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Formation of the helium extreme-UV resonance lines

机译:氦极端紫外线共振线的形成

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Context. While classical models successfully reproduce intensities of many transition region lines, they predict helium extreme-UV (EUV) line intensities roughly an order of magnitude lower than the observed value. Aims. Our aim is to determine the relevant formation mechanism(s) of the helium EUV resonance lines capable of explaining the high intensities under quiet Sun conditions. Methods. We synthesised and studied the emergent spectra from a 3D radiation-magnetohydrodynamics simulation model. The effects of coronal illumination and non-equilibrium ionisation of hydrogen and helium are included self-consistently in the numerical simulation. Results. Radiative transfer calculations result in helium EUV line intensities that are an order of magnitude larger than the intensities calculated under the classical assumptions. The enhanced intensity of He? i λ 584 is primarily caused by He? ii recombination cascades. The enhanced intensity of He? ii λ 304 and He? ii λ 256 is caused primarily by non-equilibrium helium ionisation. Conclusions. The analysis shows that the long standing problem of the high helium EUV line intensities disappears when taking into account optically thick radiative transfer and non-equilibrium ionisation effects.
机译:上下文。尽管经典模型成功地再现了许多过渡区域线的强度,但他们预测氦极紫外(EUV)线的强度大约比观测值低一个数量级。目的我们的目标是确定能够解释安静太阳条件下的高强度的氦EUV共振线的相关形成机理。方法。我们从3D辐射-磁流体动力学模拟模型合成并研究了新兴光谱。在数值模拟中,自洽地包括了日冕照射和氢与氦的非平衡电离的影响。结果。辐射转移计算得出的氦EUV线强度比经典假设下计算的强度大一个数量级。他的强度增强了吗?我λ584主要是由He引起的? ii重组级联。他的强度增强了吗? ii 304和He? iiλ256主要是由非平衡氦离子化引起的。结论。分析表明,考虑到光学上较厚的辐射传输和非平衡电离效应,高氦EUV线强度的长期存在的问题消失了。

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