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金属薄膜蠕变变形与材料结构的相关性研究
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作者单位:

1.西安稀有金属材料研究院有限公司;2.兰州理工大学;3.西安石油大学

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基金项目:

国家自然科学基金(项目号52101099),陕西省自然科学青年基金(项目号2021JQ-977, 2020JQ-924, 2021JQ-976),国家自然科学基金项目(面上项目,重点项目,重大项目)


The Relationship Between Creep Deformation And Materials Structure Of Metal Thin Films
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Affiliation:

Xi’an Rare Metal Materials Institute Co.Ltd

Fund Project:

National Natural Science Foundation of China (52101099),Natural Science Foundation of Shaanxi Province(2021JQ-977, 2020JQ-924, 2021JQ-976)

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    摘要:

    本文采用纳米压入实验方法评价金属薄膜室温蠕变变形行为与材料微观组织结构的关系。金属薄膜分别选取纳米晶体心立方(BCC)金属Mo、纳米晶面心立方(FCC)金属Ni以及非晶CuZr为研究材料,加载速率为0.005,0.05,0.1,0.2 s-1。研究发现BCC-Mo、FCC-Ni以及非晶CuZr蠕变变形均表现出很强的加载应变速率依赖性,究其原因与其主导变形机制相关。BCC-Mo蠕变行为由螺型位错主导的混合位错运动为主,FCC-Ni蠕变变形由晶界发射不全位错主导,非晶CuZr蠕变行为由剪切变形转变区(STZ)主导变行为主。

    Abstract:

    The relationship between the microstructure and the creep behavior of metal films at room temperature was evaluated by nanoindentation experiment. Nanocrystalline body center-cubic (BCC) metal Mo, nanocrystalline face center-cubic (FCC) metal Ni and amorphous CuZr were selected as the study materials, and the loading rates were 0.005, 0.05, 0.1 and 0.2s-1.According to research, the creep deformation of BCC-Mo, FCC-Ni and amorphous CuZr exhibits strong loading strain rate dependence, and the main reason is related to the dominant deformation mechanism.The creep behavior of BCC-Mo is dominated by the mixed dislocation movement dominated by screw dislocation, the creep behavior of FCC-Ni is dominated by the grain boundary emission incomplete dislocation, and the creep behavior of amorphous CuZr is dominated by the shear deformation transition zone (STZ).

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引用本文

吴金平,李春晨,赵彬,邱龙时,辛超,潘晓龙,赵恒,李欢,赵婧.金属薄膜蠕变变形与材料结构的相关性研究[J].稀有金属材料与工程,2022,51(5):1674~1680.[Wu Jinping, Li Chuncheng, Zhao Bin, Qiu Longshi, Xin Chao, Pan Xiaolong, Zhao Heng, Li Huan, Zhao Jing. The Relationship Between Creep Deformation And Materials Structure Of Metal Thin Films[J]. Rare Metal Materials and Engineering,2022,51(5):1674~1680.]
DOI:10.12442/j. issn.1002-185X.20210833

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历史
  • 收稿日期:2021-09-18
  • 最后修改日期:2021-11-10
  • 录用日期:2021-11-25
  • 在线发布日期: 2022-06-09
  • 出版日期: 2022-05-30