
Dislocation Mechanism-Based Crystal Plasticity
Theory and Computation at the Micron and Submicron Scale
Academic Press
Published on 12. April 2019
Book
Paperback/Softback
450 pages
978-0-12-814591-3 (ISBN)
Description
Dislocation Based Crystal Plasticity: Theory and Computation at Micron and Submicron Scale provides a comprehensive introduction to the continuum and discreteness dislocation mechanism-based theories and computational methods of crystal plasticity at the micron and submicron scale. Sections cover the fundamental concept of conventional crystal plasticity theory at the macro-scale without size effect, strain gradient crystal plasticity theory based on Taylar law dislocation, mechanism at the mesoscale, phase-field theory of crystal plasticity, computation at the submicron scale, including single crystal plasticity theory, and the discrete-continuous model of crystal plasticity with three-dimensional discrete dislocation dynamics coupling finite element method (DDD-FEM).
Three kinds of plastic deformation mechanisms for submicron pillars are systematically presented. Further sections discuss dislocation nucleation and starvation at high strain rate and temperature effect for dislocation annihilation mechanism.
Three kinds of plastic deformation mechanisms for submicron pillars are systematically presented. Further sections discuss dislocation nucleation and starvation at high strain rate and temperature effect for dislocation annihilation mechanism.
More details
Language
English
Place of publication
San Diego
United States
Publishing group
Elsevier Science Publishing Co Inc
Target group
Professional and scholarly
Materials scientists, engineers, computational mechanics specialists, material physicists, aerospace engineers
Product notice
Paperback (trade)
Dimensions
Height: 235 mm
Width: 191 mm
Thickness: 23 mm
Weight
773 gr
ISBN-13
978-0-12-814591-3 (9780128145913)
Copyright in bibliographic data and cover images is held by Nielsen Book Services Limited or by the publishers or by their respective licensors: all rights reserved.
Schweitzer Classification
Other editions
Additional editions

Zhuo Zhuang | Zhanli Liu | Yinan Cui
Dislocation Mechanism-Based Crystal Plasticity
Theory and Computation at the Micron and Submicron Scale
E-Book
04/2019
Academic Press
€170.00
Available for download
Persons
Zhuo Zhuang is Professor and Co-director of the Advanced Mechanics and Materials Center in the School of Aerospace Engineering, at Tsinghua University in China. He has published over 260 papers in leading scientific journals. He is General Council member for IACM, and APACM, and President of the Chinese Association of Computation Mechanics (CACM), Vice-director of the Supervision Committee on Mechanics at the Ministry of Education, and serves as an editor on both national and international journals. He received his PhD from University College Dublin in Ireland, and an Honorary Doctorate Degree (EngD) from Swansea University in the UK. Zhanli Liu is Associate Professor in the School of Aerospace Engineering at Tsinghua University in China. He has published over 60 papers, mostly relating to computational multi-scale mechanics, plasticity, damage and fracture mechanics. He received his PhD from Tsinghua University, and was a winner of the prestigious China Thousand Young Talents Program. Postdoctoral researcher at the University of California Los Angeles. Her research interests include computational mechanics of materials, mechanics and physics of material defects, discrete and continuum dislocation-based plasticity, and materials behaviour in extreme environments. She has published widely in leading journals. Yinan Cui received her PhD from Tsinghua University in China.
Author
Department of Engineering Mechanics, Tsinghua University, Beijing, China
Department of Engineering Mechanics, Tsinghua University, Beijing, China
Postdoctoral Researcher, University of California, Los Angeles, USA
Content
1. Introduction2. Conventional constitutive theory of plasticity3. Crystal plasticity theory4. Strain gradient crystal plasticity theory at micron-scale5. Dislocation based crystal plasticity theory and size effect6. Size-dependent deformation morphology of micropillars7. Micro-scale crystal plasticity model based on phase field theory8. Discrete-continuum model of crystal plasticity at submicron scale9. Single arm dislocation source controlled plasticity flow in FCC micropillars10. Confined plasticity in micropillars11. Mechanical annealing under low amplitude cyclic loading in micropillars12. Strain rate effect on the deformation of crystal at submicron scale13. Temperature effect for dislocation annihilation mechanism