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The response of dislocations, low angle grain boundaries and high angle grain boundaries at high strain rates

机译:高应变率下脱位,低角度晶界和高角度晶界的响应

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摘要

As a most widely applied structure material, the deformed characteristics of steels primarily presented the adiabatic shear band (ASB) formation and phase transitions, instead of its intrinsic structure evolution at different strain rates. In previous works, seldom investigations on the high strain rates dependence of the dislocations, low angle grain boundaries (LAGBs) and high angle grain boundaries (HAGBs) were reported, and the transition mechanism among the three microstructural factors was not clear. Here, we used a gas gun to generate shock wave to compress the AISI1045 steels and investigated their structures under different stain rates of 4.3 × 10~5 s~(-1) (low) and 3.3 × 10~6 s~(-1) (high), respectively. A gradient structure was formed along shock compression direction. Surprisingly, the structure evolution of the steel has a strong rate effect. At high strain rates, the dislocations would form the LAGBs, while the LAGBs would difficultly transform into HAGBs. At low strain rates, the LAGBs preferred to transform into HAGBs. Furthermore, the LAGBs to HAGBs transformation was accompanied with the grain rotation. The texture under the low strain rates was changed from annealing {111} <211> to R-Cube {001} <110>, while that of the high strain rates became R-Goss {110} <110>→Goss {011} <100>→Cube {001} <100>. These results indicate that the rate effect of the structures under loading plays an important role in guiding the materials design and applications.
机译:作为最广泛应用的结构材料,钢的变形特性主要呈现绝热剪切带(ASB)形成和相变,而不是其在不同应变率下的内在结构演变。在以前的作用中,报道了对位错,低角度晶界(LAGBS)和高角度晶界(HAGB)的高应变率依赖性的研究,并且三种微观结构因子中的过渡机制尚不清楚。在这里,我们使用气枪产生冲击波以压缩AISI1045钢,并根据4.3×10〜5 s〜(-1)(低)和3.3×10〜6 s〜(-1)的不同污渍速度调查其结构。-1 )(高)分别。沿冲击压缩方向形成梯度结构。令人惊讶的是,钢的结构演变具有强率效应。在高应变率下,脱位将形成滞后,而遗漏将难以转化为HAGBS。在低应变率,滞后率优选转化为HAGBS。此外,滞后与牙布转化的曲线伴随着晶粒旋转。低应变速率下的纹理从退火{111} <211>改变为R-Cube {001} <110>,而高应变率的那个变为R-Goss {110} <110>→Goss {011} <100>→立方体{001} <100>。这些结果表明,载荷下结构的速率效应在引导材料设计和应用方面发挥着重要作用。

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  • 来源
    《Materials Science and Engineering》 |2021年第3期|141704.1-141704.10|共10页
  • 作者单位

    Joint Laboratory for Extreme Conditions Matter Properties Southwest University of Science and Technology Mianyang 621010 China;

    Institute of Physics Nuclear and Chemistry China Academy of Engineering Physics Mianyang 621900 China;

    Joint Laboratory for Extreme Conditions Matter Properties Southwest University of Science and Technology Mianyang 621010 China;

    Institute of Fluid Physics China Academy of Engineering Physics Mianyang 621900 China;

    Institute of Fluid Physics China Academy of Engineering Physics Mianyang 621900 China;

    Institute of Fluid Physics China Academy of Engineering Physics Mianyang 621900 China;

    Institute of Atomic and Molecular Physics Sichuan University Chengdu 610065 China;

    Department of Microstructure Physics and Alloy Design Max-Planck-Institut fuer Eisenforschung GmbH 40237 Dusseldorf Gemiany Department of Materials Imperial College London Kensington London SW7 2AZ United Kingdom;

    Joint Laboratory for Extreme Conditions Matter Properties Southwest University of Science and Technology Mianyang 621010 China;

    Joint Laboratory for Extreme Conditions Matter Properties Southwest University of Science and Technology Mianyang 621010 China;

    Institute of Fluid Physics China Academy of Engineering Physics Mianyang 621900 China;

    Joint Laboratory for Extreme Conditions Matter Properties Southwest University of Science and Technology Mianyang 621010 China Institute of Fluid Physics China Academy of Engineering Physics Mianyang 621900 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Rate effect; Shock compression; Grain boundaries; Dislocations; Steel;

    机译:效果;冲击压缩;谷物边界;脱臼;钢;

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