A Mixed Experimental-numerical Energy-based Approach for Fatigue Life Assessment in Notched Samples under Multiaxial Loading

J. Cunha, F. Nogueira, R. Branco, J. Costa, P. Prates, F. Berto, F. Antunes
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Abstract

This paper presents a methodology to predict the fatigue lifetime in notched geometries subjected to multiaxial loading on the basis of the cumulated strain energy density. The modus operandi consists of defining an energy-based fatigue master curve that relates the cumulated strain energy density with the number of cycles to failure using standard cylindrical specimens tested under low-cycle fatigue conditions. After that, an elastic-plastic finite-element model representative of the material behaviour, notched geometry and multiaxial loading scenario is developed and used to account for the strain energy density at the crack initiation site. This energy is then averaged using the Theory of Critical Distances and inserted into the energy- based fatigue master curve to estimate the lifetime expectancy. Overall, the comparison between the experimental and predicted fatigue lives has shown a very good agreement. Keywords: Multiaxial fatigue, Fatigue life prediction, Strain energy density
多轴载荷下缺口试样疲劳寿命的混合实验-数值能量评估方法
本文提出了一种基于累积应变能密度的多轴载荷下缺口几何材料疲劳寿命预测方法。操作方法包括定义一个基于能量的疲劳主曲线,该曲线将累积应变能密度与在低周疲劳条件下测试的标准圆柱形试样的循环次数联系起来。然后,建立了代表材料性能、缺口几何形状和多轴加载场景的弹塑性有限元模型,并用于解释裂纹起裂处的应变能密度。然后使用临界距离理论对该能量进行平均,并插入到基于能量的疲劳主曲线中,以估计预期寿命。总的来说,试验疲劳寿命与预测疲劳寿命的比较显示出很好的一致性。关键词:多轴疲劳,疲劳寿命预测,应变能密度
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