Solution of dissipated energy and influence of loading frequency on evaluation results in the rapid evaluation process of fatigue performance

The rapid assessment method for metal fatigue performance based on the infrared thermography presents advantages such as short testing cycles, low costs, and high efficiency. However, accurately quantifying factors influencing the dissipation of energy, such as convective heat transfer and thermal r...

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Main Authors: LUO Jiayuan, WANG Jialin, GAO Cong
Format: Article
Language:zho
Published: Editorial Office of Journal of Mechanical Strength 2025-07-01
Series:Jixie qiangdu
Subjects:
Online Access:http://www.jxqd.net.cn/thesisDetails#10.16579/j.issn.1001.9669.2025.07.009
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author LUO Jiayuan
WANG Jialin
GAO Cong
author_facet LUO Jiayuan
WANG Jialin
GAO Cong
author_sort LUO Jiayuan
collection DOAJ
description The rapid assessment method for metal fatigue performance based on the infrared thermography presents advantages such as short testing cycles, low costs, and high efficiency. However, accurately quantifying factors influencing the dissipation of energy, such as convective heat transfer and thermal radiation, proves challenging. The difficulty leads to complications in achieving the precision necessary to meet test standards in the final assessment results. A mixed-hardening constitutive model for 304 stainless steel was established and coupled with the low-cycle fatigue thermomechanical mechanism, to analyze the evolution pattern of dissipated energy caused by convective heat transfer and thermal radiation during the loading process. Furthermore, the impact of low-cycle fatigue loading frequency on the rapid assessment results of fatigue performance was explored based on the critical threshold of dissipated energy. The research indicates that during the low-cycle fatigue process of 304 stainless steel, the dissipated energy from convective heat transfer and thermal radiation constitutes over 54% of the total dissipated energy. Moreover, this proportion continuously increases with the augmentation of the convective heat transfer coefficient. Therefore, it is crucial not to neglect these factors in dissipated energy assessment calculations. With an increase in loading frequency, the peak load narrows within the region of action time. Consequently, the dissipated energy of each load cycle decreases, leading to a rapid assessment result of fatigue performance that tends to be larger than the test value.
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language zho
publishDate 2025-07-01
publisher Editorial Office of Journal of Mechanical Strength
record_format Article
series Jixie qiangdu
spelling doaj-art-b11b23220923446eac6e2ffc2e6edac62025-08-20T03:16:46ZzhoEditorial Office of Journal of Mechanical StrengthJixie qiangdu1001-96692025-07-01477379115606057Solution of dissipated energy and influence of loading frequency on evaluation results in the rapid evaluation process of fatigue performanceLUO JiayuanWANG JialinGAO CongThe rapid assessment method for metal fatigue performance based on the infrared thermography presents advantages such as short testing cycles, low costs, and high efficiency. However, accurately quantifying factors influencing the dissipation of energy, such as convective heat transfer and thermal radiation, proves challenging. The difficulty leads to complications in achieving the precision necessary to meet test standards in the final assessment results. A mixed-hardening constitutive model for 304 stainless steel was established and coupled with the low-cycle fatigue thermomechanical mechanism, to analyze the evolution pattern of dissipated energy caused by convective heat transfer and thermal radiation during the loading process. Furthermore, the impact of low-cycle fatigue loading frequency on the rapid assessment results of fatigue performance was explored based on the critical threshold of dissipated energy. The research indicates that during the low-cycle fatigue process of 304 stainless steel, the dissipated energy from convective heat transfer and thermal radiation constitutes over 54% of the total dissipated energy. Moreover, this proportion continuously increases with the augmentation of the convective heat transfer coefficient. Therefore, it is crucial not to neglect these factors in dissipated energy assessment calculations. With an increase in loading frequency, the peak load narrows within the region of action time. Consequently, the dissipated energy of each load cycle decreases, leading to a rapid assessment result of fatigue performance that tends to be larger than the test value.http://www.jxqd.net.cn/thesisDetails#10.16579/j.issn.1001.9669.2025.07.009Mixed hardening modelDissipated energyThermal convectionHeat radiationLoading frequency
spellingShingle LUO Jiayuan
WANG Jialin
GAO Cong
Solution of dissipated energy and influence of loading frequency on evaluation results in the rapid evaluation process of fatigue performance
Jixie qiangdu
Mixed hardening model
Dissipated energy
Thermal convection
Heat radiation
Loading frequency
title Solution of dissipated energy and influence of loading frequency on evaluation results in the rapid evaluation process of fatigue performance
title_full Solution of dissipated energy and influence of loading frequency on evaluation results in the rapid evaluation process of fatigue performance
title_fullStr Solution of dissipated energy and influence of loading frequency on evaluation results in the rapid evaluation process of fatigue performance
title_full_unstemmed Solution of dissipated energy and influence of loading frequency on evaluation results in the rapid evaluation process of fatigue performance
title_short Solution of dissipated energy and influence of loading frequency on evaluation results in the rapid evaluation process of fatigue performance
title_sort solution of dissipated energy and influence of loading frequency on evaluation results in the rapid evaluation process of fatigue performance
topic Mixed hardening model
Dissipated energy
Thermal convection
Heat radiation
Loading frequency
url http://www.jxqd.net.cn/thesisDetails#10.16579/j.issn.1001.9669.2025.07.009
work_keys_str_mv AT luojiayuan solutionofdissipatedenergyandinfluenceofloadingfrequencyonevaluationresultsintherapidevaluationprocessoffatigueperformance
AT wangjialin solutionofdissipatedenergyandinfluenceofloadingfrequencyonevaluationresultsintherapidevaluationprocessoffatigueperformance
AT gaocong solutionofdissipatedenergyandinfluenceofloadingfrequencyonevaluationresultsintherapidevaluationprocessoffatigueperformance