Computational Methods for Microstructure-Property Relationships

Computational Methods for Microstructure-Property Relationships
Author: Somnath Ghosh
Publisher: Springer Science & Business Media
Total Pages: 669
Release: 2010-11-17
Genre: Science
ISBN: 1441906436


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Computational Methods for Microstructure-Property Relationships introduces state-of-the-art advances in computational modeling approaches for materials structure-property relations. Written with an approach that recognizes the necessity of the engineering computational mechanics framework, this volume provides balanced treatment of heterogeneous materials structures within the microstructural and component scales. Encompassing both computational mechanics and computational materials science disciplines, this volume offers an analysis of the current techniques and selected topics important to industry researchers, such as deformation, creep and fatigue of primarily metallic materials. Researchers, engineers and professionals involved with predicting performance and failure of materials will find Computational Methods for Microstructure-Property Relationships a valuable reference.


Computational Methods for Microstructure-Property Relationships
Language: en
Pages: 669
Authors: Somnath Ghosh
Categories: Science
Type: BOOK - Published: 2010-11-17 - Publisher: Springer Science & Business Media

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Computational Methods for Microstructure-Property Relationships introduces state-of-the-art advances in computational modeling approaches for materials structur
Computational Methods for Microstructure-Property
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Microstructure-Property Optimization in Metallic Glasses
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This thesis consists of an in-depth study of investigating microstructure-property relationships in bulk metallic glasses using a novel quantitative approach by
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Type: BOOK - Published: 2017-11-10 - Publisher: Springer

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This book provides state-of-the-art computational approaches for accelerating materials discovery, synthesis, and processing using thermodynamics and kinetics.
Microstructure-property Relationships in Digitally Generated Three-dimensional, Two-phase, Liquid Phase Sintered Materials
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