A robust probabilistic fatigue crack growth model based on walker's crack growth rate equation for metallic materials

The fatigue crack growth data inherits statistical variation despite carefully controlled test procedures. The available probabilistic models rely extensively on fatigue crack growth test data of the coupon material under replicate loading conditions. In view of the often unavailability of such a da...

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Main Authors: Hashmi, Mudassar Hussain, Abdul Hamid, Mohd. Fauzi, Tamin, Mohd. Nasir
Format: Article
Published: Elsevier Ltd 2023
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Online Access:http://eprints.utm.my/106508/
http://dx.doi.org/10.1016/j.probengmech.2023.103445
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spelling my.utm.1065082024-07-09T06:21:40Z http://eprints.utm.my/106508/ A robust probabilistic fatigue crack growth model based on walker's crack growth rate equation for metallic materials Hashmi, Mudassar Hussain Abdul Hamid, Mohd. Fauzi Tamin, Mohd. Nasir TJ Mechanical engineering and machinery The fatigue crack growth data inherits statistical variation despite carefully controlled test procedures. The available probabilistic models rely extensively on fatigue crack growth test data of the coupon material under replicate loading conditions. In view of the often unavailability of such a database, this work proposes a new probabilistic model based on Walker's crack growth rate equation and considers the variability in both the stress intensity factor range, ΔK and stress ratio, R. The optimum estimates of the model parameters are established using the maximum likelihood estimation (MLE) method. The model is examined using selected sets of measured fatigue crack growth curves of 7075-T6 and 2024-351 aluminum alloys. It demonstrates acceptable predictions for fatigue crack growth data on replicate and variable R-ratio loadings with failure probabilities in the range of 0.10 ≤pF≤ 0.90. The error on the observed fatigue crack growth rate data is normally distributed. The criterion of the minimum number of replicate tests for a valid probabilistic assessment of the fatigue crack growth data is established. Based on the mean squared error (MSE) parameter, the model provides a better representation of the mean fatigue crack growth rate behavior of the material for fatigue loading with variable R-ratios. Elsevier Ltd 2023-04 Article PeerReviewed Hashmi, Mudassar Hussain and Abdul Hamid, Mohd. Fauzi and Tamin, Mohd. Nasir (2023) A robust probabilistic fatigue crack growth model based on walker's crack growth rate equation for metallic materials. Probabilistic Engineering Mechanics, 72 (NA). NA. ISSN 0266-8920 http://dx.doi.org/10.1016/j.probengmech.2023.103445 DOI:10.1016/j.probengmech.2023.103445
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Hashmi, Mudassar Hussain
Abdul Hamid, Mohd. Fauzi
Tamin, Mohd. Nasir
A robust probabilistic fatigue crack growth model based on walker's crack growth rate equation for metallic materials
description The fatigue crack growth data inherits statistical variation despite carefully controlled test procedures. The available probabilistic models rely extensively on fatigue crack growth test data of the coupon material under replicate loading conditions. In view of the often unavailability of such a database, this work proposes a new probabilistic model based on Walker's crack growth rate equation and considers the variability in both the stress intensity factor range, ΔK and stress ratio, R. The optimum estimates of the model parameters are established using the maximum likelihood estimation (MLE) method. The model is examined using selected sets of measured fatigue crack growth curves of 7075-T6 and 2024-351 aluminum alloys. It demonstrates acceptable predictions for fatigue crack growth data on replicate and variable R-ratio loadings with failure probabilities in the range of 0.10 ≤pF≤ 0.90. The error on the observed fatigue crack growth rate data is normally distributed. The criterion of the minimum number of replicate tests for a valid probabilistic assessment of the fatigue crack growth data is established. Based on the mean squared error (MSE) parameter, the model provides a better representation of the mean fatigue crack growth rate behavior of the material for fatigue loading with variable R-ratios.
format Article
author Hashmi, Mudassar Hussain
Abdul Hamid, Mohd. Fauzi
Tamin, Mohd. Nasir
author_facet Hashmi, Mudassar Hussain
Abdul Hamid, Mohd. Fauzi
Tamin, Mohd. Nasir
author_sort Hashmi, Mudassar Hussain
title A robust probabilistic fatigue crack growth model based on walker's crack growth rate equation for metallic materials
title_short A robust probabilistic fatigue crack growth model based on walker's crack growth rate equation for metallic materials
title_full A robust probabilistic fatigue crack growth model based on walker's crack growth rate equation for metallic materials
title_fullStr A robust probabilistic fatigue crack growth model based on walker's crack growth rate equation for metallic materials
title_full_unstemmed A robust probabilistic fatigue crack growth model based on walker's crack growth rate equation for metallic materials
title_sort robust probabilistic fatigue crack growth model based on walker's crack growth rate equation for metallic materials
publisher Elsevier Ltd
publishDate 2023
url http://eprints.utm.my/106508/
http://dx.doi.org/10.1016/j.probengmech.2023.103445
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score 13.18916