Current-rise-time Dependent Scaling of Nonlinear Magneto-Rayleigh-Taylor Instability in Fast Z-Pinch Implosions
编号:34 访问权限:仅限参会人 更新:2025-04-03 13:55:29 浏览:16次 张贴报告

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摘要
Understanding the scaling relationship between magneto-Rayleigh-Taylor instability (MRTI) growth and current rise time is critical for optimizing z-pinch dynamic hohlraum-driven inertial confinement fusion (ICF). Previous theoretical work by Wang et al. demonstrated that under conditions of constant implosion velocity in Z-pinch plasmas, the perturbation amplitude of MRTI prior to stagnation exhibits linear dependence on current rise time. To experimentally validate this scaling law, we conducted three distinct wire-array Z-pinch experiments on an 8 MA pulsed power generator, maintaining comparable implosion dynamics while systematically extending the current rise time. Through precise control of the synchronization of the generator's 24 modules, we achieved for the first time scaled wire-array implosions with current rise times increased by a factor of three. Experimental diagnostics, including time-resolved X-ray power emission and plasma self-emission imaging, were combined with magnetohydrodynamic simulations to quantify MRTI development. Both experimental observations and numerical results confirm a linear enhancement of MRTI perturbations with prolonged current rise time, in quantitative agreement with theoretical predictions. This work establishes crucial experimental verification of MRTI scaling behavior under controlled current temporal profiles, providing critical insights for hohlraum design in Z-pinch ICF applications.
关键词
magneto-Rayleigh-Taylor instability,Fast Z-pinch,Current rise time,Z-pinch ICF
报告人
WangX.G.
职工 Institute of Applied Physics and Computational Mathematics

稿件作者
WangX.G. Institute of Applied Physics and Computational Mathematics
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    05月12日

    2025

    05月15日

    2025

  • 03月26日 2025

    初稿截稿日期

  • 04月30日 2025

    提前注册日期

  • 05月15日 2025

    注册截止日期

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北京应用物理与计算数学研究所
陕西师范大学
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