无碰撞磁重连接中的湍流增强能量转换

Runqing Jin, Meng Zhou, Y. Yi, H. Man, Z. Zhong, Y. Pang, Xiaohua Deng
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摘要

磁重联和湍流是无碰撞等离子体中两种最重要的能量耗散机制。湍流在磁重连接中的作用是天体物理学和等离子体物理学中的一个突出问题。湍流能否通过提高重联速率或能量转换率来改变重联过程,目前尚不清楚。在这项研究中,我们利用从磁层多尺度航天器获得的前所未有的高分辨率数据,提供了湍流在促进重连接过程中能量转换方面发挥重要作用的直接证据。我们通过比较具有相似流入阿尔夫文速度和等离子体β但湍流振幅不同的磁尾再连接事件得出了这一结论。能量转换的差异归因于湍流的强度。较强的湍流会产生空间尺度较小的更连贯的结构,而这些结构是重联过程中能量转换的关键因素。然而,我们发现湍流对粒子加热的影响可以忽略不计,但它确实影响了这两个事件中的离子体动能。这些发现极大地推动了我们对天体物理等离子体中湍流与再连接之间关系的理解。
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Enhanced Energy Conversion by Turbulence in Collisionless Magnetic Reconnection
Magnetic reconnection and turbulence are two of the most significant mechanisms for energy dissipation in collisionless plasma. The role of turbulence in magnetic reconnection poses an outstanding problem in astrophysics and plasma physics. It is still unclear whether turbulence can modify the reconnection process by enhancing the reconnection rate or energy conversion rate. In this study, utilizing unprecedented high-resolution data obtained from the Magnetospheric Multiscale spacecraft, we provide direct evidence that turbulence plays a vital role in promoting energy conversion during reconnection. We reached this conclusion by comparing magnetotail reconnection events with similar inflow Alfvén speed and plasma β but varying amplitudes of turbulence. The disparity in energy conversion was attributed to the strength of turbulence. Stronger turbulence generates more coherent structures with smaller spatial scales, which are pivotal contributors to energy conversion during reconnection. However, we find that turbulence has negligible impact on particle heating, but it does affect the ion bulk kinetic energy in these two events. These findings significantly advance our understanding of the relationship between turbulence and reconnection in astrophysical plasmas.
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