多元线性回归参数用于确定镁合金基于疲劳的熵表征

IF 1.2 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
M. Fauthan, S. Abdullah, M. Abdullah, I. F. Mohamed
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引用次数: 1

摘要

本文介绍了基于应力比和施加载荷的多元线性回归方法的发展,该方法采用熵生成法进行评估。考虑不可逆热力学框架,将能量耗散与材料退化联系起来确定疲劳寿命。这种关系是通过使用统计方法预测完全熵生成而建立的,其中恒定振幅加载应用于评估疲劳寿命。通过压紧拉伸试验,对试样施加不同的应力比。在试验过程中,观察了温度的变化。当施加应力比为0.7的3000 n荷载时,熵产最小,为2.536 MJm-3 K-1。通过图形残差分析来考虑模型的假设。结果表明,基于外加载荷与应力比的预测回归模型与实验结果吻合较好,与实际实验偏差仅为9.3%。因此,可以预测熵的产生,以获得耗散能量作为金属材料的不可逆退化,受到循环弹塑性载荷。热力学熵在疲劳过程中起着重要的作用,可以追踪疲劳寿命。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiple linear regression parameters for determining fatigue-based entropy characterisation of magnesium alloy
This paper presents the development of the multiple linear regression approach based on the stress ratio and applied load that was assessed using entropy generation. The energy dissipation is associated with material degradation to determine the fatigue life with consideration to the irreversible thermodynamic framework. This relationship was developed by predicting a complete entropy generation using a statistical approach, where a constant amplitude loading was applied to evaluate the fatigue life. By conducting compact tension tests, different stress ratios were applied to the specimen. During the tests, the temperature change was observed. The lowest entropy generation was 2.536 MJm-3 K-1 when 3,000N load with a stress ratio of 0.7 was applied to the specimen. The assumptions of the models were considered through graphical residual analysis. As a result, the predicted regression model based on the applied load and stress ratio was found to agree with the results of the experiment, with only 9.3% from the actual experiment. Therefore, the entropy generation can be predicted to access the dissipated energy as an irreversible degradation of a metallic material, subjected to cyclic elastic-plastic loading. Thermodynamic entropy is shown to play an important role in the fatigue process to trace the fatigue life.
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来源期刊
Frattura ed Integrita Strutturale
Frattura ed Integrita Strutturale Engineering-Mechanical Engineering
CiteScore
3.40
自引率
0.00%
发文量
114
审稿时长
6 weeks
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