Modeling of Flash Temperature for Elastic Sliding Contact of Single Micro-Asperity Pair

Author:

Wu Zhe1,Zhang Yuying1,Xu Yang1,Jie Desuan2,Jackson Robert L.3

Affiliation:

1. Hefei University of Technology School of Mechanical Engineering, , No. 193, Tunxi Road, Baohe District, Hefei, Anhui 230009 , China

2. Hefei University of Technology School of Automotive and Transportation Engineering, , No. 193, Tunxi Road, Baohe District, Hefei, Anhui 230009 , China

3. Auburn University Department of Mechanical Engineering, , Auburn, AL 36849-5341

Abstract

Abstract The flash temperature in the sliding frictional contact between micro-asperities has an important influence on the frictional characteristics of advanced functional ceramics. In this paper, the elastic sliding frictional contact of a three-dimensional micron/submicron scale asperity pair is considered. A three-dimensional finite element model (FEM) for fully coupled thermal-stress analysis of sliding contact of SiC/Al2O3 asperity pair is developed. An empirical correction factor for contact characteristics is obtained based on the FEM results. The FEM results show that, compared with the Hertz theoretical solution, the contact area becomes smaller and the contact pressure becomes larger in the case of sliding contact with large deformation. The flash temperature has a negative correlation with the composite radius of the asperity pair and a positive correlation with the interference depth and sliding speed. Using Hertz theory, a parabolic distributed heat source, the Fourier heat conduction law, and the newly proposed correction factor, a semi-analytical model of flash temperature during the elastic frictional sliding between two single asperities is established. The relative difference between the flash temperature predicted by the established semi-analytical model and the FEM model is less than 1.2%. The relative difference decreases with the increasing interference depth. This work is a valuable reference for studying the frictional heat-related issues of advanced ceramics.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Anhui Province

Publisher

ASME International

Subject

Surfaces, Coatings and Films,Surfaces and Interfaces,Mechanical Engineering,Mechanics of Materials

Reference55 articles.

1. Tribological Behavior of Alumina Ceramics With Nano-TiO2 as a Sintering Aid in Non-Conformal Contact;Haldar;ASME J. Tribol.,2022

2. Water Lubrication of Ni/Al2O3 Composite Coatings Sliding With Si3N4;Huang;ASME J. Tribol.,2020

3. An Electron Microscopy Study of Worn Ceramic Surfaces;Blomberg;Tribol. Int.,1993

4. Theoretical Studies of Temperature Rise at Surfaces of Actual Contact Under Oiliness Lubrication Conditions;Blok;Inst. Mech. Eng.,1937

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