The latest state of simulation techniques to model plasticity and fracture in crystalline materials on the nano- and microscale is presented. Discrete dislocation mechanics and the neighbouring fields molecular dynamics and crystal plasticity are central parts. The physical phenomena, the theoretical basics, their mathematical description and the simulation techniques are introduced and important problems from the formation of dislocation structures to fatigue and fracture from the nano- to microscale as well as it's impact on the macro behaviour are considered.
The latest state of simulation techniques to model plasticity and fracture in crystalline materials on the nano- and microscale is presented. Discrete dislocation mechanics and the neighbouring fields molecular dynamics and crystal plasticity are central parts. The physical phenomena, the theoretical basics, their mathematical description and the simulation techniques are introduced and important problems from the formation of dislocation structures to fatigue and fracture from the nano- to microscale as well as it's impact on the macro behaviour are considered.
Produktdetails
Produktdetails
CISM International Centre for Mechanical Sciences 522
Artikelnr. des Verlages: 80016150, 978-3-7091-0282-4
2010
Seitenzahl: 404
Erscheinungstermin: 14. Juli 2010
Englisch
Abmessung: 241mm x 160mm x 28mm
Gewicht: 772g
ISBN-13: 9783709102824
ISBN-10: 3709102820
Artikelnr.: 29963766
Inhaltsangabe
Atomistic Simulation Methods and their Application on Fracture.- Fundamental dislocation theory and 3D dislocation mechanics.- Plasticity of moderately loaded cracks and the consequence of the discrete nature of plasticity to fatigue and fracture.- Discrete Dislocation Plasticity Analysis of Cracks and Fracture.- Statistical physical approach to describe the collective properties of dislocations.- Basic ingredients, development of phenomenological models and practical use of crystal plasticity.- Computational homogenization.
Atomistic Simulation Methods and their Application on Fracture.- Fundamental dislocation theory and 3D dislocation mechanics.- Plasticity of moderately loaded cracks and the consequence of the discrete nature of plasticity to fatigue and fracture.- Discrete Dislocation Plasticity Analysis of Cracks and Fracture.- Statistical physical approach to describe the collective properties of dislocations.- Basic ingredients, development of phenomenological models and practical use of crystal plasticity.- Computational homogenization.
Atomistic Simulation Methods and their Application on Fracture.- Fundamental dislocation theory and 3D dislocation mechanics.- Plasticity of moderately loaded cracks and the consequence of the discrete nature of plasticity to fatigue and fracture.- Discrete Dislocation Plasticity Analysis of Cracks and Fracture.- Statistical physical approach to describe the collective properties of dislocations.- Basic ingredients, development of phenomenological models and practical use of crystal plasticity.- Computational homogenization.
Atomistic Simulation Methods and their Application on Fracture.- Fundamental dislocation theory and 3D dislocation mechanics.- Plasticity of moderately loaded cracks and the consequence of the discrete nature of plasticity to fatigue and fracture.- Discrete Dislocation Plasticity Analysis of Cracks and Fracture.- Statistical physical approach to describe the collective properties of dislocations.- Basic ingredients, development of phenomenological models and practical use of crystal plasticity.- Computational homogenization.
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