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复合细化超细晶纯锆动态再结晶模型的研究
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作者单位:

1.太原科技大学;2.西安建筑科技大学;3.晋中学院

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基金项目:

中国国家自然科学基金、〝三晋学者〞项目


Dynamic Recrystallization Model Of Ultrafine grained Pure Zirconium Refined by Compounding
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Affiliation:

1.Taiyuan University of Science and Technology;2.Xi''an University of Architecture and Technology;3.Jinzhong University

Fund Project:

The Chinese?National?Natural?Science?Foundation (51675362); The “The Young SAN JIN Scholars” Program. S.

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    摘要:

    采用Gleeble-3800热模拟实验机对晶粒尺寸为200-250 nm的复合细化超细晶纯锆在变形温度为300°C~450°C,应变速率为0.001~0.05s-1的范围内进行单向热压缩实验。实验结果表明:热加工参数对超细晶纯锆流动应力影响很大。通过实验数据以及显微组织分析,在较高的变形温度和较低的应变速率的情况下更容易发生动态再结晶;构建超细晶纯锆的临界应变模型,得出其温度补偿应变速率因子Z与 (临界应变), (临界应力), (峰值应变)和 (峰值应力)间的关系;建立了超细晶纯锆动态再结晶体积分数模型,可以看出其动态再结晶发生的阶段为应变0.1~0.45。

    Abstract:

    An ultrafine-grained (UFG) pure zirconium(Zr) refined by compounding with a size of Φ4 × 6 mm was subjected to a unidirectional compression test using a Gleeble-3800 thermal simulation tester at the temperature of 300 °C–450 °C and a strain rate range of 0.001–0.05 s-1. Experimental results show that the process parameters influence the flow stress of the UFG pure zirconium. Experimental data and microstructure analysis, reveal that DRX is more likely to occur at higher deformation temperature and lower strain rate. The critical strain and critical stress of UFG pure zirconium were determined. In addition, a critical strain model of UFG pure zirconium was established by introducing Zener–Hollomon paramete Z. The constitutive model of UFG pure zirconium was confirmed based on DRX volume fraction and proven to occur at a strain of 0.1 to 0.45.

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韩培盛,马炜杰,李艳威,朱晓宇,杨西荣,王效岗.复合细化超细晶纯锆动态再结晶模型的研究[J].稀有金属材料与工程,2021,50(2):504~510.[Han Peisheng, Ma Weijie, Li Yanwei, Zhu Xiaoyu, Yang Xirong, Wang Xiaogang. Dynamic Recrystallization Model Of Ultrafine grained Pure Zirconium Refined by Compounding[J]. Rare Metal Materials and Engineering,2021,50(2):504~510.]
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  • 收稿日期:2020-02-08
  • 最后修改日期:2020-03-17
  • 录用日期:2020-03-19
  • 在线发布日期: 2021-03-09
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