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首页> 外文期刊>International Journal of Fatigue >Crystal plasticity modeling of damage accumulation in dissimilar Mg alloy bi-crystals under high-cycle fatigue
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Crystal plasticity modeling of damage accumulation in dissimilar Mg alloy bi-crystals under high-cycle fatigue

机译:高周疲劳下不同镁合金双晶损伤累积的晶体塑性建模

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摘要

Damage accumulation in Mg AZ31-AZ80 alloy bi-crystals under fatigue loading at room temperature is studied using a modified version of the crystal plasticity finite element model of Abdolvand and Daymond. The model accounts for strain accommodation by both slip and tensile twinning, and is first shown to reasonably describe monotonic single crystal Mg experimental data from the literature. The high cycle fatigue behavior was then investigated in misoriented dissimilar alloy bi-crystals through stress-controlled simulations up to 1000 cycles. Nine different orientation combinations were simulated and the fatigue damage evolution, defined as the cumulative shear strain amplitude, were compared and analyzed. The bi-crystal geometry was used to simulate possible microstructure combinations occurring, for instance within an idealized friction stir weld. Findings suggest that when either of the alloy bi-crystal grains is oriented for basal slip, poor fatigue performance can occur by twinning or slip localization depending upon the neighboring orientation.
机译:使用Abdolvand和Daymond的晶体塑性有限元模型的改进版本,研究了室温疲劳载荷下Mg AZ31-AZ80合金双晶体的损伤累积。该模型通过滑动孪生和拉伸孪生解决了应变调节问题,并且首先被证明可以合理地描述文献中的单调单晶Mg实验数据。然后,通过多达1000个循环的应力控制模拟,研究了取向错误的异种合金双晶体的高循环疲劳行为。模拟了九种不同方向的组合,并比较和分析了疲劳损伤的演变,定义为累积剪切应变振幅。双晶体的几何形状用于模拟可能发生的微观结构组合,例如在理想的搅拌摩擦焊中。发现表明,当任一合金双晶粒取向为基面滑动时,取决于相邻取向,孪生或滑动局部化会导致不良的疲劳性能。

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