Finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature

A single-crystal plasticity model as well as a gradient crystal plasticity model are used to describe the creep behavior of directionally solidi?ed NiAl based eutectic alloys. To consider the transition from theoretical to bulk strength, a hardening model was introduced to describe the strength of t...

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Superior document:Schriftenreihe Kontinuumsmechanik im Maschinenbau / Karlsruher Institut für Technologie, Institut für Technische Mechanik - Bereich Kontinuumsmechanik
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Year of Publication:2019
Language:English
Series:Schriftenreihe Kontinuumsmechanik im Maschinenbau / Karlsruher Institut für Technologie, Institut für Technische Mechanik - Bereich Kontinuumsmechanik
Physical Description:1 electronic resource (X, 197 p. p.)
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spelling Albiez, Jürgen auth
Finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature
KIT Scientific Publishing 2019
1 electronic resource (X, 197 p. p.)
text txt rdacontent
computer c rdamedia
online resource cr rdacarrier
Schriftenreihe Kontinuumsmechanik im Maschinenbau / Karlsruher Institut für Technologie, Institut für Technische Mechanik - Bereich Kontinuumsmechanik
A single-crystal plasticity model as well as a gradient crystal plasticity model are used to describe the creep behavior of directionally solidi?ed NiAl based eutectic alloys. To consider the transition from theoretical to bulk strength, a hardening model was introduced to describe the strength of the reinforcing phases. Moreover, to account for microstructural changes due to material ?ux, a coupled diffusional-mechanical simulation model was introduced.
English
Crystal plasticity
Creep
Directional solidification
Gradient plasticity
Finite element simulation
Kriechen
Gerichtete Erstarrung
Finite Elemente Methode
Kristallplastizität
Gradientenplastizität
3-7315-0918-0
language English
format eBook
author Albiez, Jürgen
spellingShingle Albiez, Jürgen
Finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature
Schriftenreihe Kontinuumsmechanik im Maschinenbau / Karlsruher Institut für Technologie, Institut für Technische Mechanik - Bereich Kontinuumsmechanik
author_facet Albiez, Jürgen
author_variant j a ja
author_sort Albiez, Jürgen
title Finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature
title_full Finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature
title_fullStr Finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature
title_full_unstemmed Finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature
title_auth Finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature
title_new Finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature
title_sort finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature
series Schriftenreihe Kontinuumsmechanik im Maschinenbau / Karlsruher Institut für Technologie, Institut für Technische Mechanik - Bereich Kontinuumsmechanik
series2 Schriftenreihe Kontinuumsmechanik im Maschinenbau / Karlsruher Institut für Technologie, Institut für Technische Mechanik - Bereich Kontinuumsmechanik
publisher KIT Scientific Publishing
publishDate 2019
physical 1 electronic resource (X, 197 p. p.)
isbn 1000092297
3-7315-0918-0
illustrated Not Illustrated
work_keys_str_mv AT albiezjurgen finiteelementsimulationofdislocationbasedplasticityanddiffusioninmultiphasematerialsathightemperature
status_str n
ids_txt_mv (CKB)4920000000094478
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hierarchy_parent_title Schriftenreihe Kontinuumsmechanik im Maschinenbau / Karlsruher Institut für Technologie, Institut für Technische Mechanik - Bereich Kontinuumsmechanik
is_hierarchy_title Finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature
container_title Schriftenreihe Kontinuumsmechanik im Maschinenbau / Karlsruher Institut für Technologie, Institut für Technische Mechanik - Bereich Kontinuumsmechanik
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