Transient Thermal Effects and Heat Partition in Sliding Contacts

Author:

Bosman R.1,de Rooij M. B.1

Affiliation:

1. Department of Engineering Technology, Laboratory for Surface Technology and Tribology, University of Twente, P.O Box 217, 7500 AE Enschede, The Netherlands

Abstract

In tribological applications, calculating the contact temperature between contacting surfaces makes it possible to estimate lubricant failure and effectiveness, material failure, and other phenomena. The contact temperature can be divided into two scales: the macroscopic and the microscopic scales. In this article, a semi-analytical transient temperature model is presented, which can be used at both scales. The general theory is presented here and used to calculate the contact temperatures of single micro- and macrocontacts. For the steady state situation, the results obtained are in good agreement with those found in literature. Further, it is shown that the simplification of modeling a microcontact as an equivalent square uniform heat source to simplify the calculation of the maximum temperature is justified in the fully plastic regime. The partition is calculated by setting a continuity condition on the temperature field over the contact. From the results, it can be concluded that at low sliding velocities the steady state assumption, which is often used for microcontacts, is correct. However, at higher sliding velocities, the microcontact is not in the steady state and transient calculation methods are advised.

Publisher

ASME International

Subject

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

Reference24 articles.

1. Drogen, M. , 2005, “The Transition to Adhesive Wear of Lubricated Concentrated Contacts,” Ph.D. thesis, University of Twente, Enschede, The Netherlands.

2. On the Distribution of Friction Induced Heat in the Dry Sliding of Metallic Solid Pairs;Abdel-Aal;Int. Commun. Heat Mass Transfer

3. Thermal Compatibility of Dry Sliding Tribo-Specimens;Abdel-Aal;Wear

4. Temperature Maps of Frictional Heating in Dry Sliding;Ashby;Tribology Trans.

5. Theoretical Study of Temperature Rise at Surfaces of Actual Contact Under Oiliness Conditions;Blok

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