Evaluation of Thermal Contact Resistance at the Interface of Dissimilar Materials

Author:

Fukuoka Toshimichi1,Nomura Masataka2

Affiliation:

1. Professor Kobe University, Graduate School of Maritime Sciences, 5-1-1, Fukaeminami, Higashinada, Kobe, 658-0022, Japan e-mail:

2. Associate Professor Kobe University, Graduate School of Maritime Sciences e-mail:

Abstract

When jointed portions of structures and machines are subjected to thermal loads, various problems and troubles occur due to the difference in thermal expansions between mating parts. In order to accurately analyze thermal and mechanical behaviors of the joints, the effect of thermal contact resistance must be taken into account. In this paper, thermal contact coefficient, which is the reciprocal of thermal contact resistance, at the interface of dissimilar materials is quantitatively measured by infrared thermography. The target materials are common engineering materials such as carbon steel, stainless steel and aluminum alloy. It has been shown in the previous papers that there exists a significant directional effect in thermal contact coefficients when the mating surface is composed of different materials. That is, thermal contact coefficient has a larger value when the heat flows from the material with lower thermal conductivity to the one with higher thermal conductivity. The effects of contact pressure and surface roughness on the coefficient are also evaluated in this work. Using the measured data, an empirical equation to estimate thermal contact coefficient is proposed, for the purpose of engineering applications, which correlates closely with the experimental data.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Safety, Risk, Reliability and Quality

Reference8 articles.

1. Evaluations of Thermal Contact Resistance in an Atmospheric Environment,1999

2. Finite Element Analysis of the Thermal and Mechanical Behaviors of a Bolted Joint;ASME J. Pressure Vessel Technol.,2005

3. Analysis of Heat Flow Around Bolted Joints and Variations of Axial Bolt Force;ASME J. Pressure Vessel Technol.,2009

4. Finite Element Simulation of the Tightening Process of Bolted Joint With a Bolt Heater;ASME J. Pressure Vessel Technol.,2002

5. Heat Transfer at the Interface of Dissimilar Metals—The Influence of Thermal Strain;Int. J. Heat Mass Transfer,1966

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