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Carriers and Sources of Magnetopause Current: MMS Case Study

机译:运营商和磁电流来源:MMS案例研究

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We investigate the current carriers and current sources of an ion scale tangential magnetopause current layer using the Magnetospheric Multiscale four spacecraft data. Within this magnetopause current layer, ions and electrons equally contribute to the perpendicular current, while electrons carry nearly all the parallel current. The energy range of all these current carriers is predominantly from middle to high (>100 eV), where particles with higher energies are more efficient in producing the current. By comparing each term, two-fluid magnetohydrodynamic (MHD) theory is able to describe the current sources to a large degree because the sum of all the perpendicular currents from MHD theory could account for the currents observed. In addition, we find that the ion diamagnetic current is the main source of the total perpendicular current, while the curvature current can be neglected. Nevertheless, ions and electrons both carry comparable current due to the redistribution of the electric field and show features beyond the classic Chapman-Ferraro model, particularly on the front side of the boundary layer where the electric field reversal is most intense. We also show a second, comparative event in which ions do not satisfy MHD theory, while the electrons do. The small-scale, adiabatic parameter (square of curvature radius/gyroradius) supports our interpretation that this second event contains ion scale substructure. We suggest that comparing the predicted MHD current with plasma current can be a good method to judge whether the MHD theory is satisfied in each specific circumstance, especially for high-precision Magnetospheric Multiscale data.
机译:我们调查当前运营商和电流切向磁离子规模的来源当前层使用磁性层的多尺度四个航天器的数据。当前层、离子和电子一样为垂直电流、时间电子携带几乎所有的平行电流。所有这些当前运营商的能量范围主要从中间到高(> 100 eV),更高能量的粒子更在哪里高效的生产目前。每学期,双流体磁流体动力(磁流体动力)理论能够描述当前的来源很大程度上,因为所有的总和垂直的水流从磁流体动力理论观察到的电流。我们发现,离子电流抗磁性总垂直电流的主要来源,而曲率电流可以忽略不计。然而,离子和电子携带比较当前的再分配外的电场和显示功能经典Chapman-Ferraro模型,特别是在正面的边界层电场反转是最强烈的。第二,事件中离子做比较不能满足磁流体动力理论,当电子。小规模、绝热参数(广场曲率半径/回转半径)支持我们第二个事件包含的解释离子子结构。预测的磁流体动力电流和等离子体电流是一个很好的方法来判断磁流体动力理论满足在每个特定情况下,特别是对于高精度磁性层的多尺度数据。

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