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Three-dimensional MHD Simulation of the Caltech Plasma Jet Experiment: First Results

机译:加州理工学院等离子射流实验的三维MHD模拟:初步结果

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摘要

Magnetic fields are believed to play an essential role in astrophysical jets with observations suggesting the presence of helical magnetic fields. Here, we present three-dimensional (3D) ideal MHD simulations of the Caltech plasma jet experiment using a magnetic tower scenario as the baseline model. Magnetic fields consist of an initially localized dipole-like poloidal component and a toroidal component that is continuously being injected into the domain. This flux injection mimics the poloidal currents driven by the anode-cathode voltage drop in the experiment. The injected toroidal field stretches the poloidal fields to large distances, while forming a collimated jet along with several other key features. Detailed comparisons between 3D MHD simulations and experimental measurements provide a comprehensive description of the interplay among magnetic force, pressure, and flow effects. In particular, we delineate both the jet structure and the transition process that converts the injected magnetic energy to other forms. With suitably chosen parameters that are derived from experiments, the jet in the simulation agrees quantitatively with the experimental jet in terms of magnetic/kinetic/inertial energy, total poloidal current, voltage, jet radius, and jet propagation velocity. Specifically, the jet velocity in the simulation is proportional to the poloidal current divided by the square root of the jet density, in agreement with both the experiment and analytical theory. This work provides a new and quantitative method for relating experiments, numerical simulations, and astrophysical observation, and demonstrates the possibility of using terrestrial laboratory experiments to study astrophysical jets.
机译:磁场被认为在天体物理射流中起着至关重要的作用,观察结果表明存在螺旋磁场。在这里,我们介绍了使用磁塔方案作为基准模型的Caltech等离子射流实验的三维(3D)理想MHD仿真。磁场由最初定位的偶极子状极向分量和不断注入到畴中的环形分量组成。这种通量注入模拟了实验中由阳极-阴极电压降驱动的极化电流。注入的环形场将极场扩展到很长的距离,同时与其他几个关键特征一起形成准直的射流。 3D MHD仿真与实验测量之间的详细比较提供了磁力,压力和流动效应之间相互作用的全面描述。特别是,我们描述了喷射结构和将注入的磁能转换为其他形式的过渡过程。利用从实验中得出的适当选择的参数,模拟中的射流在磁/动能/惯性能量,总极向电流,电压,射流半径和射流传播速度方面与实验射流在数量上是一致的。具体来说,模拟中的射流速度与倍数电流成比例,除以射流密度的平方根,这与实验和分析理论都一致。这项工作为相关的实验,数值模拟和天体观测提供了一种新的定量方法,并证明了使用地面实验室实验研究天体射流的可能性。

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