论文标题

阳光下的色球等离子体参数的推断

Inference of chromospheric plasma parameters on the Sun

论文作者

Chae, Jongchul, Madjarska, Maria S., Kwak, Hannah, Cho, Kyuhyoun

论文摘要

可以通过强吸收线很好地观察到太阳染色体。我们使用多层频谱反演从这些线上从这些线中推断出色球等离子体的物理参数。这是一种新的频谱反转技术。我们假设大气由有限数量的层组成。在每一层中,吸收曲线是恒定的,源函数随光学深度而变化,并具有恒定的梯度。具体而言,我们考虑了一个三层辐射转移模型,其中最低层用光球识别,并且两个上层层用色层鉴定。光球中的吸收曲线由voigt函数描述,以及高斯函数中的色谱谱。这个三层模型由13个参数完全指定。可以将四个参数固定在规定的值中,一个参数可以从卫星光谱线的分析中确定。其余的8个参数是根据约束最小二乘拟合确定的。我们将多层光谱反演应用于H $α$的光谱数据和CA II 854.21 nm线在安静区域中通过Goode太阳能望远镜(GST)的快速成像太阳能光谱仪(FISS)采取的静态区域。我们发现我们的模型成功地符合大多数观察到的轮廓,并产生模型参数的常规图。两条线的推断多普勒宽度的组合得出了染色体中温度和非热速度的合理估计。我们得出的结论是,我们的多层反演对于推断太阳上的色层等离子体参数很有用。

The solar chromosphere can be observed well through strong absorption lines. We infer the physical parameters of chromospheric plasmas from these lines using a multilayer spectral inversion. This is a new technique of spectral inversion. We assume that the atmosphere consists of a finite number of layers. In each layer the absorption profile is constant and the source function varies with optical depth with a constant gradient. Specifically, we consider a three-layer model of radiative transfer where the lowest layer is identified with the photosphere and the two upper layers are identified with the chromosphere. The absorption profile in the photosphere is described by a Voigt function, and the profile in the chromosphere by a Gaussian function. This three-layer model is fully specified by 13 parameters. Four parameters can be fixed to prescribed values, and one parameter can be determined from the analysis of a satellite photospheric line. The remaining 8 parameters are determined from a constrained least-squares fitting. We applied the multilayer spectral inversion to the spectral data of the H$α$ and the Ca II 854.21 nm lines taken in a quiet region by the Fast Imaging Solar Spectrograph (FISS) of the Goode Solar Telescope (GST). We find that our model successfully fits most of the observed profiles and produces regular maps of the model parameters. The combination of the inferred Doppler widths of the two lines yields reasonable estimates of temperature and nonthermal speed in the chromosphere. We conclude that our multilayer inversion is useful to infer chromospheric plasma parameters on the Sun.

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