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分子动力学模拟不同层错能单晶Ni及其合金拉伸变形行为
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1.兰州理工大学材料科学与工程学院 甘肃 兰州 兰州理工大学省部共建有色金属先进加工与再利用国家重点实验室 甘肃 兰州;2.兰州石化职业技术大学 机械工程学院 兰州

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国家重点研发计划资助(项目号2017YFA0700703);甘肃省科技重大专项项目No.145RTSA004


Molecular dynamics simulation of tensile deformation behavior of monocrystalline Ni and its alloys with different stacking fault energies
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1.School of Material Science and Engineering,Lanzhou University of Technology;2.School of Mechanical Engineering,Lanzhou Petrochemical University of Vocational Technology

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    摘要:

    采用分子动力学模拟了不同尺寸模型的单晶Ni及Ni57Cr19Co19Al5合金[100]晶向拉伸变形过程,确定了具有稳定塑性流变应力的模型尺寸,进一步研究了在具有稳定塑性流变应力的相同模型下单晶Ni及其合金拉伸变形行为。结果表明,层错能较低的单晶Ni57Cr19Co19Al5合金在小尺寸模型拉伸变形时,容易形成多层孪晶结构或变形孪晶;模型的横截面边长大于30倍的晶格常数时,塑性流变阶段流变应力、相结构及位错密度随应变起伏趋于平稳。具有稳定流变应力的相同尺寸单晶Ni及其合金拉伸时,层错能越低,塑性变形时层错面的面积越大。Shockley不全位错在单晶Ni及其合金塑性变形过程中起主导作用,多层孪晶的形成伴随着位错耗尽,变形孪晶的形成与湮灭则主要由位错饥饿机制主导。

    Abstract:

    Molecular dynamics simulation was used to simulate the uniaxial tensile deformation of monocrystalline Ni and Ni57Cr19Co19Al5 alloy models with different cross-sectional sizes in the [100] orientation, the appropriate simulation modle size with stable plastic flow stress was determined. The tensile deformation behavior of monocrystalline Ni and its alloys of the same modle with stable flow stress were further studied. The results show that the monocrystalline Ni57Cr19Co19Al5 alloy with smaller modle sizes are likely to form multi-layer twins or deformation twins during the tensile process because of low stacking fault energy. As the cross-sectional side length of modle is greater than 30 times of lattice constant, the flow stress, phase structures and dislocation density in the plastic flow stage tend to be stable fluctuation with the variation of strain. When the monocrystalline Ni and Ni-based alloys with same modle of stable flow stress stage are stretched, the lower the stacking fault energy is, the larger the area of the stacking faults plane during plastic deformation. During the tensile process of monocrystalline Ni and Ni-based alloys, Shockley partials play a leading role in the plastic deformation process. The formation of multi-layer twins is accompanied by dislocation exhaustion, while the formation and annihilation of deformation twins are mainly dominated by the dislocation starvation mechanism.

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陈建军,丁雨田,马元俊,高钰璧,王兴茂.分子动力学模拟不同层错能单晶Ni及其合金拉伸变形行为[J].稀有金属材料与工程,2023,52(9):3186~3197.[Chen Jianjun, Ding Yutian, Ma Yuanjun, Gao Yunbi, Wang Xingmao. Molecular dynamics simulation of tensile deformation behavior of monocrystalline Ni and its alloys with different stacking fault energies[J]. Rare Metal Materials and Engineering,2023,52(9):3186~3197.]
DOI:10.12442/j. issn.1002-185X.20220731

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历史
  • 收稿日期:2022-09-13
  • 最后修改日期:2023-02-03
  • 录用日期:2023-02-14
  • 在线发布日期: 2023-09-25
  • 出版日期: 2023-09-21