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Two-fluid description of wave-particle interactions in strong Buneman turbulence

机译:强布尼曼湍流中波粒相互作用的两流体描述

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To understand the nature of anomalous resistivity in magnetic reconnection, we investigate turbulence-induced momentum transport and energy dissipation while a plasma is unstable to the Buneman instability in force-free current sheets. Using 3D particle-in-cell simulations, we find that the macroscopic effects generated by wave-particle interactions in Buneman instability can be approximately described by a set of electron fluid equations. We show that both energy dissipation and momentum transport along electric current in the current layer are locally quasi-static, but globally dynamic and irreversible. Turbulent drag dissipates both the streaming energy of the current sheet and the associated magnetic energy. The net loss of streaming energy is converted into the electron component heat conduction parallel to the magnetic field and increases the electron Boltzmann entropy. The growth of self-sustained Buneman waves satisfies a Bernoulli-like equation that relates the turbulence-induced convective momentum transport and thermal momentum transport. Electron trapping and de-trapping drive local momentum transports, while phase mixing converts convective momentum into thermal momentum. The drag acts like a micro-macro link in the anomalous heating processes. The decrease of magnetic field maintains an inductive electric field that re-accelerates electrons, but most of the magnetic energy is dissipated and converted into the component heat of electrons perpendicular to the magnetic field. This heating process is decoupled from the heating of Buneman instability in the current sheets. Ion heating is weak but ions play an important role in assisting energy exchanges between waves and electrons. Cold ion fluid equations together with our electron fluid equations form a complete set of equations that describes the occurrence, growth, saturation and decay of the Buneman instability.
机译:为了了解磁重联中异常电阻率的性质,我们研究了在无力电流板中等离子体对Buneman不稳定不稳定的湍流引起的动量传输和能量耗散。使用3D单元中的粒子模拟,我们发现通过波尼曼不稳定性中的波粒相互作用产生的宏观效应可以通过一组电子流体方程来近似描述。我们表明,电流层中的能量耗散和沿电流的动量传递都是局部准静态的,但是全局动态的且不可逆的。湍流阻力消散了当前薄片的流动能量和相关的磁能。流能量的净损失转换为与磁场平行的电子成分导热,并增加了电子玻耳兹曼熵。自持布涅曼波的增长满足了类似于伯努利方程,该方程将湍流引起的对流动量传递和热动量传递联系起来。电子俘获和去俘获驱动局部动量传输,而相混合将对流动量转换成热动量。在异常加热过程中,阻力就像微型宏链接。磁场的减小保持了感应电场,该感应电场使电子重新加速,但是大部分磁能被耗散并转化为垂直于磁场的电子的分量热。该加热过程与当前工作表中布尼曼不稳定性的加热解耦。离子加热微弱,但是离子在协助波与电子之间的能量交换中起着重要作用。冷离子流体方程与我们的电子流体方程一起形成了一套完整的方程,描述了Buneman不稳定性的发生,增长,饱和和衰减。

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