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The physics of large deformation of crystalline solids

Historically, a major problem for the study of the large deformation of crystalline solids has been the apparent lack of unity in experimentally determined stress-strain functions. The writer's discovery in 1949 of the unexpectedly high velocity of incremental loading waves in pre-stressed larg...

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Autor principal: Bell, James F
Lenguaje:eng
Publicado: Springer 1968
Materias:
Acceso en línea:https://dx.doi.org/10.1007/978-3-642-88440-5
http://cds.cern.ch/record/2006303
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author Bell, James F
author_facet Bell, James F
author_sort Bell, James F
collection CERN
description Historically, a major problem for the study of the large deformation of crystalline solids has been the apparent lack of unity in experimentally determined stress-strain functions. The writer's discovery in 1949 of the unexpectedly high velocity of incremental loading waves in pre-stressed large deformation fields emphasized to him the pressing need for the independent, systematic experimental study of the subject, to provide a firm foundation upon which physically plausible theories for the finite deformation of crystalline solids could be constructed. Such a study undertaken by the writer at that time and continued uninterruptedly to the present, led in 1956 to the development of the diffraction grating experiment which permitted, for the first time, the optically accurate determination of the strain-time detail of non-linear finite amplitude wave fronts propagating into crystalline solids whose prior history was precisely known. These experimental diffraction grating studies during the past decade have led to the discovery that the uniaxial stress-strain functions of 27 crystalline solids are unified in a single, generalized stress-strain function which is described, much of it hitherto unpublished, in the present monograph. The detailed study of over 2,000 polycrystal and single crystal uni­ axial stress experiments in 27 crystalline solids, in terms of the variation of a large number of pertinent parameters, has provided new unified pat­ terns of understanding which, it is hoped, will be of interest and value to theorists and experimentalists alike.
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spelling cern-20063032021-04-21T20:22:59Zdoi:10.1007/978-3-642-88440-5http://cds.cern.ch/record/2006303engBell, James FThe physics of large deformation of crystalline solidsMathematical Physics and MathematicsHistorically, a major problem for the study of the large deformation of crystalline solids has been the apparent lack of unity in experimentally determined stress-strain functions. The writer's discovery in 1949 of the unexpectedly high velocity of incremental loading waves in pre-stressed large deformation fields emphasized to him the pressing need for the independent, systematic experimental study of the subject, to provide a firm foundation upon which physically plausible theories for the finite deformation of crystalline solids could be constructed. Such a study undertaken by the writer at that time and continued uninterruptedly to the present, led in 1956 to the development of the diffraction grating experiment which permitted, for the first time, the optically accurate determination of the strain-time detail of non-linear finite amplitude wave fronts propagating into crystalline solids whose prior history was precisely known. These experimental diffraction grating studies during the past decade have led to the discovery that the uniaxial stress-strain functions of 27 crystalline solids are unified in a single, generalized stress-strain function which is described, much of it hitherto unpublished, in the present monograph. The detailed study of over 2,000 polycrystal and single crystal uni­ axial stress experiments in 27 crystalline solids, in terms of the variation of a large number of pertinent parameters, has provided new unified pat­ terns of understanding which, it is hoped, will be of interest and value to theorists and experimentalists alike.Springeroai:cds.cern.ch:20063031968
spellingShingle Mathematical Physics and Mathematics
Bell, James F
The physics of large deformation of crystalline solids
title The physics of large deformation of crystalline solids
title_full The physics of large deformation of crystalline solids
title_fullStr The physics of large deformation of crystalline solids
title_full_unstemmed The physics of large deformation of crystalline solids
title_short The physics of large deformation of crystalline solids
title_sort physics of large deformation of crystalline solids
topic Mathematical Physics and Mathematics
url https://dx.doi.org/10.1007/978-3-642-88440-5
http://cds.cern.ch/record/2006303
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