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Collisionless magnetic reconnection in space plasmas

机译:空间等离子体中的无碰撞磁重连接

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Magnetic reconnection, the merging of oppositely directed magnetic fields that leads to field reconfiguration, plasma heating, jetting and acceleration, is one of the most celebrated processes in collisionless plasmas. It requires the violation of the frozen-in condition which ties gyrating charged particles to the magnetic field inhibiting diffusion. Ongoing reconnection has been identified in near-Earth space as being responsible for the excitation of substorms, magnetic storms, generation of field aligned currents and their consequences, the wealth of auroral phenomena. Its theoretical understanding is now on the verge of being completed. Reconnection takes place in thin current sheets. Analytical concepts proceeded gradually down to the microscopic scale, the scale of the electron skin depth or inertial length, recognizing that current layers that thin do preferentially undergo spontaneous reconnection. Thick current layers start reconnecting when being forced by plasma inflow to thin. For almost half a century the physical mechanism of reconnection has remained a mystery. Spacecraft in situ observations in combination with sophisticated numerical simulations in two and three dimensions recently clarified the mist, finding that reconnection produces a specific structure of the current layer inside the electron inertial (also called electron diffusion) region around the reconnection site, the X line. Onset of reconnection is attributed to pseudo-viscous contributions of the electron pressure tensor aided by electron inertia and drag, creating a complicated structured electron current sheet, electric fields, and an electron exhaust extended along the current layer. We review the general background theory and recent developments in numerical simulation on collisionless reconnection. It is impossible to cover the entire field of reconnection in a short space-limited review. The presentation necessarily remains cursory, determined by our taste, preferences, and kn.
机译:磁重新连接是方向相反的磁场的合并,导致磁场重新配置,等离子体加热,喷射和加速,是无碰撞等离子体中最著名的过程之一。它要求违反冻结条件,该条件将旋转带电粒子与抑制扩散的磁场联系起来。在近地空间中,正在进行的重新连接被认为是引起亚暴,磁暴,产生场对准流及其后果,大量极光现象的原因。现在它的理论理解已接近完成。重新连接在薄薄的电流表中进行。分析概念逐渐发展到微观尺度,即电子趋肤深度或惯性长度的尺度,认识到薄的电流层优先进行自发重新连接。当等离子流变薄时,厚的电流层开始重新连接。近半个世纪以来,重新连接的物理机制一直是个谜。航天器的原位观测与二维和三维的复杂数值模拟相结合,最近澄清了雾,发现重新连接在重新连接部位周围的电子惯性(也称为电子扩散)区域内产生了电流层的特定结构,即X线。重新连接的开始归因于电子压力张量的伪粘性贡献,其由电子惯性和阻力辅助,产生了复杂的结构化电子电流表,电场和沿着电流层延伸的电子排气。我们回顾了一般背景理论和无碰撞重新连接数值模拟的最新进展。在短篇幅有限的评论中不可能涵盖重新连接的整个领域。根据我们的喜好,喜好和kn的确定,演示文稿必须保持粗略。

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