C

W. Pesnell, P. Bryans
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Abstract

Recent improvements in solar observations have greatly progressed the study of sungrazing comets. They can now be imaged along the entirety of their perihelion passage through the solar atmosphere, revealing details of their composition and structure not measurable through previous observations in the less volatile region of the orbit further from the solar surface. Such comets are also unique probes of the solar atmosphere. The debris deposited by sungrazers is rapidly ionized and subsequently influenced by the ambient magnetic field. Measuring the spectral signature of the deposited material highlights the topology of the magnetic field and can reveal plasma parameters such as the electron temperature and density. Recovering these variables from the observable data requires a model of the interaction of the cometary species with the atmosphere through which they pass. The present paper offers such a model by considering the time-dependent chemistry of sublimated cometary species as they interact with the solar radiation field and coronal plasma. We expand on a previous simplified model by considering the fully time-dependent solutions of the emitting species’ densities. To compare with observations, we consider a spherically symmetric expansion of the sublimated material into the corona and convert the time-dependent ion densities to radial profiles. Using emissivities from the CHIANTI database and plasma parameters derived from a magnetohydrodynamic simulation leads to a spatially dependent emission spectrum that can be directly compared with observations. We find our simulated spectra to be consistent with observation.
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C
最近对太阳观测的改进极大地促进了对掠日彗星的研究。现在可以对它们在近日点穿过太阳大气层的整个过程进行拍摄,揭示出它们的组成和结构的细节,这些细节是以前在远离太阳表面的轨道上不太稳定的区域观测不到的。这类彗星也是探测太阳大气层的独特探测器。掠日者留下的碎片被迅速电离,随后受到周围磁场的影响。测量沉积材料的光谱特征突出了磁场的拓扑结构,并可以揭示等离子体参数,如电子温度和密度。从可观测数据中恢复这些变量需要一个彗星物种与它们所经过的大气相互作用的模型。本文通过考虑升华彗星物种与太阳辐射场和日冕等离子体相互作用时的时间依赖化学,提供了这样一个模型。我们通过考虑发射物种密度的完全时变解来扩展先前的简化模型。为了与观测结果进行比较,我们考虑了升华物质向日冕的球对称膨胀,并将随时间变化的离子密度转换为径向分布。利用CHIANTI数据库的发射率和磁流体动力学模拟得出的等离子体参数,可以直接与观测结果进行比较。我们发现我们的模拟光谱与观测结果一致。
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