IP Library Granted Patent US 9,981,377
Granted Patent B2
US 9,981,377 · App. 14/480,106 · Granted May 29, 2018

Flexible robotic actuators

Inventors: Stephen A. Morin (Arlington, MA); Robert F. Shepherd (Brooktondale, NY); Adam Stokes (Watertown, MA); Filip Ilievski (Santa Clara, CA); Ramses V. Martinez (Somerville, MA); Jamie L. Branch (Topeka, KS); Carina R. Fish (Cambridge, MA); Lihua Jin (Somerville, MA); Rui M. D. Nunes (Somerville, MA); Zhigang Suo (Lexington, MA); George M. Whitesides (Newton, MA)
Assignee: President and Fellows of Harvard College
B25J9/142A47L9/2836B25J9/1075B25J9/1697Y10S901/22Y10T74/20305
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Quick Facts
Patent No.
US 9,981,377
App. No.
14/480,106
Granted
May 29, 2018
Kind
B2
Abstract

Systems and methods for providing flexible robotic actuators are disclosed. Some embodiments of the disclosed subject matter include a soft robot capable of providing a radial deflection motions; a soft tentacle actuator capable of providing a variety of motions and providing transportation means for various types of materials; and a hybrid robotic system that retains desirable characteristics of both soft robots and hard robots. Some embodiments of the disclosed subject matter also include methods for operating the disclosed robotic systems.

Claims (24)

1. A soft robot comprising:

a flexible body having a plurality of embedded fluid channels, wherein at least two of the plurality of embedded fluid channels are arranged concentrically around a central axis of the flexible body; and

a pressurizing inlet coupled to the at least two of the plurality of embedded fluid channels, wherein the pressurizing inlet is configured to receive pressurized fluid to inflate a portion of the at least two of the plurality of embedded fluid channels, thereby causing a radial deflection of the flexible body,

wherein the at least two of the plurality of embedded fluid channels are arranged as concentric circles.

2. The soft robot of claim 1 , wherein the flexible body comprises a strain limiting layer, wherein a tensile modulus of the strain limiting layer is higher than a tensile modulus of the flexible body.

3. The soft robot of claim 2 , wherein the strain limiting layer comprises paper.

4. The soft robot of claim 1 , further comprising a soft chamber disposed above and in sealing contact with the flexible body, wherein the soft chamber comprises a fluid reservoir and a fluid inlet.

5. The soft robot of claim 4 , wherein the soft chamber comprises a cap comprising a cover layer and one or more walls, wherein the one or more walls are attached to the flexible body, and a volume between the cap and the flexible body forms the fluid reservoir.

6. The soft robot of claim 5 , wherein the fluid reservoir is configured to deliver fluid via the fluid inlet when the at least two of the plurality of embedded fluid channels are pressurized.

7. The soft robot of claim 5 , wherein the fluid reservoir is configured to receive fluid via the fluid inlet when the at least two of the plurality of embedded fluid channels are depressurized.

8. A method of receiving or delivering a fluid comprising:

providing a soft robot according to claim 4 ;

providing fluid to the soft chamber via the fluid inlet; and

providing pressurized fluid to the pressurizing inlet to pressurize the at least two of the plurality of embedded fluid channels, thereby expelling fluid housed within the soft chamber via the fluid inlet.

9. The method of claim 8 , further comprising removing the pressurized fluid from the pressurizing inlet to depressurize the at least two of the plurality of embedded fluid channels, thereby inhaling fluid into the soft chamber via the fluid inlet.

10. The method of claim 9 , wherein the soft chamber is configured to accommodate a chemical reagent capable of reaction with a reagent to generate a color.

11. The soft robot of claim 1 , wherein the flexible body is molded using an elastomer.

12. A method of actuating a soft robot, the method comprising:

providing a soft robot according to claim 1 ; and

providing pressurized fluid to the pressurizing inlet to pressurize the at least two of the plurality of embedded fluid channels, thereby causing a radial deflection of the soft robot.

13. A method of gripping a non-porous surface comprising:

providing a soft robot according to claim 1 ;

positioning the soft robot against a non-porous surface; and

providing pressurized fluid to the pressurizing inlet to pressurize the at least two of the plurality of embedded fluid channels, thereby collapsing the soft robot against the non-porous surface to form a suction seal.

Assignments (3)
CONFIRMATORY LICENSE Recorded Feb 12, 2025
From: HARVARD UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 070188/0398 →
CONFIRMATORY LICENSE Recorded Feb 27, 2017
From: HARVARD UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 041820/0522 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 8, 2014
From: BRANCH, JAMIE L.; FISH, CARINA R.; ILIEVSKI, FILIP; JIN, LIHUA; MARTINEZ, RAMSES V.; MORIN, STEPHEN A.; NUNES, RUI; SHEPHERD, ROBERT F.; SOU, ZHIGANG; STOKES, ADAM A.; WHITESIDES, GEORGE M.
To: PRESIDENT AND FELLOWS OF HARVARD COLLEGE
Reel/Frame 033908/0807 →
Continuity (5)
Continuation PCTUS2013032297 · Mar 15, 2013
Provisional Application 61698436 · Sep 7, 2012
Provisional Application 61673003 · Jul 18, 2012
Provisional Application 61615665 · Mar 26, 2012
Related Publication 20150283699A1 · Oct 8, 2015