论文标题

Radyn模拟中的纳米洛雷加热的色圈发射

Chromospheric emission from nanoflare heating in RADYN simulations

论文作者

Bakke, H., Carlsson, M., van der Voort, L. Rouppe, Gudiksen, B. V., Polito, V., Testa, P., De Pontieu, B.

论文摘要

事实证明,来自太阳大气中的小型磁重新连接事件的加热特征很难通过观察结果检测。重现燃烧条件的数值模型对于理解纳米氟的加热机制至关重要。我们研究了非热电子从纳米洛雷加热环的1D流体动力学射线模拟中的合成光谱中的影响,以研究小型事件中色球发射的诊断潜力。 Mg II H和K,Ca II H和K,Ca II 854.2 nm,H-Alpha和H-Beta色层线是从经受纳米光能电子束的各种冠状环的RADYN模型中合成的。计算对线强度的贡献函数,以更好地了解对非热电子的大气响应如何影响光谱线的形成和光谱曲线的详细形状。由电子束引起的光谱线签名高度取决于环的密度和电子的较低截止能。低能(5 KEV)电子将其能量沉积在电晕和过渡区域,产生强烈的等离子体流,从而引起色球谱光谱的红移和蓝光。较高能源(10和15 KEV)电子将其能量沉积在较低的过渡区域和染色层中,从而导致局部加热的排放增加。我们的结果表明,可以通过基于地面望远镜观察到小尺度事件的影响,从而扩大了纳米插曲的存在和特性的可能诊断列表。

Heating signatures from small-scale magnetic reconnection events in the solar atmosphere have proven to be difficult to detect through observations. Numerical models that reproduce flaring conditions are essential in the understanding of how nanoflares may act as a heating mechanism of the corona. We study the effects of non-thermal electrons in synthetic spectra from 1D hydrodynamic RADYN simulations of nanoflare heated loops to investigate the diagnostic potential of chromospheric emission from small-scale events. The Mg II h and k, Ca II H and K, Ca II 854.2 nm, H-alpha and H-beta chromospheric lines were synthesised from various RADYN models of coronal loops subject to electron beams of nanoflare energies. The contribution function to the line intensity was computed to better understand how the atmospheric response to the non-thermal electrons affects the formation of spectral lines and the detailed shape of their spectral profiles. The spectral line signatures arising from the electron beams highly depend on the density of the loop and the lower cutoff energy of the electrons. Low-energy (5 keV) electrons deposit their energy in the corona and transition region, producing strong plasma flows that cause both redshifts and blueshifts of the chromospheric spectra. Higher-energy (10 and 15 keV) electrons deposit their energy in the lower transition region and chromosphere, resulting in increased emission from local heating. Our results indicate that effects from small-scale events can be observed with ground-based telescopes, expanding the list of possible diagnostics for the presence and properties of nanoflares.

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