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Micromechanics of Materials, with Ap...
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Micromechanics of Materials, with Applications
Record Type:
Language materials, printed : Monograph/item
Title/Author:
Micromechanics of Materials, with Applications/ by Mark Kachanov, Igor Sevostianov.
Author:
Kachanov, Mark.
other author:
Sevostianov, Igor.
Description:
XV, 712 p. 220 illus., 189 illus. in color.online resource. :
Contained By:
Springer Nature eBook
Subject:
Mechanics. -
Online resource:
https://doi.org/10.1007/978-3-319-76204-3
ISBN:
9783319762043
Micromechanics of Materials, with Applications
Kachanov, Mark.
Micromechanics of Materials, with Applications
[electronic resource] /by Mark Kachanov, Igor Sevostianov. - 1st ed. 2018. - XV, 712 p. 220 illus., 189 illus. in color.online resource. - Solid Mechanics and Its Applications,2490925-0042 ;. - Solid Mechanics and Its Applications,215.
preliminary table of contents: Introduction -- Background Results On Elasticity And Conductivity -- Quantitative Characterization Of Microstructures In The Context Of Effective Properties -- Inclusion And Inhomogeneity In An Infinite Space (Eshelby Problems) -- Property Contribution Tensors -- Effective Properties Of Heterogeneous Materials -- Connections Between Elastic And Conductive Properties Of Heterogeneous Materials -- Multiple Cracks: Local Fields And Crack Interactions -- Applications To Specific Materials. .
This book on micromechanics explores both traditional aspects and the advances made in the last 10–15 years. The viewpoint it assumes is that the rapidly developing field of micromechanics, apart from being of fundamental scientific importance, is motivated by materials science applications. The introductory chapter provides the necessary background together with some less traditional material, examining e.g. approximate elastic symmetries, Rice’s technique of internal variables and multipole expansions. The remainder of the book is divided into the following parts: (A) classic results, which consist of Rift Valley Energy (RVE), Hill’s results, Eshelby’s results for ellipsoidal inhomogeneities, and approximate schemes for the effective properties; (B) results aimed at overcoming these limitations, such as volumes smaller than RVE, quantitative characterization of “irregular” microstructures, non-ellipsoidal inhomogeneities, and cross-property connections; (C) local fields and effects of interactions on them; and lastly (D) – the largest section – which explores applications to eight classes of materials that illustrate how to apply the micromechanics methodology to specific materials.
ISBN: 9783319762043
Standard No.: 10.1007/978-3-319-76204-3doiSubjects--Topical Terms:
527684
Mechanics.
LC Class. No.: TA349-359
Dewey Class. No.: 531
Micromechanics of Materials, with Applications
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preliminary table of contents: Introduction -- Background Results On Elasticity And Conductivity -- Quantitative Characterization Of Microstructures In The Context Of Effective Properties -- Inclusion And Inhomogeneity In An Infinite Space (Eshelby Problems) -- Property Contribution Tensors -- Effective Properties Of Heterogeneous Materials -- Connections Between Elastic And Conductive Properties Of Heterogeneous Materials -- Multiple Cracks: Local Fields And Crack Interactions -- Applications To Specific Materials. .
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This book on micromechanics explores both traditional aspects and the advances made in the last 10–15 years. The viewpoint it assumes is that the rapidly developing field of micromechanics, apart from being of fundamental scientific importance, is motivated by materials science applications. The introductory chapter provides the necessary background together with some less traditional material, examining e.g. approximate elastic symmetries, Rice’s technique of internal variables and multipole expansions. The remainder of the book is divided into the following parts: (A) classic results, which consist of Rift Valley Energy (RVE), Hill’s results, Eshelby’s results for ellipsoidal inhomogeneities, and approximate schemes for the effective properties; (B) results aimed at overcoming these limitations, such as volumes smaller than RVE, quantitative characterization of “irregular” microstructures, non-ellipsoidal inhomogeneities, and cross-property connections; (C) local fields and effects of interactions on them; and lastly (D) – the largest section – which explores applications to eight classes of materials that illustrate how to apply the micromechanics methodology to specific materials.
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