to move relative to a second gripper jaw. Here, the linear actuator includes a screw shaft and a drive nut where the drive nut includes a protrusion having protrusion axis expending along a length of the protrusion. The protrusion axis is perpendicular to an actuation axis of the linear actuator along a length of the screw shaft. The rocker bogey is coupled to the drive nut at the protrusion to form a pivot point for the rocker bogey and to enable the rocker bogey to pivot about the protrusion axis when the linear actuator drives the first gripper jaw to move relative to the second gripper jaw.

Claims (34)

1. A robot comprising:

a body;

an arm coupled to the body; and

a gripper mechanism coupled to the arm, the gripper mechanism comprising:

a pair of gripper jaws;

a linear actuator driving a first gripper jaw to move relative to a second gripper jaw, the linear actuator comprising a screw shaft and a drive nut, the drive nut comprising a protrusion having a protrusion axis extending along a length of the protrusion, the protrusion axis perpendicular to an actuation axis of the linear actuator along a length of the screw shaft; and

a rocker bogey coupled to the drive nut at the protrusion to form a pivot point for the rocker bogey and to enable the rocker bogey to pivot about the protrusion axis when the linear actuator drives the first gripper jaw to move relative to the second gripper jaw.

2. The robot of claim 1 , further comprising a carrier coupled to the drive nut and at least partially enclosing the drive nut, the carrier comprising an anti-rotation mechanism configured to constrain the rocker bogey when the rocker bogey pivots about the pivot point.

3. The robot of claim 1 , further comprising a cam coupling the linear actuator to the first gripper jaw, the cam comprising an involute slot configured to receive a portion of the rocker bogey.

4. The robot of claim 1 , further comprising:

a carrier coupled to the drive nut and at least partially enclosing the drive nut, the carrier comprising an anti-rotation mechanism and a hard stop shaft, the anti-rotation mechanism configured to constrain the rocker bogey when the rocker bogey pivots about the pivot point; and

a cam coupling the linear actuator to the first gripper jaw, the cam comprising an involute slot and a hardstop slot, the involute slot configured to receive a portion of the rocker bogey, the hard stop slot configured to receive the hard stop shaft of the carrier.

5. The robot of claim 4 , wherein the hardstop slot has a slot length corresponding to a range of motion for the first jaw to move relative to the second jaw.

6. The robot of claim 1 , wherein the drive nut further comprises an arcuate top surface facing the rocker bogey, the arcuate top surface shaped to receive a bottom surface of the rocker bogey facing the drive nut.

7. The robot of claim 6 , wherein the rocker bogey couples to the protrusion by mounting on the protrusion, and wherein an interface between the arcuate top surface of the drive nut and the bottom surface of the rocker bogey comprises a gap when the rocker bogey is in a neutral position.

8. The robot of claim 7 , wherein, in a biased position, the rocker bogey contacts at least a portion of the arcuate top surface of the drive nut, the biased position resulting from the rocker bogey pivoting about the protrusion.

9. The robot of claim 1 , wherein the second gripper jaw is fixed.

10. The robot of claim 1 , further comprising four legs coupled to the body.

11. The robot of claim 1 , further comprising a gripper controller configured to control motion of the linear actuator along the screw shaft to drive the first gripper jaw to move relative to the second gripper jaw, and wherein the rocker bogey pivots about the protrusion axis independent of the motion control of the linear actuator by the gripper controller.

12. A system comprising:

a pair of gripper jaws;

a linear actuator driving a first gripper jaw to move relative to a second gripper jaw, the linear actuator comprising a screw shaft and a drive nut, the drive nut comprising a protrusion having a protrusion axis extending along a length of the protrusion, the protrusion axis perpendicular to an actuation axis of the linear actuator along a length of the screw shaft; and

a rocker bogey coupled to the drive nut at the protrusion to form a pivot point for the rocker bogey and to enable the rocker bogey to pivot about the protrusion axis when the linear actuator drives the first gripper jaw to move relative to the second gripper jaw.

13. The system of claim 12 , further comprising a carrier coupled to the drive nut and at least partially enclosing the drive nut, the carrier comprising an anti-rotation mechanism configured to constrain the rocker bogey when the rocker bogey pivots about the pivot point.

14. The system of claim 12 , further comprising a cam coupling the linear actuator to the first gripper jaw, the cam comprising an involute slot configured to receive a portion of the rocker bogey.

15. The system of claim 12 , further comprising:

a carrier coupled to the drive nut and at least partially enclosing the drive nut, the carrier comprising an anti-rotation mechanism and a hard stop shaft, the anti-rotation mechanism configured to constrain the rocker bogey when the rocker bogey pivots about the pivot point; and

a cam coupling the linear actuator to the first gripper jaw, the cam comprising an involute slot and a hardstop slot, the involute slot configured to receive a portion of the rocker bogey, the hard stop slot configured to receive the hard stop shaft of the carrier.

16. The system of claim 15 , wherein the hardstop slot has a length corresponding to a range of motion for the first jaw to move relative to the second jaw.

17. The system of claim 12 , wherein the drive nut further comprises an arcuate top surface facing the rocker bogey, the arcuate top surface shaped to receive a bottom surface of the rocker bogey facing the drive nut.

18. The system of claim 17 , wherein the rocker bogey couples to the protrusion by mounting on the protrusion, and wherein an interface between the arcuate top surface of the drive nut and the bottom surface of the rocker bogey comprises a gap when the rocker bogey is in a neutral position.

19. The system of claim 18 , wherein, in a biased position, the rocker bogey contacts at least a portion of the arcuate top surface of the drive nut, the biased position resulting from the rocker bogey pivoting about the protrusion away from the neural position.

20. The system of claim 12 , wherein the rocker bogey is configured to pivot about the protrusion axis independently of linear motion of the linear actuator along the screw shaft.

21. The system of claim 12 , wherein the second jaw is fixed.

Assignments (3)
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATIONS NUMBERS 63127573 AND 11/302759 AND THE CITY OF THE ASSIGNEE PREVIOUSLY RECORDED AT REEL: 057111 FRAME: 0202. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Oct 27, 2021
From: BOSTON DYNAMICS, INC.
To: BOSTON DYNAMICS, INC.
Reel/Frame 057964/0415 →
CHANGE OF NAME Recorded Oct 5, 2021
From: BOSTON DYNAMICS, INC.
To: BOSTON DYNAMICS, INC.
Reel/Frame 057711/0202 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 12, 2020
From: DELLON, BRIAN
To: BOSTON DYNAMICS, INC.
Reel/Frame 054344/0973 →
Continuity (2)
Provisional Application 63080409 · Sep 18, 2020
Related Publication 20220088797A1 · Mar 24, 2022