A Mathematical Model for Frictional Elastic-Plastic Sphere-on-Flat Contacts at Sliding Incipient

Author:

Chang L.1,Zhang H.1

Affiliation:

1. Department of Mechanical and Nuclear Engineering, The Pennsylvania State University, University Park, PA 16802

Abstract

This paper presents a mathematical model for frictional elastic-plastic sphere-on-flat contacts at sliding incipient. The model is developed based on theoretical work on contact mechanics in conjunction with finite-element results. It incorporates the effects of friction loading on the contact pressure, the mode of deformation, and the area of contact. The shear strength of the contact interface is, in this paper, assumed to be proportional to the contact pressure with a limiting value that is below the bulk shear strength of the sphere. Other plausible interfacial-shear-strength characteristics may also be implemented into the contact model in a similar manner. The model is used to analyze the frictional behavior of a sphere-on-flat contact where the experimental data suggest that the interfacial shear strength is similar in nature to the one implemented in the model. The theoretical results are consistent with the experimental data in all key aspects. This sphere-on-flat contact model may be used as a building block to develop an asperity-based contact model of rough surfaces with friction loading. It may also serve in the modeling of boundary-lubricated sliding contacts where the interfacial shear strength in each micro-contact is coupled with its flash temperature and related to the lubricant/surface physical-chemical behavior.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

Reference22 articles.

1. An Experimental Investigation of Elastic Plastic Contact and Friction of a Sphere on Flat;Levinson

2. Static Friction Coefficient Model for Metallic Rough Surfaces;Chang;ASME J. Tribol.

3. Elastic-Plastic Contact Analysis of a Sphere and a Rigid Flat;Kogut;ASME J. Appl. Mech.

4. A Semi-Analytical Solution for the Sliding Inception of a Spherical Contact;Kogut;ASME J. Tribol.

5. Junction Growth in Metallic Friction: The Role of Combined Stresses and Surface Contamination;Tabor;Proc. R. Soc. London, Ser. A

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