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Stress Localization Resulting from Grain Boundary Dislocation Interactions in Relaxed and Defective Grain Boundaries

机译:由谷物边界位错相互作用引起的应力定位,谷物边界的晶界脱位相互作用

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摘要

Large-scale molecular dynamics simulations are used to study strain and stress localization in atomistic polycrystalline FCC digital samples in a thin-film configuration, deformed in tension. Special focus is placed on the effects of additional grain boundary disorder on the dislocation-grain boundary interaction. The development of the localized stress and strain regions is studied as dislocations are emitted from and arrive at grain boundaries. Digital samples with two different degrees of disorder in the grain boundaries but otherwise identical microstructures are compared in order to understand the effects of additional defects on the stress concentration that develops at the grain boundaries. Localization phenomena are found to depend on the details of the grain boundary defect structure and relaxation state. The results clearly show that the samples with more disordered grain boundaries are more prone to strain and stress localization, with a higher fraction of atoms experiencing extreme deformation. The simulation results are validated by comparison with the predictions of continuum theories and experimental measurements of localized stress performed in austenitic stainless steel.
机译:大规模的分子动力学模拟用于研究薄膜构造中原子多晶FCC数字样品中的应变和应力定位,在张紧中变形。特别重点放在额外的晶粒边界障碍对脱位晶界相互作用的影响。研究了局部应力和应变区的发展,因为从谷物边界发出并达到脱位。在晶界中具有两种不同紊乱的数字样品,但相比,相同的微观结构进行比较,以了解附加缺陷对在晶界产生的应力浓度的影响。发现本地化现象取决于晶界缺陷结构和松弛状态的细节。结果清楚地表明,具有更混乱的晶界的样品更容易出现应变和应力定位,具有更高的原子级数,经历极端变形。通过与在奥氏体不锈钢中进行的连续因子的预测和实验测量的预测进行了验证了仿真结果。

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