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Lagrangian technique to calculate window interface velocity from shock velocity measurements: Application for quartz windows

机译:拉格朗日技术计算冲击速度测量窗口界面速度:Quartz Windows的应用

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Measurement of the window interface velocity is a common technique for investigating the dynamic response materials at high strain rates. However, these measurements are limited in pressure to the range where the window remains transparent. The most common window material for this application is lithium fluoride, which under single shock compression becomes opaque at similar to 200 GPa. To date, no other window material has been identified for use at higher pressures. Here, we present a Lagrangian technique to calculate the interface velocity from a continuously measured shock velocity, with application to quartz. The quartz shock front becomes reflective upon melt, at similar to 100 GPa, enabling the use of velocity interferometry to continuously measure the shock velocity. This technique overlaps with the range of pressures accessible with LiF windows and extends the region where wave profile measurements are possible to pressures in excess of 2000 GPa. We show through simulated data that the technique accurately reproduces the interface velocity within 20% of the initial state, and that the Lagrangian technique represents a significant improvement over a simple linear approximation. Published by AIP Publishing.
机译:窗口界面速度的测量是用于在高应变率下研究动态响应材料的常用技术。然而,这些测量值对窗户保持透明的范围有限。本申请的最常见的窗口材料是氟化锂,在单个冲击压缩下,在类似于200GPa的情况下变得不透明。迄今为止,没有识别出其他窗口材料以在更高的压力下使用。在这里,我们提出了一种拉格朗日技术来计算从连续测量的冲击速度的界面速度,应用于石英。在熔体时,石英震反射在熔体上变得反射,类似于100GPa,使得使用速度干涉测量法连续测量冲击速度。该技术与带有Lif Windows可接近的压力范围重叠,并延伸波形测量可能超过2000GPa的压力的区域。我们通过模拟数据显示该技术在初始状态的20%内精确地再现接口速度,并且拉格朗日技术在简单的线性近似值上表示显着改善。通过AIP发布发布。

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