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Magnetic field penetration and magnetohydrodynamic acceleration in opening switch plasmas

机译:打开开关等离子体时的磁场渗透和磁流体动力加速

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Summary form only given. Magnetic field penetration in current-carrying plasmas is being studied in a plasma opening switch geometry. Several Marshall guns are used to inject single or multi-species plasmas between coaxial conductors connected to the output of NRL's Hawk pulsed-power generator. Following injection of the plasma, the generator is used to apply an electrical pulse with a peak current of 700 kA, a peak voltage of 640 kV, and a rise time of 1.2 μs. Initially the plasma acts as a short, conducting all of the current. Over time, the resulting magnetic field interacts with the plasma through a combination of magnetohydrodynamic (MHD) plasma translation and field penetration that is not well understood. Eventually a quasi-neutral gap forms in the plasma, allowing electrical power to flow downstream. The quality of this switching is affected by the manner in which the gap is formed. This process is monitored using magnetic probes and a ribbon-beam interferometer running parallel to the axis of the accelerator and spanning the inter-electrode plasma region. Particle-in-cell (PIC) modeling shows that the relative importance of MHD translation and field penetration in the gap formation process is dependent upon the radial density gradient and composition of the plasma. These parameters of the initial injected plasma are adjusted experimentally using the Marshall guns for light (hydrogen), heavy (argon), and mixed light and heavy components. The experimentally-observed behavior of the resulting opening switch plasmas in the presence of the interacting magnetic field is compared with results from PIC modeling.
机译:仅提供摘要表格。载流等离子体中的磁场渗透正在以等离子体断开开关的几何形状进行研究。几种Marshall喷枪用于在与NRL的Hawk脉冲功率发生器的输出连接的同轴导体之间注入单种或多种等离子体。注入等离子体后,使用发生器施加电脉冲,峰值电流为700 kA,峰值电压为640 kV,上升时间为1.2μs。最初,等离子体起短路作用,传导所有电流。随着时间的流逝,最终产生的磁场通过磁流体动力学(MHD)等离子体平移和磁场穿透的结合而与等离子体相互作用,这是人们尚未很好理解的。最终在等离子体中形成准中性间隙,从而使电能向下游流动。该切换的质量受形成间隙的方式影响。使用磁探针和平行于加速器轴并跨越电极间等离子体区域的带状束干涉仪监控此过程。单元中粒子(PIC)建模显示,在间隙形成过程中,MHD转换和场穿透的相对重要性取决于径向密度梯度和等离子体的组成。初始注入的血浆的这些参数使用Marshall枪通过实验调整了轻质(氢气),重质(氩气)以及轻质和重质混合成分。将在存在相互作用磁场的情况下所得打开的开关等离子体的实验观察到的行为与PIC建模的结果进行比较。

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