IP Library Granted Patent US 8,551,576
Granted Patent B2
US 8,551,576 · App. 12/784,467 · Granted Oct 8, 2013

Method for controlling a coefficient of friction

Inventors: Gregory Mordukhovich (Bloomfield Hills, MI); Jacob N. Israelachvili (Santa Barbara, CA)
Assignees: GM Global Technology Operations LLC; The Regents of The University of California
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Quick Facts
Patent No.
US 8,551,576
App. No.
12/784,467
Granted
Oct 8, 2013
Kind
B2
Abstract

A method for controlling a coefficient of friction involves applying a magnetic force, an electro-magnetic force, and/or an electrostatic force to nanoparticles disposed on a surface. The method further involves controlling a rolling-to-sliding ratio of the nanoparticles on the surface by i) adjusting a value of the force applied to the nanoparticles, and/or ii) adjusting an orientation of the nanoparticles by adjusting a direction of the force applied to the nanoparticles.

Claims (15)

1. A method for controlling a coefficient of friction, comprising:

providing a plurality of nanoparticles on a surface;

moving the surface having the plurality of nanoparticles thereon;

applying a force to the plurality of nanoparticles on the moving surface, the force being selected from a magnetic force, an electro-magnetic force, an electrostatic force, and combinations thereof; and

controlling a rolling-to-sliding ratio of the plurality of nanoparticles on the moving surface by i) adjusting a value of the force applied to the plurality of nanoparticles relative to a value of tangential forces applied to achieve relative motion of the surface upon which the nanoparticles are provided, and ii) adjusting a direction of the force applied to the plurality of nanoparticles relative to a direction of tangential forces applied to achieve relative motion of the surface upon which the nanoparticles are provided.

2. The method as defined in claim 1 wherein the magnetic force is applied to the plurality of nanoparticles, and wherein each of the plurality of nanoparticles have a nanoparticle core including a ferromagnetic material that is responsive to the applied magnetic force.

3. The method as defined in claim 1 wherein each of the plurality of nanoparticles includes a nanoparticle shell formed from a material exhibiting an adhesiveness ranging from about 3 kT energy per inter-particle interaction to about 20 kT energy per inter-particle interaction, the material being selected from silanes, non-conductive phosphorus-based materials, non-conductive carbon-based surfactants, hydrocarbons, fluorocarbons, or combinations thereof.

4. The method as defined in claim 1 wherein the adjusting of the direction of the applied force affects an angle of the plurality of nanoparticles on the moving surface, the angle corresponding to an angle between a pure rolling state of the nanoparticles and a pure sliding state of the nanoparticles.

5. The method as defined in claim 4 , further comprising maintaining the value of the force applied to the plurality of nanoparticles during the adjusting of the direction of the applied force.

6. The method as defined in claim 1 wherein an anisotropic force is applied to the plurality of nanoparticles, and wherein when the anisotropic force is applied to the plurality of nanoparticles on the moving surface, the anisotropic field concentrating the plurality of nanoparticles at one or more pre-selected areas of the moving surface.

7. The method as defined in claim 1 wherein the adjusting of i) the value of the force, or ii) the direction of the force is based on at least one of a roughness or a topography of the surface.

8. The method as defined in claim 1 , further comprising adjusting the rolling-to-sliding ratio to achieve a controlled shift or slip in a limited slip differential transmission, a torque converter transmission, or a dual clutch transmission.

9. The method as defined in claim 1 wherein controlling includes adjusting both direction and intensity of the applied field.

10. The method as defined in claim 1 wherein the tangential forces applied to achieve relative motion of the surface are friction forces that are opposite to a direction of motion of the nanoparticles during a pure sliding state.

11. The method as defined in claim 1 , further comprising decreasing the coefficient of friction by controlling the rolling-to-sliding ratio so that nanoparticle rolling is greater than nanoparticle sliding.

Assignments (6)
CONFIRMATORY LICENSE Recorded Jun 9, 2016
From: CALIFORNIA, UNIVERSITY OF
To: NAVY, SECRETARY OF THE UNITED STATES OF AMERICA
Reel/Frame 038990/0793 →
RELEASE OF SECURITY INTEREST Recorded Nov 7, 2014
From: WILMINGTON TRUST COMPANY
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 034287/0001 →
CHANGE OF NAME Recorded Feb 10, 2011
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 025781/0333 →
SECURITY AGREEMENT Recorded Nov 8, 2010
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: WILMINGTON TRUST COMPANY
Reel/Frame 025327/0156 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 28, 2010
From: ISRAELACHVILI, JACOB N.
To: THE REGENTS OF THE UNIVERSITY OF CALIFORNIA
Reel/Frame 024459/0785 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 28, 2010
From: MORDUKHOVICH, GREGORY
To: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
Reel/Frame 024459/0787 →
Continuity (1)
Related Publication 20110287986A1 · Nov 24, 2011