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首页> 外文期刊>International Journal of Fatigue >A crystal plasticity investigation of slip system interaction, GND density and stored energy in non-proportional fatigue in Nickel-based superalloy
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A crystal plasticity investigation of slip system interaction, GND density and stored energy in non-proportional fatigue in Nickel-based superalloy

机译:镍基超合金中的非比例疲劳中的滑动系统相互作用,GND密度和储存能量的晶体可塑性研究

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摘要

A dislocation and gradient-based crystal plasticity finite element study of fatigue has been carried out for nickel-based superalloy RR1000 in order to investigate detrimental non-proportional effects on fatigue life. Six differing multiaxial loading cycles including both proportional and non-proportional paths have been addressed and a critical stored energy density criterion employed for fatigue life. Non-proportional paths are shown to lead to higher numbers of intragranular slip system activations, reflecting experimental observations. These give higher geometrically necessary dislocation (GND) densities resulting from slip system interaction occurring through latent hardening effects in the model. The higher GND densities in turn drive up local stress and stored energy densities, thereby leading to lower predicted fatigue lives, in keeping with non-proportional fatigue experiments in the alloy considered. Intragranular slip system interaction may be the mechanistic explanation for non-proportional effects in fatigue of engineering alloys.
机译:基于镍的超合金RR1000进行了疲劳的脱位和基于梯度的晶体塑性有限元研究,以研究对疲劳寿命的有害性非比例效应进行抗疲劳。已经解决了包括比例和非比例路径的六个不同的多轴装载周期,并且用于疲劳寿命的临界存储能量密度标准。显示非比例路径导致更高数量的腔内滑动系统激活,反映了实验观察。这些通过模型中通过潜在的硬化效应发生的滑动系统相互作用产生更高的几何必要位错(GND)密度。较高的GND密度反过来驱动局部应力和储存的能量密度,从而导致较低的预测疲劳寿命,以便在考虑合金中的非比例疲劳实验。综节滑动系统相互作用可能是工程合金疲劳中非比例效应的机械解释。

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