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EFFECTS OF NON-LTE RADIATIVE LOSS AND PARTIAL IONIZATION ON THE STRUCTURE OF THE TRANSITION REGION

机译:非LTE辐射损耗和部分电离对过渡区结构的影响

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In this paper we address the question of how non-LTE radiative losses with partial ionization of hydrogen and helium affects the energetics and structure of the solar transition region. To accomplish this we have constructed theoretical models of a thin rigid magnetic flux tube with a steady material flow, which is embedded vertically in the solar atmosphere. These models include the effects of material flow, conduction, non-LTE radiative transfer in H and He, and partial ionization. We find from this study that the effect of non-LTE radiative transfer with partial ionization is significant near the base of the transition region at temperatures less than 2.5 x 10~4 K. This leads to a 1 order of magnitude increase in the differential emission measure in comparison with the optically thin approximation with complete ionization in the low (less than 2.5 x 10~4 K) temperature regime. Above this region the non-LTE and opacity effects are small. In the upflow case the conductive and convective energy processes dominate to such a large extent that non-LTE radiative process and partial ionization are not important. In this work we also confirm the previous work of other authors who provided the explanation for why downflowing transition region material is much more visible than upflowing material. We present the results in a manner that gives a good physical understanding as to why this occurs.
机译:在本文中,我们解决了氢和氦离子化的非LTE辐射损耗如何影响太阳过渡区的能量和结构的问题。为此,我们构建了具有稳定材料流的刚性刚性磁通管的理论模型,该材料垂直地嵌入太阳大气中。这些模型包括材料流动,传导,H和He中非LTE辐射转移以及部分电离的影响。我们从这项研究中发现,在低于2.5 x 10〜4 K的温度下,过渡区域底部附近的非LTE辐射转移与部分电离的影响非常显着。这导致差分发射增加了一个数量级。与在低温(小于2.5 x 10〜4 K)的条件下完全电离的光学薄近似近似进行测量。在此区域上方,非LTE和不透明度影响很小。在上流情况下,传导和对流能量过程占主导地位,以至于非LTE辐射过程和部分电离并不重要。在这项工作中,我们还确认了其他作者的先前工作,他们提供了解释,为什么向下流动的过渡区域材料比向上流动的材料更明显。我们以能够很好地理解为什么发生这种现象的方式介绍了结果。

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