Huba J D, Rudakov L I
Plasma Physics Division, Naval Research Laboratory, Washington, DC, USA.
Phys Rev Lett. 2004 Oct 22;93(17):175003. doi: 10.1103/PhysRevLett.93.175003. Epub 2004 Oct 19.
Two-dimensional Hall magnetohydrodynamic simulations are used to determine the magnetic reconnection rate in the Hall limit. The simulations are run until a steady state is achieved for four initial current sheet thicknesses: L=1,5,10, and 20c/omega(pi), where c/omega(pi) is the ion inertial length. It is found that the asymptotic (i.e., time independent) state of the system is nearly independent of the initial current sheet width. Specifically, the Hall reconnection rate is weakly dependent on the initial current layer width and is partial differential Phi/ partial differential t less, similar 0.1V(A0)B0, where Phi the reconnected flux, and V(A0) and B0 are the Alfvén velocity and magnetic field strength in the upstream region. Moreover, this rate appears to be independent of the scale length on which the electron "frozen-in" condition is broken (as long as it is <c/omega(pi)) and of the system size.
二维霍尔磁流体动力学模拟用于确定霍尔极限下的磁重联率。针对四种初始电流片厚度:L = 1、5、10和20c/ω(π)(其中c/ω(π)为离子惯性长度)进行模拟,直至达到稳态。研究发现,系统的渐近(即与时间无关)状态几乎与初始电流片宽度无关。具体而言,霍尔重联率对初始电流层宽度的依赖性较弱,且∂Φ/∂t < 0.1V(A0)B0,其中Φ为重新连接的通量,V(A0)和B0分别为上游区域的阿尔文速度和磁场强度。此外,该速率似乎与电子“冻结”条件被打破的尺度长度(只要该长度<c/ω(π))以及系统大小无关。