Li Tak Chu, Liu Yi-Hsin, Qi Yi, Zhou Muni
Department of Physics and Astronomy, Dartmouth College, Hanover, New Hampshire 03755, USA.
Laboratory for Atmospheric and Space Physics, University of Colorado Boulder, Boulder, Colorado 80303, USA.
Phys Rev Lett. 2023 Aug 25;131(8):085201. doi: 10.1103/PhysRevLett.131.085201.
Magnetic reconnection and plasma turbulence are ubiquitous processes important for laboratory, space, and astrophysical plasmas. Reconnection has been suggested to play an important role in the energetics and dynamics of turbulence by observations, simulations, and theory for two decades. The fundamental properties of reconnection at kinetic scales, essential to understanding the general problem of reconnection in magnetized turbulence, remain largely unknown at present. Here, we present an application of the magnetic flux transport method that can accurately identify reconnection in turbulence to a three-dimensional simulation. Contrary to ideas that reconnection in turbulence would be patchy and unpredictable, highly extended reconnection X lines, on the same order of magnitude as the system size, form at kinetic scales. Extended X lines develop through bidirectional reconnection spreading. They satisfy critical balance characteristic of turbulence, which predicts the X-line extent at a given scale. These results present a picture of fundamentally extended reconnection in kinetic-scale turbulence.
磁重联和等离子体湍流是在实验室、空间和天体物理等离子体中普遍存在的重要过程。二十年来,通过观测、模拟和理论研究,人们认为重联在湍流的能量学和动力学中起着重要作用。目前,对于理解磁化湍流中的重联这一普遍问题至关重要的动力学尺度下重联的基本特性,在很大程度上仍然未知。在此,我们将能够在湍流中精确识别重联的磁通量输运方法应用于三维模拟。与湍流中的重联是零散且不可预测的观点相反,在动力学尺度上形成了与系统大小处于同一数量级的高度延伸的重联X线。延伸的X线通过双向重联扩展而发展。它们满足湍流的临界平衡特性,该特性预测了给定尺度下X线的范围。这些结果呈现了一幅动力学尺度湍流中基本的延伸重联的图景。