首页> 外文期刊>Journal of Applied Physics >Tantalum and vanadium response to shock-wave loading at normal and elevated temperatures. Non-monotonous decay of the elastic wave in vanadium
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Tantalum and vanadium response to shock-wave loading at normal and elevated temperatures. Non-monotonous decay of the elastic wave in vanadium

机译:钽和钒在正常和升高的温度下对冲击波负载的响应。钒中弹性波的非单调衰减

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摘要

The evolution of the elastic precursor waves in pure tantalum and vanadium is presented at normal and elevated temperatures over propagation distances that ranged from 0.125 to 3 mm. Measurements were performed in order to obtain experimental data about the temperature-rate dependence of the yield stress of the two metals. With increasing propagation distance, the rate of the decay of elastic precursor decreases, as the shear stress in the elastic precursor wave approaches the Peierls stresses. It has been found that the decay, with propagation distance, of the post-spike minimum of the spike-like elastic precursor wave in vanadium is essentially non-monotonous. The experiments also revealed that annealing of tantalum and vanadium increases their Hugoniot elastic limit. The anomalous increase of the high strain rate yield stress with temperature, as observed earlier for some FCC and HCP metals, has not been detected in these measurements.
机译:在正常温度和升高的温度下,在从0.125到3 mm的传播距离内​​,纯钽和钒中的弹性前驱波的演化都呈现出来。为了获得关于两种金属的屈服应力的温度-速率依赖性的实验数据,进行了测量。随着传播距离的增加,随着弹性前驱波中的切应力接近Peierls应力,弹性前驱体的衰减率降低。已经发现钒中尖峰状弹性前体波的尖峰后最小值随传播距离的衰减基本上是非单调的。实验还表明,钽和钒的退火会增加其Hugoniot弹性极限。在这些测量中未检测到高应变率屈服应力随温度的反常增加,如先前对某些FCC和HCP金属所观察到的。

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  • 来源
    《Journal of Applied Physics》 |2014年第24期|243502-243502|共1页
  • 作者

    Zaretsky E.B.; Kanel G.I.;

  • 作者单位

    Department of Mechanical Engineering, Ben Gurion University, 84105 Beer Sheva, Israel|c|;

  • 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
  • 中图分类
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