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Inverse approach for the pressure, temperature, and pressure‐viscosity index determination in TEHL of line contacts

Li‐Ming Chu (Department of Mechanical and Automation Engineering, I‐Shou University, Kaohsiung, Taiwan, Republic of China)
Hsiang‐Chen Hsu (Department of Mechanical and Automation Engineering, I‐Shou University, Kaohsiung, Taiwan, Republic of China)
Jaw‐Ren Lin (Department of Mechanical Engineering, Taoyuan Innovation Institute of Technology, Jhongli City, Taiwan, Republic of China)
Yuh‐Ping Chang (Department of Mechanical Engineering, Kun Shan University, Tainan, Taiwan, Republic of China)

Industrial Lubrication and Tribology

ISSN: 0036-8792

Article publication date: 10 August 2012

203

Abstract

Purpose

The purpose of this paper is to describe an inverse approach to estimate the pressure distribution, temperature distribution, and pressure‐viscosity index (z) in a thermal elastohydrodynamic lubrication (TEHL) line contact.

Design/methodology/approach

Once the film thickness is given, the pressure distribution can be calculated using the inverse approach. Subsequently, thermal expansivity and temperature‐viscosity coefficient of lubricant are given, and then the z is guessed initially. The Gauss‐Seidel iteration is employed to calculate the temperature distribution from the rheology, energy, and surface temperature equations. In order to increase the algorithm stability, the least‐squares method must be employed to calculate the optimum value of the z in the computational domain. Furthermore, the pressure‐viscosity index must be updated by the iteration method to calculate accurate temperature distribution and apparent viscosity until convergence.

Findings

This approach presents a smooth curve of the pressure and temperature distributions with the measurement error from the resolution in the film thickness measurement and z value. Furthermore, this approach still provides a superior solution in apparent viscosity, whereas the direct method provides a much larger error in apparent viscosity.

Originality/value

The paper describes an inverse approach to estimate the pressure distribution, temperature distribution, and pressure‐viscosity index in a TEHL line contact. This approach overcomes the problems of pressure and temperature rise fluctuations and generates accurate results of pressure and temperature distribution from a small number of measured points of film thickness, which also saves computing time. Furthermore, this approach still provides a superior solution in apparent viscosity.

Keywords

Citation

Chu, L., Hsu, H., Lin, J. and Chang, Y. (2012), "Inverse approach for the pressure, temperature, and pressure‐viscosity index determination in TEHL of line contacts", Industrial Lubrication and Tribology, Vol. 64 No. 5, pp. 294-302. https://doi.org/10.1108/00368791211249683

Publisher

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Emerald Group Publishing Limited

Copyright © 2012, Emerald Group Publishing Limited

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