Assessing Fatigue Life Cycles of Material X10CrMoVNb9-1 through a Combination of Experimental and Finite Element Analysis

This paper uses a two-scale material modeling approach to investigate fatigue crack initiation and propagation of the material X10CrMoVNb9-1 (P91) under cyclic loading at room temperature. The Voronoi tessellation method was implemented to generate an artificial microstructure model at the microstru...

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Published in:Metals
Main Author: Rahim M.R.B.A.; Schmauder S.; Manurung Y.H.P.; Binkele P.; Dusza J.; Csanádi T.; Ahmad M.I.M.; Mat M.F.; Dogahe K.J.
Format: Article
Language:English
Published: Multidisciplinary Digital Publishing Institute (MDPI) 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85180659907&doi=10.3390%2fmet13121947&partnerID=40&md5=644bd852ad287f2cf1b72916b6e84dd1
id 2-s2.0-85180659907
spelling 2-s2.0-85180659907
Rahim M.R.B.A.; Schmauder S.; Manurung Y.H.P.; Binkele P.; Dusza J.; Csanádi T.; Ahmad M.I.M.; Mat M.F.; Dogahe K.J.
Assessing Fatigue Life Cycles of Material X10CrMoVNb9-1 through a Combination of Experimental and Finite Element Analysis
2023
Metals
13
12
10.3390/met13121947
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85180659907&doi=10.3390%2fmet13121947&partnerID=40&md5=644bd852ad287f2cf1b72916b6e84dd1
This paper uses a two-scale material modeling approach to investigate fatigue crack initiation and propagation of the material X10CrMoVNb9-1 (P91) under cyclic loading at room temperature. The Voronoi tessellation method was implemented to generate an artificial microstructure model at the microstructure level, and then, the finite element (FE) method was applied to identify different stress distributions. The stress distributions for multiple artificial microstructures was analyzed by using the physically based Tanaka–Mura model to estimate the number of cycles for crack initiation. Considering the prediction of macro-scale and long-term crack formation, the Paris law was utilized in this research. Experimental work on fatigue life with this material was performed, and good agreement was found with the results obtained in FE modeling. The number of cycles for fatigue crack propagation attains up to a maximum of 40% of the final fatigue lifetime with a typical value of 15% in many cases. This physically based two-scale technique significantly advances fatigue research, particularly in power plants, and paves the way for rapid and low-cost virtual material analysis and fatigue resistance analysis in the context of environmental fatigue applications. © 2023 by the authors.
Multidisciplinary Digital Publishing Institute (MDPI)
20754701
English
Article
All Open Access; Gold Open Access
author Rahim M.R.B.A.; Schmauder S.; Manurung Y.H.P.; Binkele P.; Dusza J.; Csanádi T.; Ahmad M.I.M.; Mat M.F.; Dogahe K.J.
spellingShingle Rahim M.R.B.A.; Schmauder S.; Manurung Y.H.P.; Binkele P.; Dusza J.; Csanádi T.; Ahmad M.I.M.; Mat M.F.; Dogahe K.J.
Assessing Fatigue Life Cycles of Material X10CrMoVNb9-1 through a Combination of Experimental and Finite Element Analysis
author_facet Rahim M.R.B.A.; Schmauder S.; Manurung Y.H.P.; Binkele P.; Dusza J.; Csanádi T.; Ahmad M.I.M.; Mat M.F.; Dogahe K.J.
author_sort Rahim M.R.B.A.; Schmauder S.; Manurung Y.H.P.; Binkele P.; Dusza J.; Csanádi T.; Ahmad M.I.M.; Mat M.F.; Dogahe K.J.
title Assessing Fatigue Life Cycles of Material X10CrMoVNb9-1 through a Combination of Experimental and Finite Element Analysis
title_short Assessing Fatigue Life Cycles of Material X10CrMoVNb9-1 through a Combination of Experimental and Finite Element Analysis
title_full Assessing Fatigue Life Cycles of Material X10CrMoVNb9-1 through a Combination of Experimental and Finite Element Analysis
title_fullStr Assessing Fatigue Life Cycles of Material X10CrMoVNb9-1 through a Combination of Experimental and Finite Element Analysis
title_full_unstemmed Assessing Fatigue Life Cycles of Material X10CrMoVNb9-1 through a Combination of Experimental and Finite Element Analysis
title_sort Assessing Fatigue Life Cycles of Material X10CrMoVNb9-1 through a Combination of Experimental and Finite Element Analysis
publishDate 2023
container_title Metals
container_volume 13
container_issue 12
doi_str_mv 10.3390/met13121947
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85180659907&doi=10.3390%2fmet13121947&partnerID=40&md5=644bd852ad287f2cf1b72916b6e84dd1
description This paper uses a two-scale material modeling approach to investigate fatigue crack initiation and propagation of the material X10CrMoVNb9-1 (P91) under cyclic loading at room temperature. The Voronoi tessellation method was implemented to generate an artificial microstructure model at the microstructure level, and then, the finite element (FE) method was applied to identify different stress distributions. The stress distributions for multiple artificial microstructures was analyzed by using the physically based Tanaka–Mura model to estimate the number of cycles for crack initiation. Considering the prediction of macro-scale and long-term crack formation, the Paris law was utilized in this research. Experimental work on fatigue life with this material was performed, and good agreement was found with the results obtained in FE modeling. The number of cycles for fatigue crack propagation attains up to a maximum of 40% of the final fatigue lifetime with a typical value of 15% in many cases. This physically based two-scale technique significantly advances fatigue research, particularly in power plants, and paves the way for rapid and low-cost virtual material analysis and fatigue resistance analysis in the context of environmental fatigue applications. © 2023 by the authors.
publisher Multidisciplinary Digital Publishing Institute (MDPI)
issn 20754701
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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