Study of load history effects on the high cycle fatigue properties of high-strength low-alloy steel from self-heating measurements
In the context of high cycle fatigue (HCF), the experimental characterization of the fatigue properties is often performed by using specimens in a virgin state (i.e., without preliminary loading), and with a constant stress amplitude for each specimen. However, the load history applied to a real str...
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2018-01-01
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Series: | MATEC Web of Conferences |
Online Access: | https://doi.org/10.1051/matecconf/201816514016 |
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doaj-4b1eeb06d19b41f89b087d9e7339c0ec2021-02-02T01:10:21ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-011651401610.1051/matecconf/201816514016matecconf_fatigue2018_14016Study of load history effects on the high cycle fatigue properties of high-strength low-alloy steel from self-heating measurementsLouge JulienDoudard CédricCalloch SylvainWeber BastienIn the context of high cycle fatigue (HCF), the experimental characterization of the fatigue properties is often performed by using specimens in a virgin state (i.e., without preliminary loading), and with a constant stress amplitude for each specimen. However, the load history applied to a real structure is more complex and the fatigue life prediction remains a difficult task because of the time dedicated to the classical fatigue tests (i.e., the specimen is loaded until failure) and the dispersion of fatigue lives. The load history effects on the HCF properties is characterized using an alternative method: self-heating measurements under cyclic loadings. This method is based on the observation of the mean steady state temperature evolution of a specimen under a successive series of cyclic loadings with increasing stress amplitude for each loading series. A probabilistic two-scale model was developed from the self-heating method able to predict HCF properties. Some self-heating tests are performed to study the influence of a load history effects. It seems that the plasticity is the most influential factor. So, the evolution of the plasticity is observed at the surface of the material under cyclic loading. There is a significant evolution in function of the plastic pre-strain.https://doi.org/10.1051/matecconf/201816514016 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Louge Julien Doudard Cédric Calloch Sylvain Weber Bastien |
spellingShingle |
Louge Julien Doudard Cédric Calloch Sylvain Weber Bastien Study of load history effects on the high cycle fatigue properties of high-strength low-alloy steel from self-heating measurements MATEC Web of Conferences |
author_facet |
Louge Julien Doudard Cédric Calloch Sylvain Weber Bastien |
author_sort |
Louge Julien |
title |
Study of load history effects on the high cycle fatigue properties of high-strength low-alloy steel from self-heating measurements |
title_short |
Study of load history effects on the high cycle fatigue properties of high-strength low-alloy steel from self-heating measurements |
title_full |
Study of load history effects on the high cycle fatigue properties of high-strength low-alloy steel from self-heating measurements |
title_fullStr |
Study of load history effects on the high cycle fatigue properties of high-strength low-alloy steel from self-heating measurements |
title_full_unstemmed |
Study of load history effects on the high cycle fatigue properties of high-strength low-alloy steel from self-heating measurements |
title_sort |
study of load history effects on the high cycle fatigue properties of high-strength low-alloy steel from self-heating measurements |
publisher |
EDP Sciences |
series |
MATEC Web of Conferences |
issn |
2261-236X |
publishDate |
2018-01-01 |
description |
In the context of high cycle fatigue (HCF), the experimental characterization of the fatigue properties is often performed by using specimens in a virgin state (i.e., without preliminary loading), and with a constant stress amplitude for each specimen. However, the load history applied to a real structure is more complex and the fatigue life prediction remains a difficult task because of the time dedicated to the classical fatigue tests (i.e., the specimen is loaded until failure) and the dispersion of fatigue lives. The load history effects on the HCF properties is characterized using an alternative method: self-heating measurements under cyclic loadings. This method is based on the observation of the mean steady state temperature evolution of a specimen under a successive series of cyclic loadings with increasing stress amplitude for each loading series. A probabilistic two-scale model was developed from the self-heating method able to predict HCF properties. Some self-heating tests are performed to study the influence of a load history effects. It seems that the plasticity is the most influential factor. So, the evolution of the plasticity is observed at the surface of the material under cyclic loading. There is a significant evolution in function of the plastic pre-strain. |
url |
https://doi.org/10.1051/matecconf/201816514016 |
work_keys_str_mv |
AT lougejulien studyofloadhistoryeffectsonthehighcyclefatiguepropertiesofhighstrengthlowalloysteelfromselfheatingmeasurements AT doudardcedric studyofloadhistoryeffectsonthehighcyclefatiguepropertiesofhighstrengthlowalloysteelfromselfheatingmeasurements AT callochsylvain studyofloadhistoryeffectsonthehighcyclefatiguepropertiesofhighstrengthlowalloysteelfromselfheatingmeasurements AT weberbastien studyofloadhistoryeffectsonthehighcyclefatiguepropertiesofhighstrengthlowalloysteelfromselfheatingmeasurements |
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1724312248070963200 |