Shocks propagate in a 2D dusty plasma with less attenuation than due to gas friction alone

A. Kananovich, John Goree
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引用次数: 9

Abstract

In a dusty plasma, an impulsively generated shock, i.e., blast wave, was observed to decay less than would be expected due to gas friction alone. In the experiment, a single layer of microparticles was levitated in a radio-frequency glow-discharge plasma. In this layer, the microparticles were self-organized as a 2D solid-like strongly coupled plasma, which was perturbed by the piston-like mechanical movement of a wire. To excite a blast wave, the wire's motion was abruptly stopped, so that the input of mechanical energy ceased at a known time. It was seen that, as it propagated across the layer, the blast wave's amplitude persisted with little decay. This result extends similar findings, in previous experiments with 3D microparticle clouds, to the case of 2D clouds. In our cloud, out-of-plane displacements were observed, lending support to the possibility that an instability, driven by wakes in the ion flow, provides energy that sustains the blast wave's amplitude, despite the presence of gas damping.
冲击在二维尘埃等离子体中传播,其衰减比单独由气体摩擦引起的衰减要小
在尘埃等离子体中,脉冲产生的激波,即爆炸波,被观察到比仅由气体摩擦引起的预期衰减要小。在实验中,单层微粒悬浮在射频辉光放电等离子体中。在该层中,微粒子自组织为二维固体状强耦合等离子体,并受到类似活塞的金属丝机械运动的扰动。为了激发爆炸波,导线的运动突然停止,因此机械能的输入在一个已知的时间停止。可以看到,当冲击波在这一层传播时,它的振幅持续存在,几乎没有衰减。这一结果将之前在3D微粒云实验中的类似发现扩展到2D云的情况。在我们的云中,观察到面外位移,这支持了一种可能性,即由离子流尾迹驱动的不稳定性,尽管存在气体阻尼,但仍提供了维持爆炸波振幅的能量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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