Homogenization of Cahn-Hilliard-type equations via evolutionary Gamma-convergence

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Date
2015
Volume
2114
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Journal
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Publisher
Berlin : Weierstraß-Institut für Angewandte Analysis und Stochastik
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Abstract

In this paper we discuss two approaches to evolutionary Gamma-convergence of gradient systems in Hilbert spaces. The formulation of the gradient system is based on two functionals, namely the energy functional and the dissipation potential, which allows us to employ Gamma-convergence methods. In the first approach we consider families of uniformly convex energy functionals such that the limit passage of the time-dependent problems can be based on the theory of evolutionary variational inequalities as developed by Daneri and Savare 2010. The second approach uses the equivalent formulation of the gradient system via the energy-dissipation principle and follows the ideas of Sandier and Serfaty 2004. We apply both approaches to rigorously derive homogenization limits for Cahn-Hilliard-type equations. Using the method of weak and strong two-scale convergence via periodic unfolding, we show that the energy and dissipation functionals Gamma-converge. In conclusion, we will give specific examples for the applicability of each of the two approaches.

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Keywords
Evolutionary Gamma-convergence, gradient systems, omogenization, Cahn–Hilliard equation, evolutionary variational inequality, energy-dissipation principle, two-scale convergence
Citation
Liero, M., & Reichelt, S. (2015). Homogenization of Cahn-Hilliard-type equations via evolutionary Gamma-convergence (Vol. 2114). Berlin : Weierstraß-Institut für Angewandte Analysis und Stochastik.
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