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Nonlinear elastic and inelastic mode...
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Clayton, John D.
Nonlinear elastic and inelastic models for shock compression of crystalline solids
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Nonlinear elastic and inelastic models for shock compression of crystalline solidsby John D. Clayton.
作者:
Clayton, John D.
出版者:
Cham :Springer International Publishing :2019.
面頁冊數:
xi, 483 p. :ill. (some col.), digital ;24 cm.
Contained By:
Springer Nature eBook
標題:
CrystalsMechanical properties.
電子資源:
https://doi.org/10.1007/978-3-030-15330-4
ISBN:
9783030153304$q(electronic bk.)
Nonlinear elastic and inelastic models for shock compression of crystalline solids
Clayton, John D.
Nonlinear elastic and inelastic models for shock compression of crystalline solids
[electronic resource] /by John D. Clayton. - Cham :Springer International Publishing :2019. - xi, 483 p. :ill. (some col.), digital ;24 cm. - Shock wave and high pressure phenomena,2197-9529. - Shock wave and high pressure phenomena..
Chapter1: Introduction -- Chapter2: Shock Physics Fundamentals -- Part I: Nonlinear Elasticity and Equations of State -- Chapter3: Lagrangian Formulation -- Chapter4: Eulerian Formulation -- Chapter5: Logarithmic Formulation -- Chapter6: Equations of State -- Part II: Inelasticity: Plasticity, Twinning, Fracture, and Flow -- Chapter7: Dislocation Plasticity in Single Crystals -- Chapter8: Shock Compression of Ductile Polycrystals -- Chapter9: Deformation Twinning in Single Crystals -- Chapter10: Fracture and Flow in Brittle Solids -- Part III Internal Structure: Differential-Geometric Modeling -- Chapter11: Finsler-Geometric Modeling of Structural Changes in Solids.
This book describes thermoelastic and inelastic deformation processes in crystalline solids undergoing loading by shock compression. Constitutive models with a basis in geometrically nonlinear continuum mechanics supply these descriptions. Large deformations such as finite strains and rotations, are addressed. The book covers dominant mechanisms of nonlinear thermoelasticity, dislocation plasticity, deformation twinning, fracture, flow, and other structure changes. Rigorous derivations of theoretical results are provided, with approximately 1300 numbered equations and an extensive bibliography of over 500 historical and modern references spanning from the 1920s to the present day. Case studies contain property data, as well as analytical, and numerical solutions to shock compression problems for different materials. Such materials are metals, ceramics, and minerals, single crystalline and polycrystalline. The intended audience of this book is practicing scientists (physicists, engineers, materials scientists, and applied mathematicians) involved in advanced research on shock compression of solid materials.
ISBN: 9783030153304$q(electronic bk.)
Standard No.: 10.1007/978-3-030-15330-4doiSubjects--Topical Terms:
810152
Crystals
--Mechanical properties.
LC Class. No.: QD931 / .C53 2019
Dewey Class. No.: 548.8
Nonlinear elastic and inelastic models for shock compression of crystalline solids
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Chapter1: Introduction -- Chapter2: Shock Physics Fundamentals -- Part I: Nonlinear Elasticity and Equations of State -- Chapter3: Lagrangian Formulation -- Chapter4: Eulerian Formulation -- Chapter5: Logarithmic Formulation -- Chapter6: Equations of State -- Part II: Inelasticity: Plasticity, Twinning, Fracture, and Flow -- Chapter7: Dislocation Plasticity in Single Crystals -- Chapter8: Shock Compression of Ductile Polycrystals -- Chapter9: Deformation Twinning in Single Crystals -- Chapter10: Fracture and Flow in Brittle Solids -- Part III Internal Structure: Differential-Geometric Modeling -- Chapter11: Finsler-Geometric Modeling of Structural Changes in Solids.
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This book describes thermoelastic and inelastic deformation processes in crystalline solids undergoing loading by shock compression. Constitutive models with a basis in geometrically nonlinear continuum mechanics supply these descriptions. Large deformations such as finite strains and rotations, are addressed. The book covers dominant mechanisms of nonlinear thermoelasticity, dislocation plasticity, deformation twinning, fracture, flow, and other structure changes. Rigorous derivations of theoretical results are provided, with approximately 1300 numbered equations and an extensive bibliography of over 500 historical and modern references spanning from the 1920s to the present day. Case studies contain property data, as well as analytical, and numerical solutions to shock compression problems for different materials. Such materials are metals, ceramics, and minerals, single crystalline and polycrystalline. The intended audience of this book is practicing scientists (physicists, engineers, materials scientists, and applied mathematicians) involved in advanced research on shock compression of solid materials.
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