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Identification of Multiple Hard X-Ray Sources in Solar Flares: A Bayesian Analysis of the 2002 February 20 Event

机译:太阳耀斑中多个硬X射线源的识别:2002年2月20日事件的贝叶斯分析

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摘要

The hard X-ray emission in a solar flare is typically characterized by a number of discrete sources, each with its own spectral, temporal, and spatial variability. Establishing the relationship among these sources is critical to determining the role of each in the energy release and transport processes that occur within the flare. In this paper we present a novel method to identify and characterize each source of hard X-ray emission. The method permits a quantitative determination of the most likely number of subsources present, and of the relative probabilities that the hard X-ray emission in a given subregion of the flare is represented by a complicated multiple source structure or by a simpler single source. We apply the method to a well-studied flare on 2002 February 20 in order to assess competing claims as to the number of chromospheric footpoint sources present, and hence to the complexity of the underlying magnetic geometry/topology. Contrary to previous claims of the need for multiple sources to account for the chromospheric hard X-ray emission at different locations and times, we find that a simple two-footpoint-plus-coronal-source model is the most probable explanation for the data. We also find that one of the footpoint sources moves quite rapidly throughout the event, a factor that presumably complicated previous analyses. The inferred velocity of the footpoint corresponds to a very high induced electric field, compatible with the fields in thin reconnecting current sheets.
机译:太阳耀斑的硬X射线发射通常以许多离散的光源为特征,每个光源都有自己的光谱,时间和空间可变性。在这些能源之间建立联系对于确定每种能源在火炬内部发生的能量释放和运输过程中的作用至关重要。在本文中,我们提出了一种新颖的方法来识别和表征硬X射线发射的每个来源。该方法允许定量确定存在的最可能子源的数量,以及相对的概率,即在火炬的给定子区域中硬X射线的发射由复杂的多源结构或较简单的单个源表示。我们将该方法应用于2002年2月20日经过深入研究的耀斑,以评估关于存在的色球层脚位源数量的竞争性主张,从而评估潜在的磁性几何/拓扑结构的复杂性。与先前的说法不同,需要多个源来解释在不同位置和时间发生的色球层硬X射线发射,我们发现简单的两脚加冠状源模型是最有可能解释该数据的方法。我们还发现,足迹事件之一在整个事件中的移动速度非常快,这可能使以前的分析变得复杂。脚点的推断速度对应于非常高的感应电场,与薄的重新连接电流板上的电场兼容。

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