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首页> 外文期刊>Geophysical Research Letters >Electron Acceleration in a Magnetotail Reconnection Outflow Region Using Magnetospheric MultiScale Data
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Electron Acceleration in a Magnetotail Reconnection Outflow Region Using Magnetospheric MultiScale Data

机译:使用磁体多尺度数据的磁盲重新连接流出区域中的电子加速度

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摘要

We study Magnetospheric MultiScale observations in the outflow region of magnetotail reconnection. We estimate the power density converted via the three fundamental electron acceleration mechanisms: Fermi, betatron, and parallel electric fields. The dominant mechanism, both on average and the peak values, is Fermi acceleration with a peak power density of about +200 pW/m(3). The magnetic field curvature during the most intense Fermi acceleration is comparable to the electron gyroradius, consistent with efficient electron scattering. The peak power densities due to the betatron acceleration are a factor of 3 lower than that for the Fermi acceleration, the average betatron acceleration is close to zero and slightly negative. The contribution from parallel electric fields is significantly smaller than those from the Fermi and betatron acceleration. However, the observational uncertainties in the parallel electric field measurement prevent further conclusions. There is a strong variation in the power density on a characteristic ion time scale.
机译:我们在磁尾重联的流出区域研究磁层多观察。我们估计的功率密度通过三个基本电子加速机制转换:费米,电子感应加速器,并且平行电场。的主要机制,无论在平均和峰值,是费米加速度具有约200 PW /米(3)的峰值功率密度。最强烈的费米加速时的磁场曲率相媲美的电子回旋半径,具有高效电子散射一致。峰值功率密度,由于电子感应加速器加速度是比用于费米加速度3个低级的一个因素,平均电子感应加速器加速度接近于零和轻微的负。从平行的电场的贡献比那些来自费米和电子感应加速器加速显著小。然而,在平行电场的测量的观测不确定性防止进一步的结论。有在上的特征离子时间尺度的功率密度的变化强。

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