论文标题

在重新连接期间通过磁化以及对偶极性前线和超热太阳耀斑的应用来缩放电子加热

Scaling of electron heating by magnetization during reconnection and applications to dipolarization fronts and super-hot solar flares

论文作者

Barbhuiya, M. Hasan, Cassak, Paul. A., Shay, Michael. A., Roytershteyn, Vadim, Swisdak, Marc, Caspi, Amir, Runov, Andrei, Liang, Haoming

论文摘要

电子环速度空间以前已经在磁重新连接排气的数值模拟中看到,并被认为是由压缩重新连接的磁场对电子流出射流的磁化引起的[Shuster等,$ {\ itGeophys。我们列出了仅根据上游(LOBE)等离子体条件而言,环分布的主要和次要半径的依赖性,从而可以预测环环和温度各向异性在上游参数方面。我们使用2.5维粒子中的模拟(PIC)模拟测试预测的有效性,其上游等离子体密度和温度不同,在预测值和模拟值之间找到了极好的一致性。我们确认Shuster等。关于环形分布的原因的建议,还发现环分布位于以高原或肩膀标记的区域中,在重新连接的磁场轮廓中。温度的预测与观察到的偶极化前线的电子温度一致,并且可以为产生血浆中的血浆中具有10s的高温太阳耀斑中的温度。讨论了该模型的可能扩展到几天的重新连接。由于已知环分布会激发惠斯勒波,因此目前的结果对于量化重新连接排气中的惠斯勒波的产生应该很有用。

Electron ring velocity space distributions have previously been seen in numerical simulations of magnetic reconnection exhausts and have been suggested to be caused by the magnetization of the electron outflow jet by the compressed reconnected magnetic fields [Shuster et al., ${\it Geophys.~Res.~Lett.}, {\bf 41}$, 5389 (2014)]. We present a theory of the dependence of the major and minor radii of the ring distributions solely in terms of upstream (lobe) plasma conditions, thereby allowing a prediction of the associated temperature and temperature anisotropy of the rings in terms of upstream parameters. We test the validity of the prediction using 2.5-dimensional particle-in-cell (PIC) simulations with varying upstream plasma density and temperature, finding excellent agreement between the predicted and simulated values. We confirm the Shuster et al. suggestion for the cause of the ring distributions, and also find that the ring distributions are located in a region marked by a plateau, or shoulder, in the reconnected magnetic field profile. The predictions of the temperature are consistent with observed electron temperatures in dipolarization fronts, and may provide an explanation for the generation of plasma with temperatures in the 10s of MK in super-hot solar flares. A possible extension of the model to dayside reconnection is discussed. Since ring distributions are known to excite whistler waves, the present results should be useful for quantifying the generation of whistler waves in reconnection exhausts.

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