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Magnetic Field Diffusion and Enhanced Resistivity in 12-cm-Diameter 200-ns 3.5-MA -Pinch Implosions

机译:直径为12厘米的200纳秒3.5毫安的内爆时的磁场扩散和增强的电阻率

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Investigations of magnetic field diffusion and plasma resistivity in 12-cm-diameter triple-gas-puff Ar $Z$-pinch implosions were carried out by using planar laser-induced fluorescence (PLIF), a laser shearing interferometer (LSI), and a laser wavefront analyzer (LWA) on a 3.5-MA 200-ns generator. The PLIF measurements gave the initial Ar gas distributions. The implosion velocity and electron density profiles were measured from LWA and/or LSI. From these, the implosion plasma sheath thickness, ion density, mean ion charge states, temperatures, and implosion velocity are obtained, which allows us to calculate the classical plasma resistivity. A 1-D analytic magnetic field diffusion model is constructed and used to predict the imploding plasma sheath thickness and its resistivity. Based on comparisons of the experimental measurements and the diffusion model prediction, we found out that plasma resistivity is enhanced by the cross-field diffusion above the classical value, as high as 60 times the Spitzer's value. Details are given in this paper.
机译:通过使用平面激光诱导荧光(PLIF),激光剪切干涉仪(LSI)和光学显微镜对直径为12厘米的三气团Ar $ Z $夹点内爆中的磁场扩散和等离子体电阻率进行了研究。 3.5 MA 200 ns发生器上的激光波前分析仪(LWA)。 PLIF测量给出了初始Ar气体分布。内爆速度和电子密度分布是通过LWA和/或LSI测量的。由此得出内爆等离子体鞘层厚度,离子密度,平均离子电荷状态,温度和内爆速度,这使我们能够计算经典的等离子体电阻率。构建一维解析磁场扩散模型,并将其用于预测爆破的等离子体鞘层厚度及其电阻率。通过对实验测量值和扩散模型预测的比较,我们发现,通过超过经典值(高达Spitzer值的60倍)的交叉场扩散,可以提高等离子体电阻率。详细信息在本文中给出。

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