Engineering Transactions, 71, 1, pp. 111–140, 2023
10.24423/EngTrans.2460.20230214

On Spatial vs Referential Isotropic Fourier’s Law in Finite Deformation Thermomechanics

Balbina WCISŁO
Cracow University of Technology
Poland

Jerzy PAMIN
Cracow University of Technology
Poland

Lars ROSE
TU Dortmund University
Germany

Andreas MENZEL
TU Dortmund University/Lund University
Germany

This paper deals with the issue of isotropic heat conduction in thermomechanical largestrain problems. The aim of the paper is a comparison of different variants of Fourier’s law used in the literature for a large strain problem. In particular, Fourier’s law is specified either in the reference or in the deformed configuration by using different options of heat flux density vectors which are presented and discussed. The paper includes working examples to illustrate the presented theory. Moreover, different formulations of Fourier’s law are tested by using the finite element method to investigate the influence of the applied variant on simulation results. The analysis reveals that in a strongly deformed area the temperature distribution varies.

Keywords: heat conduction; isotropic Fourier’s law; large strains; thermo-mechanical coupling
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Copyright © The Author(s). This is an open-access article distributed under the terms of the Creative Commons Attribution-ShareAlike 4.0 International (CC BY-SA 4.0).

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DOI: 10.24423/EngTrans.2460.20230214