论文标题

关于电子扩散区“斑纹”能量转化的起源

On the origin of "patchy" energy conversion in electron diffusion regions

论文作者

Genestreti, Kevin J., Li, Xiaocan, Liu, Yi-Hsin, Burch, James L., Torbert, Roy B., Fuselier, Stephen A., Nakamura, Takuma, Giles, Barbara L., Gershman, Daniel J., Ergun, Robert E., Russell, Christopher T., Strangeway, Robert J.

论文摘要

在磁重新连接期间,电场线在电子扩散区(EDRS)中互连。在某些EDR中,重新连接和能量转换率由平面外电场控制。在其他EDR中,能量转换率$ \ vec {J} \ cdot \ vec {e}'$是“斑点”,具有电子规模的大振幅为正和负峰。我们研究了NASA的磁层多尺度(MMS)任务在各种条件下观察到的22个EDR,以确定斑点$ \ vec {j} \ cdot \ cdot \ vec {e}'$的原因。能量转化的斑点是量化的,并与七个参数相关,这些参数描述了影响重新连接的结构,稳定性和效率的渐近流入区域的各个方面。我们发现,(1)在流动离子压力,电子压力,重新连接磁场强度和数量密度的指导场强度和不对称性与EDR能量转换的斑块相关,(2)22 EDR的平面外轴与“优先范围”的频率相当良好,该轴的范围与“优先”轴相同,该轴是相当良好的。速率,(3)上游磁场方向上的时变性最好与EDR $ \ vec {J} \ cdot \ cdot \ vec {e}'$的斑点相关。分析了与不均匀流入磁场重新连接的3D全动作模拟。磁场的变化会产生次级X线,从而最大程度地提高了随时间变化的流入磁场的重新连接速率。结果表明,磁笼重新连接通常是高度变化的,至少在电子尺度上,通常在空间上通常是斑驳的。

During magnetic reconnection, field lines interconnect in electron diffusion regions (EDRs). In some EDRs the reconnection and energy conversion rates are controlled by a steady out-of-plane electric field. In other EDRs the energy conversion rate $\vec{J}\cdot\vec{E}'$ is "patchy", with electron-scale large-amplitude positive and negative peaks. We investigate 22 EDRs observed by NASA's Magnetospheric Multiscale (MMS) mission in a wide range of conditions to determine the cause of patchy $\vec{J}\cdot\vec{E}'$. The patchiness of the energy conversion is quantified and correlated with seven parameters describing various aspects of the asymptotic inflow regions that affect the structure, stability, and efficiency of reconnection. We find that (1) neither the guide field strength nor the asymmetries in the inflow ion pressure, electron pressure, reconnecting magnetic field strength, and number density are well correlated with the patchiness of the EDR energy conversion, (2) the out-of-plane axes of the 22 EDRs are typically fairly well aligned with the "preferred" axes, which bisect the time-averaged inflow magnetic fields and maximize the reconnection rate, and (3) the time-variability in the upstream magnetic field direction is best correlated with the patchiness of the EDR $\vec{J}\cdot\vec{E}'$. A 3-d fully-kinetic simulation of reconnection with a non-uniform inflow magnetic field is analyzed; the variation in the magnetic field generates secondary X-lines, which develop to maximize the reconnection rate for the time-varying inflow magnetic field. The results suggest that magnetopause reconnection, for which the inflow magnetic field direction is often highly variable, may commonly be patchy in space, at least at the electron scale.

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