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Shear strength of nanocrystalline delta-phase Pu-Ga alloys: Atomistic simulations

机译:纳米晶三相PU-GA合金的剪切强度:原子模拟

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The mechanical properties of nanocrystalline materials differ dramatically from those of conventional ones. In particular, the yield strength noticeably grows as grain size decreases. On the other hand, the grain size is not the only factor affecting the yield strength. Extended ingrain defects such as dislocations and stacking faults also contribute to the strength of materials. Modification of the mechanical properties of plutonium and its alloys via grain refinement is of interest because of their use in civil and military nuclear technologies, e.g., as a component of metallic nuclear fuel. But the experimental study of plutonium is hampered by its high chemical and radiological activity harmful to human health. That is why theoretical and computational techniques proved to be useful for investigation into plutonium properties must be applied first, prior to experimental ones. In the paper the atomistic simulation approach is applied to directly calculate the mechanical properties of nanocrystalline face centered cubic delta-phase Pu-Ga alloys, in particular, the ambient conditions quasi-static yield stress dependence on grain size and extended defect concentration. The range of grain sizes studied is 40 - 200 nm. A deviation from the Hall-Petch relation is demonstrated. The effect of the alloying addition redistribution inside grains as well as between the grains is also evaluated. (C) 2019 Elsevier B.V. All rights reserved.
机译:纳米晶体材料的机械性能从常规纳米晶体的差异急外。特别地,随着晶粒尺寸的降低,屈服强度明显增长。另一方面,粒度不是影响屈服强度的唯一因素。诸如脱位和堆叠故障等延伸的入口缺陷也有助于材料的强度。通过晶粒细化的钚及其合金的改变因其在民用和军事核技术方面的使用,例如,作为金属核燃料的组成部分。但对钚的实验研究受其对人体健康有害的高化学和放射活动的影响。这就是为什么在实验结果之前,必须首先应用被证明的理论和计算技术可用于调查钚性能。在纸质中,原子仿真方法应用于直接计算纳米晶面中心的立方δ相对普 - Ga合金的机械性能,特别是环境条件准静态屈服应力依赖晶粒尺寸和延长缺陷浓度。研究的谷粒尺寸范围为40-200nm。证明了与霍尔波格关系的偏差。还评估了合金加入再分布的谷物以及晶粒之间的效果。 (c)2019 Elsevier B.v.保留所有权利。

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