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The book presents a set of novel, efficient and systematic
concurrent multiscale optimization methods by considering the
distribution of the material in macro-scale and the unit-cell
configuration design in micro-scale simultaneously. Different from
the traditional optimization method that is performed in a single
scale, the proposed methods could generate a great deal of
improvements in structural performance through the multiscale
structure-material concurrent optimum design.The proposed theory
and methods are related to statics, dynamics, thermoelastics and
the coupling of different physical fields. Therefore, it provides a
comprehensive designing scheme when multiple factors are taken into
account. For example, the designing scheme can have a great
significance on enhancing the structural performances under coupled
multi-physical fields, such as load bearing capacity, vibration
resistance ability, and safety under thermal stress and so
on.Several numerical examples are highlighted in this unique volume
based on practical engineering applications. The examples
collectively demonstrate drastically improved designs featuring
excellent unit-cell configuration and highly regular macroscale
material distribution in a variety of industrial applications.
The volume focuses on theoretical and computational approaches and
involves areas such as simulation-based engineering and science,
integrated computational materials engineering, mechanics, material
science, manufacturing processes, and other specialized areas. Most
importantly, the state-of-the-art progress in developing predictive
theoretical, computational and experimental approaches for additive
manufacturing is summarized.
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