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A generalized two-fluid picture of non-driven collisionless reconnection and its relation to whistler waves

机译:非驱动无碰撞重新连接的广义两流体图及其与惠斯勒波的关系

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摘要

A generalized, intuitive two-fluid picture of 2D non-driven collisionless magnetic reconnection is described using results from a full-3D numerical simulation. The relevant two-fluid equations simplify to the condition that the flux associated with canonical circulation Q=m_e ∇ × u_e + q_e B is perfectly frozen into the electron fluid. In the reconnection geometry, flux tubes defined by Q are convected with the central electron current, effectively stretching the tubes and increasing the magnitude of Q exponentially. This, coupled with the fact that Q is a sum of two quantities, explains how the magnetic fields in the reconnection region reconnect and give rise to strong electron acceleration. The Q motion provides an interpretation for other phenomena as well, such as spiked central electron current filaments. The simulated reconnection rate was found to agree with a previous analytical calculation having the same geometry. Energy analysis shows that the magnetic energy is converted and propagated mainly in the form of the Poynting flux, and helicity analysis shows that the canonical helicity ∫P·Q dV as a whole must be considered when analyzing reconnection. A mechanism for whistler wave generation and propagation is also described, with comparisons to recent spacecraft observations.
机译:使用全3D数值模拟的结果描述了二维非驱动无碰撞磁重连接的广义直观两流体图片。相关的双流体方程简化为以下条件:与规范循环有关的通量Q = m_e∇×u_e + q_e B完全冻结在电子流体中。在重新连接的几何形状中,由Q定义的通量管与中心电子流对流,从而有效地拉伸了这些管并成倍地增加了Q的大小。这与Q是两个量之和的事实相结合,说明了重新连接区域中的磁场如何重新连接并产生强大的电子加速度。 Q运动还可以解释其他现象,例如尖峰的中心电子流灯丝。发现模拟的重新连接速率与具有相同几何形状的先前分析计算一致。能量分析表明,磁能主要以Poynting通量的形式转换和传播,而螺旋度分析表明,在分析重连接时必须整体考虑正则螺旋度∫P·Q dV。还介绍了一种与最近的航天器观测结果进行比较的哨声波产生和传播的机制。

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