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A fully magnetohydrodynamic simulation of three-dimensional non-null reconnection

机译:三维非零重连接的完全磁流体动力学模拟

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A knowledge of the nature of fully three-dimensional magnetic reconnection is crucial in understanding a great many processes in plasmas. It has been previously shown that in the kinematic regime the evolution of magnetic flux in three-dimensional reconnection is very different from two dimensions. In this paper a numerical fully magnetohydrodynamic simulation is described, in which this evolution is investigated. The reconnection takes place in the absence of a magnetic null point, and the nonideal region is localized in the center of the domain. The effect of differently prescribed resistivities is considered. The magnetic field is stressed by shear boundary motions, and a current concentration grows within the volume. A stagnation-point flow develops, with strong outflow jets emanating from the reconnection region. The behavior of the magnetic flux matches closely that discovered in the kinematic regime. In particular, it is found that no unique field line velocity exists, and that as a result field lines change their connections continually and continuously throughout the nonideal region. In order to describe the motion of magnetic flux within the domain, it is therefore necessary to use two different field line velocities. The importance of a component of the electric field parallel to the magnetic field is also demonstrated. (c) 2005 American Institute of Physics.
机译:完全三维磁重联的本质知识对于理解等离子体中的许多过程至关重要。先前已经表明,在运动学方面,三维重新连接中的磁通量的演化与二维有很大不同。在本文中,描述了一个数值的全磁流体动力学模拟,其中研究了这种演化。重新连接在没有磁性零点的情况下发生,并且非理想区域位于磁畴的中心。考虑了不同规定的电阻率的影响。剪切边界运动对磁场施加压力,并且在该体积内电流集中度增大。随着重新连接区域的流出,形成了一个停滞点流。磁通量的行为与运动学中发现的行为非常匹配。特别地,发现不存在唯一的场线速度,结果,场线在整个非理想区域中连续不断地改变其连接。为了描述磁畴内的磁通运动,因此有必要使用两个不同的磁力线速度。还说明了平行于磁场的电场分量的重要性。 (c)2005年美国物理研究所。

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