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Micromechanics of Composites: Multipole Expansion Approach, Second Edition outlines substantial recent progress in the development of the multipole expansion method and focuses on its application to actual micromechanical problems. The book covers micromechanics topics such as conductivity and elasticity of particulate and fibrous composites, including those with imperfect and partially debonded interfaces, nanocomposites, cracked solids, and more. Complete analytical solutions and accurate numerical data are presented in a unified manner for the multiple inhomogeneity models of finite, semi-, and infinite heterogeneous solids. This new edition has been updated to include the theories and techniques of the multipole expansion method. Two entirely new chapters covering the conductivity and elasticity of composites with ellipsoidal inhomogeneities and anisotropic constituents have been added. A special emphasis is made on the heterogeneous solids with imperfect interfaces, including the nanoporous and nanocomposite materials.
Micromechanics of Composites: Multipole Expansion Approach is
the first book to introduce micromechanics researchers to a more
efficient and accurate alternative to computational micromechanics,
which requires heavy computational effort and the need to extract
meaningful data from a multitude of numbers produced by finite
element software code. In this book Dr. Kushch demonstrates the
development of the multipole expansion method, including recent new
results in the theory of special functions and rigorous convergence
proof of the obtained series solutions. The complete analytical
solutions and accurate numerical data contained in the book have
been obtained in a unified manner for a number of the multiple
inclusion models of finite, semi- and infinite heterogeneous
solids. Contemporary topics of micromechanics covered in the book
include composites with imperfect and partially debonded interface,
nanocomposites, cracked solids, statistics of the local fields, and
brittle strength of disordered composites. Provides researchers with a reliable theoretical framework for developing the micromechanical theories of a composite s strength, brittle/fatigue damage development and other properties Includes a large amount of highly accurate numerical data and plots for a variety of model problems, serving as a benchmark for testing the applicability of existing approximate models and accuracy of numerical solutions "
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