The Impact of Alfvénic Shear Flow on Magnetic Reconnection and Turbulence

Tamar Ervin, Alfred Mallet, Stefan Eriksson, M. Swisdak, James Juno, Orlando M. Romeo, Tai Phan, Trevor A. Bowen, Roberto Livi, Phyllis L. Whittlesey, Davin E. Larson and Stuart D. Bale
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Abstract

Magnetic reconnection is a fundamental and omnipresent energy conversion process in plasma physics. Novel observations of fields and particles from Parker Solar Probe (PSP) have shown the absence of reconnection in a large number of current sheets in the near-Sun solar wind. Using near-Sun observations from PSP encounters 4–11 (2020 January–2022 March), we investigate whether reconnection onset might be suppressed by velocity shear. We compare estimates of the tearing mode growth rate in the presence of shear flow for time periods identified as containing reconnecting current sheets versus nonreconnecting times, finding systematically larger growth rates for reconnection periods. Upon examination of the parameters associated with reconnection onset, we find that 85% of the reconnection events are embedded in slow, non-Alfvénic wind streams. We compare with fast, slow non-Alfvénic, and slow Alfvénic streams, finding that the growth rate is suppressed in highly Alfvénic fast and slow wind, and reconnection is not seen in these wind types, as would be expected from our theoretical expressions. These wind streams have strong Alfvénic flow shear, consistent with the idea of reconnection suppression by such flows. This could help explain the frequent absence of reconnection events in the highly Alfvénic, near-Sun solar wind observed by PSP. Finally, we find a steepening of both the trace and magnitude magnetic field spectra within reconnection periods in comparison to ambient wind. We tie this to the dynamics of relatively balanced turbulence within these reconnection periods and the potential generation of compressible fluctuations.
alfv剪切流对磁重联和湍流的影响
磁重联是等离子体物理中一种基本的、普遍存在的能量转换过程。帕克太阳探测器(PSP)对磁场和粒子的新观测表明,在近太阳太阳风中,大量的电流片没有重联。利用4-11(2020年1月- 2022年3月)的近日观测,我们研究了重联的发生是否可能被速度切变抑制。我们比较了剪切流存在时撕裂模式增长率的估计,确定了包含重连接电流片的时间段与非重连接时间,发现重连接期间的增长率系统性地更高。在检查与重连开始相关的参数后,我们发现85%的重连事件嵌入在缓慢的、非alfvvac风流中。我们比较了快速、缓慢的非alfvvac和缓慢的alfvvac流,发现在高度alfvvac的快、慢风中生长速率受到抑制,并且在这些风类型中没有看到重新连接,正如我们的理论表达式所期望的那样。这些风流具有较强的alfv流动切变,这与风流抑制重连的思想是一致的。这可能有助于解释在PSP观测到的高度接近太阳的太阳风中频繁缺少重联事件。最后,我们发现与环境风相比,重联期间的迹线和震级磁场谱都变陡。我们将此与这些重连周期内相对平衡的湍流动力学以及可能产生的可压缩波动联系起来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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