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Dynamic formation of stable current-driven plasma jets

机译:动态形成稳定的电流驱动等离子体射流

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摘要

Instabilities play a prominent role in determining the inherent structure and properties of magnetized plasma jets spanning both laboratory and astrophysical settings. The manner in which prominent unstable modes dynamically evolve remains key to understanding plasma behavior and control. In astrophysical phenomena, self-similar jets are observed to propagate over vast distances while avoiding breakup caused by unstable mode growth. However, the production of stable dense plasma jets in the laboratory has been limited by the onset of unstable modes that restrict jet lifetime, collimation, and scalability. In this work, we visualize the formation of stable laboratory-generated, dense, super-magnetosonic plasma jets in real time, and we identify an underlying mechanism that contributes to this behavior. The current-driven plasma jets generated in our experiments form a flowing Z-pinch, which is generally unstable to the m = 1 kink instability. Our results indicate that a stable dense plasma jet can be maintained for timescales over which a steady pinch current can be sustained, even at levels which would otherwise lead to rapid unstable mode growth and resultant pinch disassembly.
机译:在确定横跨实验室和天体物理环境的磁化等离子体射流的固有结构和特性方面,不稳定性起着重要作用。突出的不稳定模式动态演化的方式仍然是了解等离子体行为和控制的关键。在天体物理现象中,观察到自相似射流在很长的距离内传播,同时避免了由不稳定模态增长引起的破裂。但是,实验室中稳定密集的等离子流的生产受到不稳定模式的限制,不稳定模式限制了喷嘴的寿命,准直度和可扩展性。在这项工作中,我们实时可视化了稳定的实验室生成的,密集的,超磁旋等离子射流的形成,并确定了导致这种行为的潜在机制。在我们的实验中产生的电流驱动的等离子流形成一个流动的Z形夹点,该夹点通常对于m = ink1扭结不稳定性是不稳定的。我们的结果表明,即使在一定水平上,也可以维持稳定的密集等离子流,其持续时间可以保持稳定的夹点电流,否则会导致快速不稳定的模态增长并导致夹点拆卸。

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