材料科学
烧结
分子动力学
聚结(物理)
合金
微晶
介观物理学
蠕动
热力学
复合材料
冶金
物理
化学
凝聚态物理
计算化学
天体生物学
作者
Qingwei Guo,Hua Hou,Kaile Wang,Muxi Li,Peter K. Liaw,Yuhong Zhao
标识
DOI:10.1038/s41524-023-01139-9
摘要
Abstract Existing hot sintering models based on molecular dynamics focus on single-crystal alloys. This work proposes a new multiparticle model based on molecular dynamics to investigate coalescence kinetics during the hot-pressed sintering of a polycrystalline Al 0.3 CoCrFeNi high-entropy alloy. The accuracy and effectiveness of the multiparticle model are verified by a phase-field model. Using this model, it is found that when the particle contact zones undergo pressure-induced evolution into exponential power creep zones, the occurrences of phenomena, such as necking, pore formation/filling, dislocation accumulation/decomposition, and particle rotation/rearrangement are accelerated. Based on tensile test results, Young’s modulus of the as-sintered Al 0.3 CoCrFeNi high-entropy alloy is calculated to be 214.11 ± 1.03 GPa, which deviates only 0.82% from the experimental value, thus further validating the feasibility and accuracy of the multiparticle model.
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