Flare June 7, 2011, and Analysis of Eruptive Prominence Fragments

IF 1.1 4区 物理与天体物理 Q3 ASTRONOMY & ASTROPHYSICS
Yu. A. Kupryakov, K. V. Bychkov, V. A. Malyutin, A. B. Gorshkov, O. M. Belova
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引用次数: 0

Abstract

Solar flares can be accompanied by high plasma velocities exceeding several hundred km/s. Detection and measurement of such velocities is limited by narrow-band and small wavelength range in most solar instruments. However, similar events with Doppler velocities exceeding two hundred km/s have been detected by the solar optical spectrographs at the Ondřejov Observatory. The results of the analysis of our multi-wavelength observation performed during the solar flare of June 7, 2011 and the calculation of several physical parameters of the coronal mass ejection fragments following the flare have been present. The calculation of the radiation of heated gas have been performed with allowance for self-absorption in the spectral lines of hydrogen and calcium. All the crucial processes of discrete level populating and depopulating have been taken into account in the balance equations. The theoretical radiation fluxes in the lines have coincided with those observed in the temperature range of 6300–10000 K at a gas concentration of  ~\((3{\kern 1pt} - {\kern 1pt} 5) \times {{10}^{{10}}} {\text{c}}{{{\text{m}}}^{{ - 3}}}\), a gas layer thickness of \(6800{\kern 1pt} - {\kern 1pt} 7000\) km, and a linear concentration of \((2{\kern 1pt} - {\kern 1pt} 4) \times {{10}^{{19}}} {\text{c}}{{{\text{m}}}^{{ - 3}}}\).

2011年6月7日的耀斑,以及对爆发日珥碎片的分析
太阳耀斑可以伴随着超过几百公里/秒的高等离子体速度。在大多数太阳仪器中,这种速度的探测和测量受到窄带和小波长范围的限制。然而,类似的多普勒速度超过200公里/秒的事件已经被Ondřejov天文台的太阳光学光谱仪探测到。我们对2011年6月7日太阳耀斑期间的多波长观测结果进行了分析,并计算了耀斑后日冕物质抛射碎片的几个物理参数。在考虑氢和钙谱线自吸收的情况下,对加热气体的辐射进行了计算。在平衡方程中考虑了离散层填充和非填充的所有关键过程。这些谱线的理论辐射通量与在6300-10000 K温度范围内,气体浓度为\((3{\kern 1pt} - {\kern 1pt} 5) \times {{10}^{{10}}} {\text{c}}{{{\text{m}}}^{{ - 3}}}\),气体层厚度为\(6800{\kern 1pt} - {\kern 1pt} 7000\) km,线性浓度为\((2{\kern 1pt} - {\kern 1pt} 4) \times {{10}^{{19}}} {\text{c}}{{{\text{m}}}^{{ - 3}}}\)时观测到的辐射通量一致。
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来源期刊
Astronomy Reports
Astronomy Reports 地学天文-天文与天体物理
CiteScore
1.40
自引率
20.00%
发文量
57
审稿时长
6-12 weeks
期刊介绍: Astronomy Reports is an international peer reviewed journal that publishes original papers on astronomical topics, including theoretical and observational astrophysics, physics of the Sun, planetary astrophysics, radio astronomy, stellar astronomy, celestial mechanics, and astronomy methods and instrumentation.
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