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The two-fluid dynamics and energetics of the asymmetric magnetic reconnection in laboratory and space plasmas

机译:实验室和空间等离子体中不对称磁重联的双流体动力学和高能学

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Magnetic reconnection is a fundamental process in magnetized plasma where magnetic energy is converted to plasma energy. Despite huge differences in the physical size of the reconnection layer, remarkably similar characteristics are observed in both laboratory and magnetosphere plasmas. Here we present the comparative study of the dynamics and physical mechanisms governing the energy conversion in the laboratory and space plasma in the context of two-fluid physics, aided by numerical simulations. In strongly asymmetric reconnection layers with negligible guide field, the energy deposition to electrons is found to primarily occur in the electron diffusion region where electrons are demagnetized and diffuse. A large potential well is observed within the reconnection plane and ions are accelerated by the electric field toward the exhaust region. The present comparative study identifies the robust two-fluid mechanism operating in systems over six orders of magnitude in spatial scales and over a wide range of collisionality.
机译:磁重新连接是磁化等离子体中的一个基本过程,在该过程中,磁能被转换为等离子体能。尽管重新连接层的物理尺寸存在巨大差异,但在实验室和磁层等离子体中都观察到了非常相似的特性。在这里,我们在数值模拟的帮助下,对在双流体物理学中控制实验室和空间等离子体中能量转换的动力学和物理机制进行了比较研究。在具有可忽略的引导场的强非对称重连接层中,发现沉积到电子的能量主要发生在电子被消磁并扩散的电子扩散区域中。在重新连接平面内观察到一个大的势阱,并且离子通过电场朝着排气区域加速。本比较研究确定了在空间尺度上超过六个数量级且在广泛的碰撞性范围内的系统中运行的强大的双流体机制。

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