Fourier Variant Homogenization Treatment of Single Impulse Boundary Effect Behaviour

Author:

Kula Dorota1,Wierzbicki Ewaryst1,Witkowska-Dobrev Joanna1,Wodzyński Łukasz1

Affiliation:

1. Warsaw University of Life Sciences , Faculty of Civil and Enviromental Engineering, Department of Civil Engineering , Warsaw , Poland

Abstract

Abstract Boundary effect behavior understood as near-boundary suppression of boundary fluctuation loads is described in various ways depending on the mathematical representation of solutions and the type of the center. In the case of periodic composites, the homogenization method is decisive here. In the framework of the Tolerance Averaging Approach, developed by prof. Cz. Woźniak leading to an approximate model of phenomena related to periodic composites this effect is described by a homogeneous part of differential equation for fluctuation amplitudes and usually this approximate description of the boundary effect behavior is restricted to a single fluctuation. In this paper, contrary to the previous elaborations, the boundary effect is developed in the variant of the tolerance thermal conductivity model in which the temperature field is represented by the Fourier expansions composed by an average temperature with infinite number of Fourier terms imposed on the average temperature as tolerance fluctuation suppressed in the framework of the boundary effect.

Publisher

Walter de Gruyter GmbH

Subject

General Medicine

Reference16 articles.

1. Ariault, J.L.: Effective macroscopic description for heat conduction in periodic composites, International Journal of Heat and Mass Transfer, 26, 6, 861–869, DOI: 10.1016/S0017-9310(83)80110-0, 1983.

2. Bensoussan, A., Lions, J.-L. and Papanicolaou, G.: Asymptotic analysis for periodic structures, American Math. Soc., ISBN-10: 0-8218-5324-4, ISBN-13: 978-08218-5324-5, 2011.

3. Woźniak, Cz. and Wierzbicki, E.: Averaging techniques In thermomechanics of composite solids, Tolerance averaging versus homogenization, Technical University of Częstochowa Press, 2000.

4. Woźniak, Cz. (ed.): Thermomechanics of microheterogeneous solids and structures. Tolerance averaging approach, Lodz University of Technology Press, 2009.

5. Woźniak, Cz. (ed.): Developments In Mathematical Modeling and Analysis of Microstructured Media, Silesian University Press, Gliwice, 2010.

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