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首页> 外文期刊>Journal of Applied Physics >Microjetting from a grooved Al surface under supported and unsupported shocks
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Microjetting from a grooved Al surface under supported and unsupported shocks

机译:在受支撑和不受支撑的冲击下从带槽的Al表面进行微喷射

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摘要

Using molecular dynamics methods, we simulate and compare the microjetting from a grooved Al surface induced by supported and unsupported shocks at different breakout pressures. Via the analysis on the microjetting morphologies and mass distributions, we find that the threshold of shock breakout pressure for the microjetting formation is almost same, but the variation of microjet mass with shock pressure shows a great difference for the two loading patterns. Under supported shock loading, the microjet mass keeps a continuous increase with increasing shock pressure, and release melting can enhance it markedly. By contrast, the microjet mass under unsupported shocks is smaller and seems no remarkable increase with shock pressure in our simulations (at extremely short pulses), implying the shock decaying can weaken the microjetting. Of course, a large area of fragments near the surface may form in this case. The microjet source distributions corresponding to supported and unsupported shocks are presented. It is found that the former becomes apparently broader than the latter with increasing shock pressure. Besides, the microjet tip velocity under supported shocks may appear a reduction because of the material strength effect below release melting. While under unsupported shocks, all the microjets in solid and melted states will experience the reduction of tip velocity. These decrements of tip velocity can be fitted by an exponential function.
机译:使用分子动力学方法,我们模拟并比较了在不同的破裂压力下,由有支撑和无支撑的冲击引起的带槽铝表面的微射流。通过对微射流形态和质量分布的分析,我们发现微射流形成的冲击破裂压力阈值几乎相同,但是在两种加载模式下,微射流质量随冲击压力的变化存在很大差异。在受支撑的冲击载荷下,微射流质量会随着冲击压力的增加而持续增加,并且释放融化会显着增强它。相比之下,在我们的模拟中(在极短的脉冲下),无支撑冲击下的微喷质量较小,并且似乎没有随冲击压力而显着增加,这意味着冲击衰减会削弱微喷。当然,在这种情况下,可能会在表面附近形成大面积的碎片。显示了与受支持和不受支持的冲击相对应的微射流源分布。发现随着冲击压力的增加,前者显然变得比后者更宽。此外,由于低于释放熔化的材料强度效应,在受到冲击的情况下微喷头的速度可能会降低。在不受支持的冲击下,所有处于固态和熔融状态的微型喷嘴都会经历尖端速度的降低。这些尖端速度的降低可以通过指数函数来拟合。

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  • 来源
    《Journal of Applied Physics》 |2014年第7期|1-7|共7页
  • 作者单位

    Institute of Applied Physics and Computational Mathematics, Beijing 100094, China;

  • 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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