论文标题

帕克太阳能探测器对磁性重新连接排气期间的原位观察1

Parker Solar Probe In-Situ Observations of Magnetic Reconnection Exhausts During Encounter 1

论文作者

Phan, T. D., Bale, S. D., Eastwood, J. P., Lavraud, B., Drake, J. F., Oieroset, M., Shay, M. A., Pulupa, M., Stevens, M., MacDowall, R. J., Case, A. W., Larson, D., Kasper, J., Whittlesey, P., Szabo, A., Korreck, K. E., Bonnell, J. W., de Wit, T. Dudok, Goetz, K., Harvey, P. R., Horbury, T. S., Livi, R., Malaspina, D., Paulson, K., Raouafi, N. E., Velli, M.

论文摘要

电流板中的磁重新连接将磁能转换为粒子能量。该过程可能在靠近太阳的太阳风的加速和加热中起重要作用。 Parker太阳能探测器的观察为研究此问题提供了新的机会,因为它可以在前所未有的近距离近距离衡量太阳风。在第1轨道期间,PSP在35.7太阳半径的圆锥体中遇到了大量的太阳风中的大量电流板。我们对这些当前的床单进行了全面的调查,并找到了21种重新连接排气的证据。这些排气在地球层电流板,冠状质量弹出和常规太阳风中观察到。但是,我们发现大多数当前板周围遇到的磁场最强,等离子体β最低,是与爆发径向射流相关的alfvénic结构,这些电流似乎没有进行局部重新连接。我们检查了围绕当前床单的条件,以解决为什么一些当前床单重新连接的原因,而另一些则没有重新连接。一个关键区别似乎是整个电流板上的等离子体速度剪切的程度:21个重新连接排气的中位速度剪切速度占Alfvén速度剪切剪切的24%,而检查的43个Alfvénic电流板的中间剪切幅度为Alfvénic电流板的71%是AlfvénVelocity velocity shear shear shear的71%。这一发现可能表明,尽管亚alfvénic较大,但速度剪切抑制了重新连接。另一种解释是,alfvénic电流表是孤立的旋转不连续性,不经过本地重新连接。

Magnetic reconnection in current sheets converts magnetic energy into particle energy. The process may play an important role in the acceleration and heating of the solar wind close to the Sun. Observations from Parker Solar Probe provide a new opportunity to study this problem, as it measures the solar wind at unprecedented close distances to the Sun. During the 1st orbit, PSP encountered a large number of current sheets in the solar wind through perihelion at 35.7 solar radii. We performed a comprehensive survey of these current sheets and found evidence for 21 reconnection exhausts. These exhausts were observed in heliospheric current sheets, coronal mass ejections, and regular solar wind. However, we find that the majority of current sheets encountered around perihelion, where the magnetic field was strongest and plasma beta was lowest, were Alfvénic structures associated with bursty radial jets and these current sheets did not appear to be undergoing local reconnection. We examined conditions around current sheets to address why some current sheets reconnected, while others did not. A key difference appears to be the degree of plasma velocity shear across the current sheets: The median velocity shear for the 21 reconnection exhausts was 24% of the Alfvén velocity shear, whereas the median shear across 43 Alfvénic current sheets examined was 71% of the Alfvén velocity shear. This finding could suggest that large, albeit sub-Alfvénic, velocity shears suppress reconnection. An alternative interpretation is that the Alfvénic current sheets are isolated rotational discontinuities which do not undergo local reconnection.

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