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Molecular dynamic simulation of nanocrystal formation and tensile deformation of TiAl alloy

机译:TiAl合金纳米晶形成与拉伸变形的分子动力学模拟

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The formation of nanocrystals from undercooling TiAl melt and deformation behavior of nanocrystalline TiAl alloy under tensile loading conditions are investigated by molecular dynamics simulation. The effects of quenching rate related to the solidification structure evolution during rapid quenching are described by internal energy, radial distribution functions, and common neighbor analysis. The simulation results indicate that the accumulation of atoms with icosahedral configuration and transformation into atomic cluster with BCC configuration in the undercooling melt are the key in crystalline nucleation growth, and eventually liquid TiAl alloy completely crystallizes at the quenching rate of 0.02 K ps?1. In the tensile deformation, grain boundaries sliding and lamellar domain increasing are the two main deformation mechanisms during plastic deformation, and cracks form due to the nucleation, growth and coalescence of void along the grain boundaries, which results in subsequent failure in nanocrystalline TiAl alloy. This paper provides fundamental understanding of the nanocrystalline formation of undercooling TiAl melt and the deformation mechanisms in the nanocrystalline TiAl at the atomic scale.
机译:通过分子动力学模拟研究了过冷的TiAl熔体形成的纳米晶以及在拉伸载荷条件下纳米晶TiAl合金的变形行为。通过内部能量,径向分布函数和公共邻域分析来描述与快速淬火过程中的凝固组织演变有关的淬火速率的影响。仿真结果表明,过冷熔体中具有二十面体构型的原子积累和转变为具有BCC构型的原子簇是晶体成核生长的关键,最终液态TiAl合金以0.02 K ps的淬灭速率完全结晶。 ?1 。在拉伸变形中,晶界滑动和层状晶界增加是塑性变形过程中的两个主要变形机制,并且由于沿晶界的空隙的成核,生长和聚结而形成裂纹,这导致了纳米晶TiAl合金的后续破坏。本文提供了对过冷TiAl熔体的纳米晶体形成以及纳米尺度TiAl原子级变形机制的基本理解。

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