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Linear dependence of surface expansion speed on initial plasma temperature in warm dense matter

机译:表面致密物质中表面膨胀速度与初始等离子体温度的线性关系

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摘要

Recent progress in laser-driven quasi-monoenergetic ion beams enabled the production of uniformly heated warm dense matter. Matter heated rapidly with this technique is under extreme temperatures and pressures, and promptly expands outward. While the expansion speed of an ideal plasma is known to have a square-root dependence on temperature, computer simulations presented here show a linear dependence of expansion speed on initial plasma temperature in the warm dense matter regime. The expansion of uniformly heated 1–100 eV solid density gold foils was modeled with the RAGE radiation-hydrodynamics code, and the average surface expansion speed was found to increase linearly with temperature. The origin of this linear dependence is explained by comparing predictions from the SESAME equation-of-state tables with those from the ideal gas equation-of-state. These simulations offer useful insight into the expansion of warm dense matter and motivate the application of optical shadowgraphy for temperature measurement.
机译:激光驱动准单能离子束的最新进展使得能够产生均匀加热的温暖致密物质。用这种技术迅速加热的物质在​​极端温度和压力下会迅速向外膨胀。尽管已知理想等离子体的膨胀速度与温度具有平方根相关性,但此处介绍的计算机模拟显示,在热致密物质状态下,膨胀速度与初始等离子体温度的线性相关性。用RAGE辐射-流体力学代码对均匀加热的1–100 waseV固体密度金箔的膨胀进行建模,发现平均表面膨胀速度随温度线性增加。通过将SESAME状态方程表的预测与理想气体状态方程的预测进行比较,可以解释这种线性相关性的起源。这些模拟为温暖的致密物质的膨胀提供了有用的见识,并激发了光学阴影照相法在温度测量中的应用。

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