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首页> 外文期刊>Journal of Applied Physics >Elastic-plastic deformation of molybdenum single crystals shocked to 12.5 GPa: Crystal anisotropy effects
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Elastic-plastic deformation of molybdenum single crystals shocked to 12.5 GPa: Crystal anisotropy effects

机译:钼单晶的弹性变形震动至12.5GPa:晶体各向异性效应

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摘要

To understand crystal anisotropy effects on shock-induced elastic-plastic deformation of molybdenum (Mo), results from high-purity single crystals shocked along [110] and [111] orientations to an elastic impact stress of 12.5 GPa were obtained and compared with the [100] results previously reported [A. Mandal and Y. M Gupta, J. Appl. Phys. 121, 045903 (2017)]. Measured wave profiles showed a time-dependent response, and strong anisotropy was observed in the elastic wave attenuation with the propagation distance, elastic limits, shock speeds, and overall structure of the wave profiles. Resolved shear stresses on {110} 111 and {112} 111 slip systems provided insight into the observed anisotropy in elastic wave attenuation and elastic limits and showed that shear stresses, and not longitudinal stresses, are a better measure of strength in shocked single crystals. Under shock compression, resolved shear stresses at elastic limits were comparable to the Peierls stress of screw dislocations in Mo. Elastic wave attenuation was rapid when shear stresses were larger than the Peierls stress. Large differences in the elastic limits under shock and quasi-static loading are likely a consequence of the large Peierls stress value for Mo. Numerically simulated wave profiles, obtained using the dislocation-based plasticity model described in the [100] work, showed good agreement with all measured wave profiles but could not differentiate between the {110} 111 and {112} 111 slip systems. Overall, experimental results and corresponding numerical simulations for the three crystal orientations have provided a comprehensive insight into shock-induced elastic-plastic deformation of Mo single crystals, including the development of a continuum material model. Published under license by AIP Publishing.
机译:要了解对钼(Mo)的冲击诱导的弹性塑性变形的晶体各向异性效应,得到沿着[110]和[111]对弹性冲击应力震动的高纯度单晶的结果并与12.5GPa的弹性冲击应力进行比较[100]先前报道的结果[A. Mandal和Y.M Gupta,J. Appl。物理。 121,045903(2017)]。测量的波形轮廓显示时间依赖性响应,并且在具有传播距离,弹性限制,冲击速度和波形轮廓的整体结构的弹性波衰减中观察到强四个各向异性。 {110} <111>和{112} <111>滑动系统的分离的剪切应力提供了对弹性波衰减和弹性限制的观察到各向异性的洞察,并且显示剪切应力,而不是纵向应力,是更好的强度衡量标准震惊的单晶。在冲击压缩下,弹性限制下的分辨剪切应力与Mo的螺杆脱位的Peierls应力相当。当剪切应力大于PEIERLS应力时弹性波衰减是快速的。休克和准静态负载下弹性极限的大差异可能是MO的大PEIERLS应力值的结果。使用[100]工作中描述的基于位错的塑性模型获得的数值模拟波形曲线,表现出良好的一致性使用所有测量的波形轮廓,但不能区分{110} <111>和{112} <111>滑动系统。总体而言,三个晶体取向的实验结果和相应的数值模拟已经为Mo单晶的冲击引起的弹性塑性变形提供了全面的洞察力,包括开发连续材料模型。通过AIP发布在许可证下发布。

著录项

  • 来源
    《Journal of Applied Physics》 |2019年第5期|055903.1-055903.11|共11页
  • 作者

    Mandal A.; Gupta Y. M.;

  • 作者单位

    Washington State Univ Inst Shock Phys Pullman WA 99164 USA|Washington State Univ Sch Mech & Mat Engn Pullman WA 99164 USA;

    Washington State Univ Inst Shock Phys Pullman WA 99164 USA|Washington State Univ Dept Phys & Astron Pullman WA 99164 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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