Zhao Z H, Xie Y, Lei Z, Jiao J L, Zhou W M, Zhou C T, Zhu S P, He X T, Qiao B
Center for Applied Physics and Technology, HEDPS, and SKLNPT, School of Physics, Peking University, Beijing 100871, China.
Science and Technology on Plasma Physics Laboratory, Research Center of Laser Fusion, China Academy of Engineering Physics, Mianyang 621900, China.
Phys Rev E. 2021 Aug;104(2-2):025204. doi: 10.1103/PhysRevE.104.025204.
Inverse magnetic energy transfer from small to large scales is a key physical process for the origin of large-scale strong magnetic fields in the universe. However, so far, from the magnetohydrodynamic perspective, the onset of inverse transfer is still not fully understood, especially the underlying dynamics. Here, we use both two-dimensional and three-dimensional particle-in-cell simulations to show the self-consistent dynamics of inverse transfer in collisionless decaying turbulent plasmas. Using the space filtering technique in theory and numerical analyses, we identify magnetic reconnection as the onset and fundamental drive for inverse transfer, where, specifically, the subscale electromotive force driven by magnetic reconnection do work on the large-scale magnetic field, resulting in energy transfer from small to large scales. The mechanism is also verified by the strong correlations in locations and characteristic scales between inverse transfer and magnetic reconnection.
从较小尺度到较大尺度的反向磁能转移是宇宙中大规模强磁场起源的关键物理过程。然而,到目前为止,从磁流体动力学的角度来看,反向转移的起始仍未得到充分理解,尤其是其潜在动力学。在这里,我们使用二维和三维粒子模拟来展示无碰撞衰减湍流等离子体中反向转移的自洽动力学。通过理论和数值分析中的空间滤波技术,我们确定磁重联是反向转移的起始和基本驱动力,具体而言,由磁重联驱动的亚尺度电动势对大尺度磁场做功,导致能量从小尺度转移到大尺度。反向转移与磁重联在位置和特征尺度上的强相关性也验证了这一机制。