Collisionless Rayleigh–Taylor-like instability of the boundary between a hot pair plasma and an electron–proton plasma: The undular mode

M. Dieckmann, M. Falk, D. Folini, R. Walder, P. Steneteg, I. Hotz, A. Ynnerman
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引用次数: 4

Abstract

We study with a two-dimensional particle-in-cell simulation the stability of a discontinuity or piston, which separates an electron-positron cloud from a cooler electron-proton plasma. Such a piston might be present in the relativistic jets of accreting black holes separating the jet material from the surrounding ambient plasma and when pair clouds form during an X-ray flare and expand into the plasma of the accretion disk corona. We inject a pair plasma at a simulation boundary with a mildly relativistic temperature and mean speed. It flows across a spatially uniform electron-proton plasma, which is permeated by a background magnetic field. The magnetic field is aligned with one simulation direction and oriented orthogonally to the mean velocity vector of the pair cloud. The expanding pair cloud expels the magnetic field and piles it up at its front. It is amplified to a value large enough to trap ambient electrons. The current of the trapped electrons, which are carried with the expanding cloud front, drives an electric field that accelerates protons. A solitary wave grows and changes into a piston after it saturated. Our simulations show that this piston undergoes a collision-less instability similar to a Rayleigh-Taylor instability. The undular mode grows and we observe fingers in the proton density distribution. The effect of the instability is to deform the piston but it cannot destroy it.
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热对等离子体和电子-质子等离子体边界的无碰撞瑞利-泰勒样不稳定性:波状模式
我们用二维粒子在胞内模拟研究了将电子-正电子云与较冷的电子-质子等离子体分离的不连续或活塞的稳定性。这样的活塞可能存在于吸积黑洞的相对论喷流中,将喷流物质与周围的等离子体分离,当x射线耀斑期间形成对云并扩展到吸积盘日冕的等离子体时。我们在温和相对论温度和平均速度的模拟边界注入一对等离子体。它流过空间均匀的电子-质子等离子体,该等离子体被背景磁场渗透。磁场对准一个模拟方向,并垂直于对云的平均速度矢量。膨胀的对云将磁场驱逐出去,并将其堆积在其前方。它被放大到足够大的值以捕获周围的电子。被困电子的电流,被膨胀的云锋所携带,驱动一个电场,加速质子。一个孤立的波在饱和后增长并变成一个活塞。我们的模拟表明,这个活塞经历了类似于瑞利-泰勒不稳定性的无碰撞不稳定性。波状模式增大,质子密度分布呈手指状。不稳定性的影响是使活塞变形,但不会破坏它。
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