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首页> 外文期刊>The Astrophysical journal >The Formation of a Prominence in Active Region NOAA 8668. I. SOHO/MDI Observations of Magnetic Field Evolution
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The Formation of a Prominence in Active Region NOAA 8668. I. SOHO/MDI Observations of Magnetic Field Evolution

机译:活跃区NOAA 8668中突出的形成。I.磁场演化的SOHO / MDI观测

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We have studied the evolution of the photospheric magnetic field in active region NOAA 8668 for 3 days while the formation of a reverse S-shaped filament proceeded. From a set of full-disk line-of-sight magnetograms taken by the Michelson Doppler Imager (MDI) on board the Solar and Heliospheric Observatory (SOHO), we have found a large canceling magnetic feature that was closely associated with the formation of the filament. The positive flux of the magnetic feature was initially 1.5 × 1021 Mx and exponentially decreased with an e-folding time of 28 hr throughout the period of observations. We also have determined the transverse velocities of the magnetic flux concentrations in the active region by applying local correlation tracking. As a result, a persistent pattern of shear motion was identified in the neighborhood of the filament. The shear motion had a speed of 0.2-0.5 km s-1 and fed negative magnetic helicity of -3 × 1042 Mx2 into the coronal volume during an observing run of 50 hr at an average rate of -6 × 1040 Mx2 hr-1. This rate is an order of magnitude higher than the rate of helicity change due to the solar differential rotation. The magnetic flux of the field lines created by magnetic reconnection and the magnetic helicity generated by the photospheric shear motion are much more than enough for the formation of the filament. Based on this result, we conjecture that the filament formation may be the visible manifestation of the creation of a much bigger magnetic structure that may consist of a flux rope and an overlying sheared arcade.
机译:我们研究了在活动区域​​NOAA 8668中进行3天光球磁场的演变,同时进行了反向S形灯丝的形成。从迈克尔逊多普勒成像仪(MDI)在太阳和日球观测台(SOHO)上拍摄的一组全磁盘视线磁图,我们发现了一个巨大的抵消磁特征,该磁特征与地磁的形成密切相关。灯丝。在整个观察期间,磁特征的正磁通量最初为1.5×1021 Mx,并且随着电子折叠时间为28小时呈指数下降。我们还通过应用局部相关跟踪确定了有效区域中磁通量浓度的横向速度。结果,在细丝附近确定了剪切运动的持续模式。剪切运动的速度为0.2-0.5 km s-1,在观测50小时的过程中以-6×1040 Mx2 hr-1的平均速度将负磁螺旋度-3×1042 Mx2馈入冠状体。该速率比由于太阳差旋转引起的螺旋度变化速率高一个数量级。由磁重连接产生的磁力线的磁通量和由光球剪切运动产生的磁螺旋度对于形成灯丝来说绰绰有余。基于这个结果,我们推测细丝的形成可能是更大的磁性结构产生的可见表现,该结构可能由磁通绳和上覆的剪切拱廊组成。

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