惯性约束聚变相关线阵z缩紧辐射能量的经验测定

D. Sinars, M. Cuneo, R. Lemke, E. Waisman, B. Jones, M. Jones, J. Porter, S. Lebedev
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引用次数: 2

摘要

只提供摘要形式。在20毫安、100毫安脉冲功率装置上研究了直径20毫米、不同质量的300丝钨阵列的辐射功率和能量。在一些测试中,在阵列的轴线上插入了直径为1毫米的铝棒,以限制收敛并减少可能的磁动能来源。利用x射线针孔相机和条纹图像、透射光栅光谱仪和6151 eV射线照相对内爆的动能进行了经验估计。将这些能量与主功率脉冲之前和期间的辐射能量进行比较,这是与惯性约束聚变应用相关的部分,以及z箍缩辐射的总能量。很明显,这些线阵辐射的总能量需要超过内爆动能的能量输入,正如其他地方指出的,对于Al阵列,在主功率脉冲期间辐射的能量(通常约占总辐射能量的一半)接近于本文研究的重型阵列的估计内爆动能,但对于最轻的阵列可能存在一些差异。具体来说,用三种独立的诊断方法测量的x射线发射区域的大小似乎太大,无法与解释主脉冲辐射能量所需的高收敛比相一致。通过射线照相和电路模型能量学获得的质量密度分布的支持分析正在进行中,同时也在进行误差分析,以了解我们是否可以最终支持需要非动能能量源来解释主辐射脉冲的说法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Empirical Determination of Radiation Energetics of Inertial Confinement Fusion Relevant Wire-Array Z-Pinches
Summary form only given. The radiation power and energy produced by 20 mm diameter, 300-wire tungsten arrays of various masses was studied on the 20 MA, 100 ns Z pulsed power facility. On some tests, 1-mm diameter Al rods were inserted on the axis of the array both to limit the convergence and to reduce possible sources of magnetic kinetic energy. Empirical estimates of the kinetic energy of the implosion were made using x-ray pinhole camera and streak images, transmission-grating- spectrometers, and 6151 eV radiography. These were compared to the energy radiated before and during the main power pulse, which is the portion relevant for inertial confinement fusion applications, as well as the total energy radiated from the Z-pinch. It is clear that the total energy radiated by these wire arrays requires energy input above and beyond the kinetic energy of the implosion, as noted elsewhere for Al arrays, The energy radiated during the main power pulse (generally about half of the total radiated energy) is close to the estimated implosion kinetic energy for the heavy arrays studied here, but for the lightest arrays there may be some discrepancies. Specifically, the size of the X-ray emitting regions measured with three independent diagnostic methods appears too large to be consistent with the high convergence ratios required to explain the main pulse radiation energy. Supporting analyses of a mass-density profile obtained via radiography and circuit model energetics are ongoing at the time of this abstract, as well as an error analysis to understand whether we can conclusively support the statement that a non-kinetic source of energy is required to explain the main radiation pulse.
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