Zhou M, Berchem J, Walker R J, El-Alaoui M, Deng X, Cazzola E, Lapenta G, Goldstein M L, Paterson W R, Pang Y, Ergun R E, Lavraud B, Liang H, Russell C T, Strangeway R J, Zhao C, Giles B L, Pollock C J, Lindqvist P-A, Marklund G, Wilder F D, Khotyaintsev Y V, Torbert R B, Burch J L
Department of Physics and Astronomy, UCLA, Los Angeles 90095, California, USA.
Department of Earth, Planetary, and Space Sciences, UCLA, Los Angeles 90095, California, USA.
Phys Rev Lett. 2017 Aug 4;119(5):055101. doi: 10.1103/PhysRevLett.119.055101. Epub 2017 Aug 2.
We report unambiguous in situ observation of the coalescence of macroscopic flux ropes by the magnetospheric multiscale (MMS) mission. Two coalescing flux ropes with sizes of ∼1 R_{E} were identified at the subsolar magnetopause by the occurrence of an asymmetric quadrupolar signature in the normal component of the magnetic field measured by the MMS spacecraft. An electron diffusion region (EDR) with a width of four local electron inertial lengths was embedded within the merging current sheet. The EDR was characterized by an intense parallel electric field, significant energy dissipation, and suprathermal electrons. Although the electrons were organized by a large guide field, the small observed electron pressure nongyrotropy may be sufficient to support a significant fraction of the parallel electric field within the EDR. Since the flux ropes are observed in the exhaust region, we suggest that secondary EDRs are formed further downstream of the primary reconnection line between the magnetosheath and magnetospheric fields.
我们报告了磁层多尺度(MMS)任务对宏观通量绳合并的明确原位观测。通过MMS航天器测量的磁场法向分量中出现的不对称四极特征,在日下磁层顶识别出了两个尺寸约为1个地球半径((R_{E}))的合并通量绳。一个宽度为四个局部电子惯性长度的电子扩散区(EDR)嵌入在合并电流片中。该EDR的特征是存在强平行电场、显著的能量耗散和超热电子。尽管电子由一个大的引导场组织,但观测到的小电子压力非各向同性可能足以支持EDR内相当一部分的平行电场。由于在排气区域观测到了通量绳,我们认为在磁鞘和磁层磁场之间的初级重联线的更下游形成了次级EDR。