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Measurements of the principal Hugoniots of dense gaseous deuterium?helium mixtures: Combined multi-channel optical pyrometry, velocity interferometry, and streak optical pyrometry measurements

机译:稠密气态氘氦混合物的主要Hugoniot的测量:组合多通道光学高温法,速度干涉法和条纹光学高温法测量

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The accurate hydrodynamic description of an event or system that addresses the equations of state, phase transitions, dissociations, ionizations, and compressions, determines how materials respond to a wide range of physical environments. To understand dense matter behavior in extreme conditions requires the continual development of diagnostic methods for accurate measurements of the physical parameters. Here, we present a comprehensive diagnostic technique that comprises optical pyrometry, velocity interferometry, and time-resolved spectroscopy. This technique was applied to shock compression experiments of dense gaseous deuterium–helium mixtures driven via a two-stage light gas gun. The advantage of this approach lies in providing measurements of multiple physical parameters in a single experiment, such as light radiation histories, particle velocity profiles, and time-resolved spectra, which enables simultaneous measurements of shock velocity, particle velocity, pressure, density, and temperature and expands understanding of dense high pressure shock situations. The combination of multiple diagnostics also allows different experimental observables to be measured and cross-checked. Additionally, it implements an accurate measurement of the principal Hugoniots of deuterium?helium mixtures, which provides a benchmark for the impedance matching measurement technique.
机译:对事件或系统的精确流体力学描述,包括状态,相变,离解,电离和压缩等式,决定了材料如何响应各种物理环境。要了解极端条件下的致密物质行为,需要不断发展诊断方法,以精确测量物理参数。在这里,我们提出了一种综合的诊断技术,其中包括光学高温测定法,速度干涉测定法和时间分辨光谱法。该技术应用于通过两级轻气枪驱动的稠密气态氘-氦气混合物的冲击压缩实验。这种方法的优势在于可以在单个实验中测量多个物理参数,例如光辐射历史,粒子速度剖面和时间分辨谱,从而可以同时测量冲击速度,粒子速度,压力,密度和温度并扩展了对密集高压冲击情况的了解。多种诊断方法的组合还可以测量和交叉检查不同的实验观测值。此外,它可以对氘-氦混合物的主要Hugoniots进行精确测量,从而为阻抗匹配测量技术提供了基准。

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