为评估实验室 X 射线光离子化等离子体的辐射流体力学模拟,开发空间和时间分辨电子密度测量方法

IF 1.6 3区 物理与天体物理 Q3 PHYSICS, FLUIDS & PLASMAS
G.S. Jaar , K.J. Swanson , R.C. Mancini , A.L. Astanovitskiy , D.C. Mayes
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引用次数: 0

摘要

光离子化等离子体气体池实验是我们用来对等离子体特性进行参数()测量的一个成熟平台,可应用于高能天体物理系统。我们使用 HELIOS-CR 代码对实验进行一维辐射流体力学模拟建模,以帮助我们理解和解释实验结果。模拟预测等离子体的主体在整个实验过程中处于准均匀和流体动力无扰动状态。为了评估这一预测,我们引入了光子多普勒测速诊断法(PDV),以测量空间和时间分辨的等离子体电子密度。最初的测量很成功,但也有局限性,使得模型与数据的比较具有挑战性。为了解决这个问题,我们重新设计了气体池 PDV 诊断方法,并将测量点的数量增加了一倍,以对三分之二的气体池深度进行采样。我们还首次将升级后的 PDV 诊断结果与 HELIOS-CR 模拟结果进行了比较。实验数据证实了等离子体主体中未受扰动区域的预测,但揭示了模拟电子密度的时间演化和空间分布方面的差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of spatially and temporally resolved electron density measurements for the assessment of radiation hydrodynamics simulations of laboratory X-ray photoionized plasmas

The photoionized plasma gas cell experiment is an established platform we use to make at-parameter (ξ>>1ergs cm s1) measurements of plasma properties with application to high-energy astrophysical systems. We model the experiments with 1D radiation hydrodynamics simulations using the HELIOS-CR code to inform our understanding and assist in the interpretation of results. The simulations predict that the bulk of the plasma is in a quasi-uniform and hydrodynamically unperturbed state throughout the duration of the experiment. To evaluate this prediction, we introduced a photonic Doppler velocimetry (PDV) diagnostic to measure spatially and temporally resolved plasma electron density. The initial measurements were successful but had limitations that made model-data comparisons challenging. To address this, we re-designed the gas cell PDV diagnostic and doubled the number of measurement locations to sample across two thirds of the depth of the cell. We also present a comparison of the results from the upgraded PDV diagnostic to the HELIOS-CR simulations for the first time. The experimental data confirms the prediction of an unperturbed region in the bulk of the plasma but reveals discrepancies in the time evolution and spatial distribution of the simulated electron density.

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来源期刊
High Energy Density Physics
High Energy Density Physics PHYSICS, FLUIDS & PLASMAS-
CiteScore
4.20
自引率
6.20%
发文量
13
审稿时长
6-12 weeks
期刊介绍: High Energy Density Physics is an international journal covering original experimental and related theoretical work studying the physics of matter and radiation under extreme conditions. ''High energy density'' is understood to be an energy density exceeding about 1011 J/m3. The editors and the publisher are committed to provide this fast-growing community with a dedicated high quality channel to distribute their original findings. Papers suitable for publication in this journal cover topics in both the warm and hot dense matter regimes, such as laboratory studies relevant to non-LTE kinetics at extreme conditions, planetary interiors, astrophysical phenomena, inertial fusion and includes studies of, for example, material properties and both stable and unstable hydrodynamics. Developments in associated theoretical areas, for example the modelling of strongly coupled, partially degenerate and relativistic plasmas, are also covered.
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