Experimental and numerical modeling approach for thermomechanical low cycle fatigue analysis of cyclically non-stabilized steels
ABSTRACT: The widely used fatigue life prediction models, such as the Coffin–Manson model or S–N curve related models are based on the assumption that the response of a material experiencing low cycle fatigue loading is stabilized during some period. However, for many materials such a stabilized sta...
Main Authors: | , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Elsevier
2021-01-01
|
Series: | MethodsX |
Subjects: | |
Online Access: | http://www.sciencedirect.com/science/article/pii/S2215016121000054 |
id |
doaj-7a5ebf5b63764f189296d05db0d52e17 |
---|---|
record_format |
Article |
spelling |
doaj-7a5ebf5b63764f189296d05db0d52e172021-01-30T04:27:44ZengElsevierMethodsX2215-01612021-01-018101213Experimental and numerical modeling approach for thermomechanical low cycle fatigue analysis of cyclically non-stabilized steelsWładysław Egner0Piotr Sulich1Stanisław Mroziński2Michał Piotrowski3Halina Egner4Institute of Applied Mechanics, Faculty of Mechanical Engineering, Cracow University of Technology, 31-864 Kraków Al. Jana Pawła II 37, PolandInstitute of Applied Mechanics, Faculty of Mechanical Engineering, Cracow University of Technology, 31-864 Kraków Al. Jana Pawła II 37, PolandUTP University of Science and Technology, Faculty of Mechanical Engineering, 85-225 Bydgoszcz ul. Kordeckiego 20, PolandUTP University of Science and Technology, Faculty of Mechanical Engineering, 85-225 Bydgoszcz ul. Kordeckiego 20, PolandInstitute of Applied Mechanics, Faculty of Mechanical Engineering, Cracow University of Technology, 31-864 Kraków Al. Jana Pawła II 37, Poland; Corresponding author:ABSTRACT: The widely used fatigue life prediction models, such as the Coffin–Manson model or S–N curve related models are based on the assumption that the response of a material experiencing low cycle fatigue loading is stabilized during some period. However, for many materials such a stabilized state is hardly observed, and the activated mechanisms for cyclic hardening or softening depend on test conditions. In general, the selected test conditions (stress or strain control) should depend on the intended use of the obtained material data. If testing conditions do not correspond to the operation mode of the considered mechanical facilities, the above mentioned life prediction models will produce inaccurate results. Hence, selecting and identifying proper fatigue parameters, which would represent the state of a material during the whole fatigue life, is extremely important in reliability evaluation of structures.In the case of non-stabilizing steels, the common challenges are: • Selecting and performing a suitable set of experimental tests to recognize various aspects of the material behavior under low-cycle thermomechanical fatigue; • Adjusting a proper constitutive modelling, reflecting the real physical phenomena taking place in the material microstructure; • Effective numerical implementation and optimal parameter identification.http://www.sciencedirect.com/science/article/pii/S2215016121000054Material testingThermo-mechanical fatigueNumerical implementationIdentification of parameters |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Władysław Egner Piotr Sulich Stanisław Mroziński Michał Piotrowski Halina Egner |
spellingShingle |
Władysław Egner Piotr Sulich Stanisław Mroziński Michał Piotrowski Halina Egner Experimental and numerical modeling approach for thermomechanical low cycle fatigue analysis of cyclically non-stabilized steels MethodsX Material testing Thermo-mechanical fatigue Numerical implementation Identification of parameters |
author_facet |
Władysław Egner Piotr Sulich Stanisław Mroziński Michał Piotrowski Halina Egner |
author_sort |
Władysław Egner |
title |
Experimental and numerical modeling approach for thermomechanical low cycle fatigue analysis of cyclically non-stabilized steels |
title_short |
Experimental and numerical modeling approach for thermomechanical low cycle fatigue analysis of cyclically non-stabilized steels |
title_full |
Experimental and numerical modeling approach for thermomechanical low cycle fatigue analysis of cyclically non-stabilized steels |
title_fullStr |
Experimental and numerical modeling approach for thermomechanical low cycle fatigue analysis of cyclically non-stabilized steels |
title_full_unstemmed |
Experimental and numerical modeling approach for thermomechanical low cycle fatigue analysis of cyclically non-stabilized steels |
title_sort |
experimental and numerical modeling approach for thermomechanical low cycle fatigue analysis of cyclically non-stabilized steels |
publisher |
Elsevier |
series |
MethodsX |
issn |
2215-0161 |
publishDate |
2021-01-01 |
description |
ABSTRACT: The widely used fatigue life prediction models, such as the Coffin–Manson model or S–N curve related models are based on the assumption that the response of a material experiencing low cycle fatigue loading is stabilized during some period. However, for many materials such a stabilized state is hardly observed, and the activated mechanisms for cyclic hardening or softening depend on test conditions. In general, the selected test conditions (stress or strain control) should depend on the intended use of the obtained material data. If testing conditions do not correspond to the operation mode of the considered mechanical facilities, the above mentioned life prediction models will produce inaccurate results. Hence, selecting and identifying proper fatigue parameters, which would represent the state of a material during the whole fatigue life, is extremely important in reliability evaluation of structures.In the case of non-stabilizing steels, the common challenges are: • Selecting and performing a suitable set of experimental tests to recognize various aspects of the material behavior under low-cycle thermomechanical fatigue; • Adjusting a proper constitutive modelling, reflecting the real physical phenomena taking place in the material microstructure; • Effective numerical implementation and optimal parameter identification. |
topic |
Material testing Thermo-mechanical fatigue Numerical implementation Identification of parameters |
url |
http://www.sciencedirect.com/science/article/pii/S2215016121000054 |
work_keys_str_mv |
AT władysławegner experimentalandnumericalmodelingapproachforthermomechanicallowcyclefatigueanalysisofcyclicallynonstabilizedsteels AT piotrsulich experimentalandnumericalmodelingapproachforthermomechanicallowcyclefatigueanalysisofcyclicallynonstabilizedsteels AT stanisławmrozinski experimentalandnumericalmodelingapproachforthermomechanicallowcyclefatigueanalysisofcyclicallynonstabilizedsteels AT michałpiotrowski experimentalandnumericalmodelingapproachforthermomechanicallowcyclefatigueanalysisofcyclicallynonstabilizedsteels AT halinaegner experimentalandnumericalmodelingapproachforthermomechanicallowcyclefatigueanalysisofcyclicallynonstabilizedsteels |
_version_ |
1724318182618955776 |