A. Kępa, M. Siarkowski, A. Awasthi, J. Sylwester, B. Sylwester
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引用次数: 0
摘要
我们采用差分进化(DE)方法来分析 Chandrayaan-2 号航天器上的太阳 X 射线监测器的观测数据。差分进化法属于进化算法系列,利用受生物过程启发的机制寻找解决方案。这种方法使我们能够通过迭代过程同时计算差分发射测量和元素丰度的分布。我们建立了一个燃烧等离子体发射源模型,其中包含温度、发射量和八种元素的丰度:我们为 2021 年 5 月 7 日发生的 M3.9 GOES 级太阳耀斑(SOL2021-05-07T19:04)建立了等离子体发射源模型,包括温度、发射测量值和八种元素丰度:镁、铝、硅、硒、氩、钙、铁和镍。我们的分析涵盖了耀斑的各个阶段,确定了温度、发射测量和元素丰度的演变。此外,我们还利用太阳轨道器上的 X 射线成像分光望远镜的数据,研究了整个事件期间硬 X 射线源的形态、源体积、电子密度和耀斑等离子体热行为的演变。结果显示,在不同耀斑阶段,光球和日冕值之间的元素丰度存在显著差异。这强调了元素丰度信息对于理解太阳耀斑期间 X 射线辐射的重要性。
Investigations of Flaring Plasma Parameters during an M-class Flare Using the Differential Evolution Method and XSM/Chandrayaan-2 Observations
We employ the differential evolution (DE) method to analyze observations from the Solar X-Ray Monitor on board the Chandrayaan-2 spacecraft. DE belongs to the family of evolutionary algorithms that find solutions using mechanisms inspired by biological processes. This approach enables us to simultaneously calculate the distribution of the differential emission measure and elemental abundances through an iterative process. We establish a model for the emission sources of flaring plasma, incorporating temperature, emission measure, and abundances of eight elements: Mg, Al, Si, S, Ar, Ca, Fe, and Ni, for an M3.9 GOES-class solar flare that occurred on 2021 May 7 (SOL2021-05-07T19:04). Our analysis covers various phases of the flare, determining the evolution of temperature, emission measure, and elemental abundances. Additionally, utilizing data from the Spectrometer Telescope for Imaging X-rays on board the Solar Orbiter, we investigate the evolution of hard X-ray source morphology, source volume, electron density, and thermal behavior of the flaring plasma throughout the event. The results reveal notable variations in elemental abundances between photospheric and coronal values during different flare phases. This emphasizes the significance of elemental abundance information in comprehending X-ray emissions during solar flares.