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首页> 外文期刊>Materials Science and Engineering >An EBSD investigation on deformation-induced shear bands in a low nickel austenitic stainless steel under controlled shock-loading conditions
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An EBSD investigation on deformation-induced shear bands in a low nickel austenitic stainless steel under controlled shock-loading conditions

机译:EBSD研究在受控冲击载荷条件下低镍奥氏体不锈钢中的形变剪切带

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摘要

Adiabatic shear band is an important materials phenomenon often observed in metals when processed at high strain rates. The mechanical responses and microstructure evolution in it attract strong interests from the scientists of materials science and engineering. We report the results of the microstructure characteristic of a 200 series Fe-Cr-Ni austenitic stainless steel with low nickel contents deformed at high strain rates (about 5.8 × 10~5 s~(-1)) by a split Hopkinson pressure bar. The hat shaped specimens are used to induce the formation of the adiabatic shear bands under shock-loading tests. The microstructure and microtexture of the shear band in a 200 series Fe-Cr-Ni austenitic stainless steel are investigated by means of optical micrograph electron backscatter diffraction. The shear bands can be generated at about 78 (is after the true flow stress reaches the value about 923 MPa. The grains in the boundary of the shear band are elongated along the shear direction, and the core of the shear band consists of ultrafine equiaxed grains with diameter 0.1-0.3 μm and low dislocation density. According to the orientation distribution, the microtexture peaked at (45°, 65°, 0°) in the matrix slightly shifts towards the recrystallization microtexture (60°, 60°, 0°) in the shear band center, and the grain boundaries in the shear band are geometrical necessary boundaries with high-angles. Calculations of temperature rise about 943 K suggest that the temperature in the shear band is above the recrystallization point. Finally, the grain refinement in an adiabatic shear band in the 200 series Fe-Cr-Ni austenitic stainless steel is described as a consequence of the rotational dynamic recrystallization.
机译:绝热剪切带是一种重要的材料现象,在高应变速率下加工时通常会在金属中观察到。其中的机械响应和微观结构演变引起了材料科学和工程科学家的强烈兴趣。我们报告了由分裂的霍普金森压力棒在高应变率(约5.8×10〜5 s〜(-1))下变形的,具有低镍含量的200系列Fe-Cr-Ni奥氏体不锈钢的显微组织特征的结果。帽形试样用于在冲击载荷试验下诱导绝热剪切带的形成。利用光学显微照片电子背散射衍射技术研究了200系列Fe-Cr-Ni奥氏体不锈钢中剪切带的组织和显微组织。剪切带可以在大约78时产生(是在真实流动应力达到大约923 MPa之后。剪切带边界中的晶粒沿剪切方向拉长,剪切带的核心由超细等轴组成)。粒径为0.1-0.3μm,位错密度低的晶粒,根据取向分布,在基体中以(45°,65°,0°)达到峰值的微织构向重结晶微纹理(60°,60°,0°)微移)在剪切带中心,并且剪切带中的晶界是具有大角度的几何必要边界。大约943 K的温升计算表明剪切带中的温度高于再结晶点。最后,晶粒细化由于旋转动态重结晶,描述了200系列Fe-Cr-Ni奥氏体不锈钢的绝热剪切带中的热膨胀系数。

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  • 来源
    《Materials Science and Engineering》 |2014年第29期|301-308|共8页
  • 作者单位

    School of Materials Science and Engineering, Central South University, Changsha 410083, Hunan, People's Republic of China,Department of Mechanical and Aerospace Engineering, University of California, San Diego, CA 92093, United States of America,Department of Nanoengineering, University of California, San Diego, CA 92093, United States of America,Key Lab of Nonferrous Materials, Ministry of Education, Central South University, Changsha 410083, Hunan, People's Republic of China,University of California, San Diego, 9500 Gilman Drive, La Jolla, CA 92093, United States of America;

    School of Materials Science and Engineering, Central South University, Changsha 410083, Hunan, People's Republic of China;

    School of Materials Science and Engineering, Central South University, Changsha 410083, Hunan, People's Republic of China;

    Department of Mechanical and Aerospace Engineering, University of California, San Diego, CA 92093, United States of America,Department of Nanoengineering, University of California, San Diego, CA 92093, United States of America;

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

    EBSD; Steel; Shear bands; Recrystallization;

    机译:EBSD;钢;剪切带;重结晶;

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