论文标题

带有拉格朗日标记的时间序列射线照相的同时压缩和不透明度数据

Simultaneous compression and opacity data from time-series radiography with a Lagrangian marker

论文作者

Swift, Damian C., Kritcher, Andrea L., Hawreliak, James A., Gaffney, James, Lazicki, Amy, MacPhee, Andrew, Bachmann, Benjamin, Doeppner, Tilo, Nilsen, Joseph, Whitley, Heather D., Collins, Gilbert W., Glenzer, Siegfried, Rothman, Stephen D., Kraus, Dominik, Falcone, Roger W.

论文摘要

时间分辨X射线照相可用于通过同时测量电击的至少两个机械参数来获得绝对的冲击雨果态,并且该技术特别适合一维收敛的冲击,其中单个实验探测一系列压力作为收敛的冲击强度。但是,在足够高的压力下,震惊的材料变得足够热,以至于X射线不透明度显着下降。如果该系统包含Lagrangian标记,以使标记中的质量已知,则可以使用此附加信息来限制不透明度和Hugoniot状态。在仅在冲击加热时不透明度变化的极限,而在随后的等凝压缩上不显着,可以独特地确定震动材料的不透明度。更一般而言,有必要假定不透射压缩的不透明度变化形式,或引入多个标记层。另外,假设状态方程或不透明度的方程式,在此类实验中存在标记层的存在使得非概述的特性比单独的放射线密度重建更准确地推导。显示了一个示例分析,用于测量国家点火设施中聚苯乙烯的聚合冲击波。

Time-resolved radiography can be used to obtain absolute shock Hugoniot states by simultaneously measuring at least two mechanical parameters of the shock, and this technique is particularly suitable for one-dimensional converging shocks where a single experiment probes a range of pressures as the converging shock strengthens. However, at sufficiently high pressures, the shocked material becomes hot enough that the x-ray opacity falls significantly. If the system includes a Lagrangian marker, such that the mass within the marker is known, this additional information can be used to constrain the opacity as well as the Hugoniot state. In the limit that the opacity changes only on shock heating, and not significantly on subsequent isentropic compression, the opacity of shocked material can be determined uniquely. More generally, it is necessary to assume the form of the variation of opacity with isentropic compression, or to introduce multiple marker layers. Alternatively, assuming either the equation of state or the opacity, the presence of a marker layer in such experiments enables the non-assumed property to be deduced more accurately than from the radiographic density reconstruction alone. An example analysis is shown for measurements of a converging shock wave in polystyrene, at the National Ignition Facility.

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