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Elastic wave amplitudes in shock-compressed thin polycrystalline aluminum samples

机译:冲击压缩的薄多晶铝样品中的弹性波振幅

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摘要

Thin polycrystalline aluminum (1050 and 6061-T6 alloys) samples were shocked to 4 GPa to examine elastic wave attenuation not observed in thicker samples (1-10 mm). Using laser interferometry in plate impact experiments, particle velocity histories were obtained for 0.08-1 mm thick samples, thinned from bulk material. Unlike past work on thicker samples, thin 1050 Al samples reveal large and rapidly attenuating elastic wave amplitudes, indicating a time-dependent elastic-plastic response. Extrapolation of measured elastic wave amplitudes to larger sample thicknesses agrees well with previously observed amplitudes for thicker 1050 and 1060 Al samples. Thus, all of the results for relatively pure polycrystalline Al can be reconciled into a single consistent picture: elastic wave attenuation, due to time-dependent elastic-plastic response, is confined to material close to the impact surface. In contrast to the 1050 Al results, thin 6061-T6 Al samples reveal an elastic wave amplitude of ~0.7 GPa with no attenuation, in quantitative agreement with previous results for thick 6061-T6 Al samples. The lack of elastic wave attenuation even in thin samples suggests that elastic wave amplitudes in shocked 6061-T6 Al are governed by different plastic deformation mechanisms than those for shocked pure Al.
机译:将薄的多晶铝(1050和6061-T6合金)样品冲击到4 GPa,以检查在较厚的样品(1-10 mm)中未观察到的弹性波衰减。在板撞击实验中使用激光干涉测量法,获得了从散装材料变薄的0.08-1 mm厚样品的粒子速度历史。与以往对较厚样品的研究不同,较薄的1050 Al样品显示出较大且迅速衰减的弹性波振幅,表明时间依赖于弹塑性响应。将测得的弹性波振幅外推到较大的样品厚度与较厚的1050和1060 Al样品先前观察到的振幅非常吻合。因此,可以将相对纯的多晶Al的所有结果协调成一个一致的图像:由于时间相关的弹塑性响应,弹性波衰减被限制在靠近撞击表面的材料上。与1050 Al的结果相反,薄的6061-T6 Al样品显示了〜0.7 GPa的弹性波振幅,没有衰减,这与较早的6061-T6 Al样品的结果定量一致。即使在薄样品中也没有弹性波衰减,这表明与冲击纯Al相比,冲击6061-T6 Al中的弹性波振幅受不同的塑性变形机制控制。

著录项

  • 来源
    《Journal of Applied Physics》 |2009年第7期|073508.1-073508.5|共5页
  • 作者单位

    Department of Physics and Institute for Shock Physics, Washington State University, Pullman, Washington 99164, USA;

    Department of Physics and Institute for Shock Physics, Washington State University, Pullman, Washington 99164, USA;

    Department of Physics and Institute for Shock Physics, Washington State University, Pullman, Washington 99164, USA;

    Department of Physics and Institute for Shock Physics, Washington State University, Pullman, Washington 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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