论文标题

观察不稳定驱动的纳米夹

Observations of instability-driven nanojets

论文作者

Sukarmadji, A. Ramada C., Antolin, Patrick, McLaughlin, James A.

论文摘要

Antolin等人最近发现的纳米夹。 (2021)代表编织场中的磁重新连接,因此清楚地识别了重新连接驱动的纳米流量。由于其尺度很小(宽度为500公里,长度为1500公里)和短时间($ <$ 15 s),尚不清楚太阳能电晕的普遍性纳米夹。在本文中,我们介绍了在多个冠状结构中发现的纳米夹的虹膜和SDO观察结果,即以井喷式喷射动力的冠状环和其他两个带有冠状雨的冠状环。与先前的发现一致,我们观察到纳米夹伴随着(E)UV中的小纳米型强度突发,其速度为150-250 km s $^{ - 1} $,并横向发生到原点,有时会观察到分裂。但是,我们在平面横向向环轴的平面中发现了多种纳米jet方向。发现这些纳米夹在纳米光范围内具有动能和热能,并且经常发生在簇中。在井喷式喷气案例研究中,开尔文 - 赫尔姆霍尔茨不稳定性(KHI)被直接识别为重新连接驱动程序。对于其他两个循环,我们发现KHI和Rayleigh-Taylor不稳定(RTI)都可能是驱动程序。但是,我们发现在其他两种情况之一中,KHI和RTI的可能性更大。这些在各种结构和环境中对纳米夹的观察结果支持纳米夹是重新连接的一般结果,这些结果是由动态不稳定性驱动的。

The recent discovery of nanojets by Antolin et al. (2021) represents magnetic reconnection in a braided field, thus clearly identifying the reconnection-driven nanoflares. Due to their small scale (500 km in widths, 1500 km in lengths) and short timescales ($<$ 15 s), it is unclear how pervasive nanojets are in the solar corona. In this paper, we present IRIS and SDO observations of nanojets found in multiple coronal structures, namely in a coronal loop powered by a blowout jet, and in two other coronal loops with coronal rain. In agreement with previous findings, we observe that nanojets are accompanied by small nanoflare-like intensity bursts in the (E)UV, have velocities of 150-250 km s$^{-1}$ and occur transversely to the field line of origin, which is sometimes observed to split. However, we find a variety of nanojet directions in the plane transverse to the loop axis. These nanojets are found to have kinetic and thermal energies within the nanoflare range, and often occur in clusters. In the blowout jet case study, the Kelvin-Helmholtz instability (KHI) is directly identified as the reconnection driver. For the other two loops, we find that both, the KHI and the Rayleigh-Taylor instability (RTI) are likely to be the drivers. However, we find that the KHI and RTI are each more likely in one of the other two cases. These observations of nanojets in a variety of structures and environments support nanojets being a general result of reconnection, that are driven here by dynamic instabilities.

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