Metal Plasticity and Fatigue at High Temperature

In several industrial fields (such as automotive, steelmaking, aerospace, and fire protection systems) metals need to withstand a combination of cyclic loadings and high temperatures. In this condition, they usually exhibit an amount—more or less pronounced—of plastic deformation, often accompanied...

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Year of Publication:2020
Language:English
Physical Description:1 electronic resource (220 p.)
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ctrlnum (CKB)4100000011302322
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record_format marc
spelling Srnec Novak, Jelena auth
Metal Plasticity and Fatigue at High Temperature
MDPI - Multidisciplinary Digital Publishing Institute 2020
1 electronic resource (220 p.)
text txt rdacontent
computer c rdamedia
online resource cr rdacarrier
In several industrial fields (such as automotive, steelmaking, aerospace, and fire protection systems) metals need to withstand a combination of cyclic loadings and high temperatures. In this condition, they usually exhibit an amount—more or less pronounced—of plastic deformation, often accompanied by creep or stress-relaxation phenomena. Plastic deformation under the action of cyclic loadings may cause fatigue cracks to appear, eventually leading to failures after a few cycles. In estimating the material strength under such loading conditions, the high-temperature material behavior needs to be considered against cyclic loading and creep, the experimental strength to isothermal/non-isothermal cyclic loadings and, not least of all, the choice and experimental calibration of numerical material models and the selection of the most comprehensive design approach. This book is a series of recent scientific contributions addressing several topics in the field of experimental characterization and physical-based modeling of material behavior and design methods against high-temperature loadings, with emphasis on the correlation between microstructure and strength. Several material types are considered, from stainless steel, aluminum alloys, Ni-based superalloys, spheroidal graphite iron, and copper alloys. The quality of scientific contributions in this book can assist scholars and scientists with their research in the field of metal plasticity, creep, and low-cycle fatigue.
English
aluminum cast
partial constraint
fatigue criterion
thermo-mechanical fatigue
stress relaxation aging behavior
stainless steel
constitutive models
environmentally-assisted cracking
initial stress levels
slip system-based shear stresses
thermomechanical fatigue
activation volume
engineering design
pore distribution
experimental set-ups
tensile tests
elevated temperature
creep
economy
LCF
fatigue strength
hardening/softening
hardness
pore accumulation
defects
kinematic model
Sanicro 25
probabilistic design
AA7150-T7751
strain rate
crack growth models
bcc
probabilistic Schmid factors
isotropic model
crack-tip cyclic plasticity
anisotropy
creep fatigue
X-ray micro computer tomography
temperature
transient effects
aluminum-silicon cylinder head
spheroidal cast iron
Probabilistic modeling
pre-strain
crack-tip blunting and sharpening
high temperature steels
lost foam
thermal-mechanical fatigue
cyclic plasticity
flow stress
Ni-base superalloy
pure fatigue
René80
polycrystalline FEA
constitutive modelling
3-03928-770-2
Moro, Luciano auth
Benasciutti, Denis auth
language English
format eBook
author Srnec Novak, Jelena
spellingShingle Srnec Novak, Jelena
Metal Plasticity and Fatigue at High Temperature
author_facet Srnec Novak, Jelena
Moro, Luciano
Benasciutti, Denis
author_variant n j s nj njs
author2 Moro, Luciano
Benasciutti, Denis
author2_variant l m lm
d b db
author_sort Srnec Novak, Jelena
title Metal Plasticity and Fatigue at High Temperature
title_full Metal Plasticity and Fatigue at High Temperature
title_fullStr Metal Plasticity and Fatigue at High Temperature
title_full_unstemmed Metal Plasticity and Fatigue at High Temperature
title_auth Metal Plasticity and Fatigue at High Temperature
title_new Metal Plasticity and Fatigue at High Temperature
title_sort metal plasticity and fatigue at high temperature
publisher MDPI - Multidisciplinary Digital Publishing Institute
publishDate 2020
physical 1 electronic resource (220 p.)
isbn 3-03928-771-0
3-03928-770-2
illustrated Not Illustrated
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