Relaxation to universal non-Maxwellian equilibria in a collisionless plasma

Robert J. Ewart, Michael L. Nastac, Pablo J. Bilbao, Thales Silva, Luís O. Silva, Alexander A. Schekochihin
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Abstract

Generic equilibria are derived for turbulent relaxing plasmas via an entropy-maximization procedure that accounts for the short-time conservation of certain collisionless invariants. The conservation of these collisionless invariants endows the system with a partial `memory' of its prior conditions, but is imperfect on long time scales due to the development of a turbulent cascade to small scales, which breaks the precise conservation of phase volume, making this memory imprecise. The equilibria are still determined by the short-time collisionless invariants, but the invariants themselves are driven to a universal form by the nature of the turbulence. This is numerically confirmed for the case of beam instabilities in one-dimensional electrostatic plasmas, where sufficiently strong turbulence appears to cause the distribution function of particle energies to develop a universal power-law tail, with exponent -2.
在无碰撞等离子体中弛豫到普遍的非麦克斯韦平衡状态
通过熵最大化程序推导出了湍流弛豫等离子体的一般平衡,该程序考虑了某些无碰撞不变式的短时守恒。这些无碰撞不变式的守恒赋予了系统对其先验条件的部分 "记忆",但由于湍流级联发展到小尺度,打破了相体积的精确守恒,使得这种记忆在长时间尺度上并不完美。平衡状态仍然由短时无碰撞不变式决定,但不变式本身受湍流性质的驱动而具有普遍形式。这一点在一维静电等离子体中的束不稳定性案例中得到了数值证实,在这种情况下,足够强的湍流似乎会导致粒子能量的分布函数形成一个普遍的幂律尾,其分量为-2。
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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