Adiabatic shear behaviors of cold-rolled pure copper under different deformation degrees

被引:0
|
作者
Zhu Z.-C. [1 ]
Tang L. [1 ]
Wang R.-K. [1 ]
Xiao Z. [1 ]
He X. [2 ]
Chen Z.-Y. [1 ]
机构
[1] School of Materials Science and Engineering, Central South University, Changsha
[2] GriKin Advanced Materials Co., Ltd., Beijing
基金
中国国家自然科学基金;
关键词
Adiabatic shear band; Cold-rolled pure copper; Microstructure; Microtexture; Rotational dynamic recrystallization;
D O I
10.11817/j.ysxb.1004.0609.2021-41012
中图分类号
学科分类号
摘要
The hat-shaped specimens were prepared along the normal direction (ND) of the cold-rolled pure copper sheet. The dynamical shear test was conducted by the Split-Hopkinson pressure bar (SHPB). The adiabatic shear behaviors of cold rolled pure copper under different deformation degrees were systemically investigated by optical microscopy (OM), electron backscatter diffractometry (EBSD) and transmission electron microscopy (TEM). The results show that with the increase of strain rate, the peak stress and flow stress of corresponding to sample increase, and the strain rate hardening effect becomes more obvious. The adiabatic shear band (ASB) forms in the samples with different strains, and the change trend of the width of ASB is consistent. With the increase of strain, the strain gradient of transition region increases and ultrafine grains form within the ASB. The stable grain orientations, in which the crystal <110> direction tends to align with the local shear direction and the crystal {111} and {100} planes tend to parallel to the local shear plane, develop in the ASB areas. The thermodynamics and kinetics calculated results prove the possibility that the dynamic recrystallization can take place in shear bands based on the rotational dynamic recrystallization mechanism. Kinetic calculations indicate that ultrafine grains do not undergo significant growth during cooling stage after deformation. © 2021, Science Press. All right reserved.
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页码:1809 / 1817
页数:8
相关论文
共 19 条
  • [1] MUUR L E, PIZAA C., Dynamic recrystallization: The dynamic deformation regime, Metallurgical and Materials Transactions A, 38, 11, pp. 2611-2628, (2007)
  • [2] TANG Li, CHEN Zhi-yong, ZHAN Cong-kun, Et al., Microstructure and microtexture evolution of shear localization in dynamic deformation with different strains in annealed copper, Metallurgical and Materials Transactions A, 44, 2, pp. 793-805, (2013)
  • [3] LI Ming-bing, WANG Xin-nan, SHANG Guo-qiang, Et al., Ballistic properties and failure mechanisms of TC32 titanium alloy with bimodal microstructure, The Chinese Journal of Nonferrous Metals, 31, 2, pp. 365-372, (2021)
  • [4] BOAKYE-YIADOM S, BASSIM N., Microstructural evolution of adiabatic shear bands in pure copper during impact at high strain rates, Materials Science and Engineering A, 711, pp. 182-194, (2018)
  • [5] WANG Ren-ke, ZHANG Hui, TANG Li, Et al., Adiabatic shear deformation behaviors of cold-rolled copper under different impact loading directions, Materials Science and Engineering A, 754, 29, pp. 330-338, (2019)
  • [6] HUANG B, MIAO X F, LUO X, Et al., Microstructure and texture evolution near the adiabatic shear band (ASB) in TC17 titanium alloy with starting equiaxed microstructure studied by EBSD, Materials Characterization, 151, pp. 151-165, (2019)
  • [7] LIU Xiao, YANG Hui, ZHU Bi-wu, Et al., Flow behavior and constitutive model for pre-deformed AZ31 magnesium alloy under high-speed impact loading, The Chinese Journal of Nonferrous Metals, 31, 3, pp. 659-668, (2021)
  • [8] YANG Hong-bin, XIANG Wen-li, XU Yuan, Et al., Effect of cooling ways on adiabatic shear sensitivity of TC21 titanium alloy, The Chinese Journal of Nonferrous Metals, 27, 5, pp. 920-926, (2017)
  • [9] MEYERS M A, ANDRADE U R, CHOKSHI A H., The effect of grain size on the high-strain, high-strain-rate behavior of copper, Metallurgical and Materials Transactions A, 26, 11, pp. 2881-2893, (1995)
  • [10] HINES J A, VECCHIO K S., Recrystallization kinetics within adiabatic shear bands, Acta Materialia, 45, 2, pp. 635-649, (1997)