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首页> 外文期刊>The Astrophysical journal >Flare Energy Release at the Magnetic Field Polarity Inversion Line during the M1.2 Solar Flare of 2015 March 15. I. Onset of Plasma Heating and Electron Acceleration
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Flare Energy Release at the Magnetic Field Polarity Inversion Line during the M1.2 Solar Flare of 2015 March 15. I. Onset of Plasma Heating and Electron Acceleration

机译:2015年3月15日M1.2太阳耀斑在磁场极性反转线上释放耀斑能量。I.等离子加热和电子加速的开始

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We present the study of the SOL2015-03-15 M1.2 flare, revealing acceleration of electrons and plasma heating in the sheared twisted magnetic structure at the polarity inversion line (PIL). The purpose is to make an analysis of nonthermal electron dynamics and plasma heating in the highly stressed magnetic loops interacting at the PIL by using X-ray, microwave, ultraviolet, and optical observations. It is found that the most probable scenario for the energy release at the PIL is the tether-cutting magnetic reconnection between the low-lying (3 Mm above the photosphere) magnetic loops within a twisted magnetic flux rope. Energetic electrons with the hardest spectrum appeared at the onset of plasma heating up to the superhot temperature of 40 MK. These electrons are localized in a thin magnetic channel with a width of around 0.5 Mm and a high average magnetic field of about 1200 G. The plasma beta in the superhot region is less than 0.01. The estimated density of accelerated electrons is about 109 cm?3, which is much less than the superhot plasma density. The energy density flux of nonthermal electrons is estimated up to 3?×?1012 erg cm?2 s?1, which is much higher than in the currently available radiative hydrodynamic models. These results revealed that one needs to develop new self-consistent flare models reproducing 3D magnetic reconnection at the PIL with strong magnetic field, spatial filamentation of energy release, formation of high-energy density populations of nonthermal electrons, and the appearance of the superhot plasma.
机译:我们介绍了SOL2015-03-15 M1.2耀斑的研究,揭示了在极性反转线(PIL)处的剪切扭绞磁性结构中电子和等离子体加热的加速。目的是通过使用X射线,微波,紫外线和光学观察来分析在PIL处相互作用的高应力磁回路中的非热电子动力学和等离子体加热。已经发现,在PIL释放能量的最可能情况是在扭曲的磁通量绳索内的低层(光球上方3 Mm)磁环之间的系绳切割磁重新连接。具有最硬光谱的高能电子出现在等离子体加热到40 MK的过热温度时。这些电子位于宽度约0.5 Mm的薄磁通道中,并具有约1200 G的高平均磁场。超热区的等离子体β小于0.01。估计的加速电子密度约为109 cm?3,远低于超热等离子体密度。非热电子的能量密度通量估计高达3××1012 erg cm×2 s×1,这比目前可用的辐射流体动力学模型要高得多。这些结果表明,需要开发一种新的自洽耀斑模型,该模型在PIL上具有强磁场,能量释放的空间细丝化,在非热电子中形成高能密度的族群以及超热等离子体的出现,从而在PIL上重现3D磁性重连。 。

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