Phase Field Theory and Analysis of Pressure-Shear Induced Amorphization and Failure in Boron Carbide Ceramic

A nonlinear continuum phase field theory is developed to describe amorphization of crystalline elastic solids under shear and/or pressure loading. An order parameter describes the local degree of crystallinity. Elastic coefficients can depend on the order parameter, inelastic volume change may accom...

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Main Author: John D. Clayton
Format: Article
Language:English
Published: AIMS Press 2014-07-01
Series:AIMS Materials Science
Subjects:
Online Access:http://www.aimspress.com/Materials/article/178/fulltext.html
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spelling doaj-00621931f8484782b0f89a2c2c3f335e2020-11-24T22:10:07ZengAIMS PressAIMS Materials Science2372-04842014-07-011314315810.3934/matersci.2014.3.14320140302Phase Field Theory and Analysis of Pressure-Shear Induced Amorphization and Failure in Boron Carbide CeramicJohn D. Clayton0Impact Physics Branch, US Army Research Laboratory, Aberdeen MD 21005-5066, USAA nonlinear continuum phase field theory is developed to describe amorphization of crystalline elastic solids under shear and/or pressure loading. An order parameter describes the local degree of crystallinity. Elastic coefficients can depend on the order parameter, inelastic volume change may accompany the transition from crystal to amorphous phase, and transitional regions parallel to bands of amorphous material are penalized by interfacial surface energy. Analytical and simple numerical solutions are obtained for an idealized isotropic version of the general theory, for an element of material subjected to compressive and/or shear loading. Solutions compare favorably with experimental evidence and atomic simulations of amorphization in boron carbide, demonstrating the tendency for structural collapse and strength loss with increasing shear deformation and superposed pressure.http://www.aimspress.com/Materials/article/178/fulltext.htmlceramicsphase transformationsamorphizationboron carbidephase fieldelasticity
collection DOAJ
language English
format Article
sources DOAJ
author John D. Clayton
spellingShingle John D. Clayton
Phase Field Theory and Analysis of Pressure-Shear Induced Amorphization and Failure in Boron Carbide Ceramic
AIMS Materials Science
ceramics
phase transformations
amorphization
boron carbide
phase field
elasticity
author_facet John D. Clayton
author_sort John D. Clayton
title Phase Field Theory and Analysis of Pressure-Shear Induced Amorphization and Failure in Boron Carbide Ceramic
title_short Phase Field Theory and Analysis of Pressure-Shear Induced Amorphization and Failure in Boron Carbide Ceramic
title_full Phase Field Theory and Analysis of Pressure-Shear Induced Amorphization and Failure in Boron Carbide Ceramic
title_fullStr Phase Field Theory and Analysis of Pressure-Shear Induced Amorphization and Failure in Boron Carbide Ceramic
title_full_unstemmed Phase Field Theory and Analysis of Pressure-Shear Induced Amorphization and Failure in Boron Carbide Ceramic
title_sort phase field theory and analysis of pressure-shear induced amorphization and failure in boron carbide ceramic
publisher AIMS Press
series AIMS Materials Science
issn 2372-0484
publishDate 2014-07-01
description A nonlinear continuum phase field theory is developed to describe amorphization of crystalline elastic solids under shear and/or pressure loading. An order parameter describes the local degree of crystallinity. Elastic coefficients can depend on the order parameter, inelastic volume change may accompany the transition from crystal to amorphous phase, and transitional regions parallel to bands of amorphous material are penalized by interfacial surface energy. Analytical and simple numerical solutions are obtained for an idealized isotropic version of the general theory, for an element of material subjected to compressive and/or shear loading. Solutions compare favorably with experimental evidence and atomic simulations of amorphization in boron carbide, demonstrating the tendency for structural collapse and strength loss with increasing shear deformation and superposed pressure.
topic ceramics
phase transformations
amorphization
boron carbide
phase field
elasticity
url http://www.aimspress.com/Materials/article/178/fulltext.html
work_keys_str_mv AT johndclayton phasefieldtheoryandanalysisofpressureshearinducedamorphizationandfailureinboroncarbideceramic
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