Department of Physics, West Virginia University, Morgantown, West Virginia, 26506, USA.
Phys Rev Lett. 2010 Jul 2;105(1):015004. doi: 10.1103/PhysRevLett.105.015004.
Large-scale resistive Hall-magnetohydrodynamic simulations of the transition from Sweet-Parker (collisional) to Hall (collisionless) magnetic reconnection are presented; the first to separate secondary islands from collisionless effects. Three main results are described. There exists a regime with secondary islands but without collisionless effects, and the reconnection rate is faster than Sweet-Parker, but significantly slower than Hall reconnection. This implies that secondary islands do not cause the fastest reconnection rates. The onset of Hall reconnection ejects secondary islands from the vicinity of the X line, implying that energy is released more rapidly during Hall reconnection. Coronal applications are discussed.
大型电阻霍尔磁流体动力学模拟从 Sweet-Parker(碰撞)到霍尔(无碰撞)磁重联的转变;首次将次级岛与无碰撞效应分离。描述了三个主要结果。存在一个具有次级岛但没有无碰撞效应的区域,并且重联速率比 Sweet-Parker 快,但明显比 Hall 重联慢。这意味着次级岛不会导致最快的重联速率。Hall 重联的开始将次级岛从 X 线附近弹出,这意味着在 Hall 重联期间能量释放得更快。讨论了日冕应用。