Field Theory of Multiscale Plasticity

Author:   Tadeshi Hasebe (Kobe University, Japan)
Publisher:   Cambridge University Press
ISBN:  

9781108836609


Pages:   860
Publication Date:   04 January 2024
Format:   Hardback
Availability:   In stock   Availability explained
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Field Theory of Multiscale Plasticity


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Overview

This unique book provides a concise and systematic treatment of foundational material on dislocations and metallurgy and an up-to-date discussion of multiscale modeling of materials, which ultimately leads to the field theory of multiscale plasticity (FTMP). Unlike conventional continuum models, this approach addresses the evolving inhomogeneities induced by deformation, typically as dislocation substructures like dislocation cells, as well as their interplay at more than one scale. This is an impressively visual text with many and varied examples and viewgraphs. In particular, the book presents a feasible constitutive model applicable to crystal plasticity-based finite element method (FEM) simulations. It will be an invaluable resource, accessible to undergraduate and graduate students as well as researchers in mechanical engineering, solid mechanics, applied physics, mathematics, materials science, and technology.

Full Product Details

Author:   Tadeshi Hasebe (Kobe University, Japan)
Publisher:   Cambridge University Press
Imprint:   Cambridge University Press
Dimensions:   Width: 18.40cm , Height: 5.00cm , Length: 26.00cm
Weight:   1.730kg
ISBN:  

9781108836609


ISBN 10:   1108836607
Pages:   860
Publication Date:   04 January 2024
Audience:   College/higher education ,  Tertiary & Higher Education
Format:   Hardback
Publisher's Status:   Active
Availability:   In stock   Availability explained
We have confirmation that this item is in stock with the supplier. It will be ordered in for you and dispatched immediately.

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Tadashi Hasebe is Associate Professor of Mechanical Engineering at Kobe University, Japan and is an expert in a very wide range of engineering fields. More specifically, in metallic materials, including high-temperature strength, impact engineering, plastic forming technology, high-energy rate forming, theory of elasto-plasticity, and micromechanics. Professor Hasebe likes to incorporate experimental, mathematical, and numerical perspectives in his works.

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