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Optimal Bounds and Microgeometries for Elastic Two-Phase Composites

M. Avellaneda

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Source: Crossref

Published: Dec 1, 1987

DOI: 10.1137/0147082

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Source abstract

Consider two isotropic, linearly elastic materials with elasticity tensors C1C_1 , C2C_2 and assume C1<C2C_1 < C_2 . We prove that the class of effective tensors of composites built from these materials with given volume fractions that are invariant under a given symmetry group is such that each of its elements is bounded above and below by tensors in the same class corresponding to finite-rank laminates. This implies that for any imposed uniform strain or stress field, optimal bounds on the effective strain or stress energy per unit volume are attained by finite-rank laminates. Explicit bounds on the strain energy, with no symmetry assumptions, are given in dimensions 2 and 3. These bounds are more stringent than the classical Voigt–Reuss bounds. Finally, explicit bounds and microgeometries are given for the effective moduli of composites with cubic symmetry.

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Optimal Bounds and Microgeometries for Elastic Two-Phase Composites — Mathematical Frontier Network