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A Method of Resolving the 180-Degree Ambiguity by Employing the Chirality of Solar Features

机译:利用太阳特征手性解决180度歧义的方法

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摘要

The 180-degree ambiguity in magnetic field direction along polarity reversal boundaries can be resolved often and reliably by the chiral method. The chiral method requires (1) identification of the chirality of at least one solar feature related to a polarity reversal boundary along which the field direction is sought and (2) knowledge of the polarity of the network magnetic field on at least one side of the polarity reversal boundary. In the context of the Sun, chirality is an observable signature of the handedness of the magnetic field of a solar feature. We concentrate on how to determine magnetic field direction from chirality definitions and illustrate the technique in eight examples. The examples cover the spectrum of polarity boundaries associated with filament channels and filaments ranging from those connected with active regions to those on the quiet Sun. The applicability of the chiral method to all categories of filaments supports the view that active region filaments and quiescent filaments are the extreme ends in a continuous spectrum of filaments. The chiral method is almost universally applicable because many types of solar features that reveal chirality are now readily seen in solar images accessible over the World Wide Web; also there are clear differences between left-handed and right-handed solar structures that can be identified in both high- and low-resolution data although high-resolution images are almost always preferable. In addition to filaments and filament channels, chirality is identifiable in coronal loop systems, flare loop systems, sigmoids, some sunspots, and some erupting prominences. Features other than filament channels and filaments can be used to resolve the 180-degree ambiguity because there is a one-to-one relationship between the chiralities of all features associated with a given polarity reversal boundary.
机译:可以通过手性方法经常且可靠地解决沿极性反转边界在磁场方向上的180度歧义。手征法要求(1)识别至少一个与极性反转边界有关的太阳特征的手征性,沿着该极性反转边界寻求场方向,以及(2)了解至少在其一侧的网络磁场的极性。极性反转边界。在太阳的背景下,手征性是太阳特征磁场的惯性的可观察到的标志。我们集中于如何从手性定义确定磁场方向,并在八个示例中说明了该技术。这些示例涵盖了与灯丝通道和灯丝相关的极性边界频谱,其范围从与活动区域连接的灯丝到安静的太阳上的灯丝。手性方法对所有种类的细丝的适用性都支持这样一种观点,即活性区域的细丝和静态的细丝是连续的细丝光谱的最末端。手征法几乎是普遍适用的,因为现在可以很容易地在通过万维网访问的太阳图像中看到许多显示手征的太阳特征。尽管高分辨率图像几乎总是可取的,但左撇子和右撇子的太阳能结构之间也存在明显差异,可以在高分辨率和低分辨率数据中识别出它们。除花丝和花丝通道外,在冠状环系统,耀斑环系统,乙状结肠,一些黑子和一些突出的突起中还可以鉴定出手性。除了细丝通道和细丝以外的其他特征也可用于解决180度歧义,因为与给定极性反转边界关联的所有特征的手征性之间存在一对一的关系。

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