论文标题
对非对称磁重新连接中电子扩散区域的新景象
A new Look at the Electron Diffusion Region in Asymmetric Magnetic Reconnection
论文作者
论文摘要
提出了对无碰撞磁重新连接中电子扩散区域的结构的新审查。该研究基于对不对称磁重新连接的细胞中粒子模拟,该模拟还包括整个当前层的温度梯度,除了密度和磁场梯度。我们发现X点,流停滞点和局部电流密度峰一致。围绕流量停滞点和电流密度峰周围的电流和能量平衡分析始终表明,电流耗散与nongyrotropic电子压力的发散有关。此外,当与电子流速度的剪切型梯度结合使用时,相同的压力项也可以维持局部热能,以防止对流损失。这些效果与在对称磁重新连接中也相似。此外,我们在这里发现与电流的对流相关的显着影响,我们可以通过非触发压力差异与广义磁管漂移有关。因此,只有一部分压力能够消散电流密度。但是,先前的结论是,重新连接电场的作用是维持当前密度,该密度也适用于对称系统。最后,我们讨论了EDR中电子分布函数的相关特征。
A new look at the structure of the electron diffusion region in collisionless magnetic reconnection is presented. The research is based on a particle-in-cell simulation of asymmetric magnetic reconnection, which include a temperature gradient across the current layer in addition to density and magnetic field gradient. We find that none of X-point, flow stagnation point, and local current density peak coincide. Current and energy balance analyses around the flow stagnation point and current density peak show consistently that current dissipation is associated with the divergence of nongyrotropic electron pressure. Furthermore, the same pressure terms, when combined with shear-type gradients of the electron flow velocity, also serve to maintain local thermal energy against convective losses. These effects are similar to those found also in symmetric magnetic reconnection. In addition, we find here significant effects related to the convection of current, which we can relate to a generalized diamagnetic drift by the nongyrotropic pressure divergence. Therefore, only part of the pressure force serves to dissipate the current density. However, the prior conclusion that the role of the reconnection electric field is to maintain the current density, which was obtained for a symmetric system, applies here as well. Finally, we discuss related features of electron distribution function in the EDR.