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Physical modeling of echelle spectrographs: the CARMENES case study

机译:阶梯质谱仪的物理建模:CARMENES案例研究

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We have developed a generic physical modeling scheme for high resolution spectroscopy based on simple optical principles. This model predicts the position of centroids for a given set of spectral features with high accuracy. It considers off-plane grating equations and rotations of the different optical elements in order to properly account for tilts in the spectral lines and order curvature. In this way any astronomical spectrograph can be modeled and controlled without the need of commercial ray tracing software. The computations are based on direct ray tracing applying exact corrections to certain surfaces types. This allows us to compute the position on the detector of any spectral feature with high reliability. The parameters of this model, which describe the physical properties of the spectrograph, arc continuously optimized to ensure the best possible fit to the observed spectral line positions. We present the physical modeling of CARMENES as a case study. We show that, our results are in agreement with commercial ray tracing software. The model prediction matches the observations at a pixel size level, providing an efficient tool in the design, construction and data reduction of high resolution spectrographs.
机译:我们已经基于简单的光学原理为高分辨率光谱学开发了通用的物理建模方案。该模型可以高度准确地预测给定光谱特征集的质心位置。它考虑了离面光栅方程式和不同光学元件的旋转,以便适当考虑光谱线的倾斜和阶曲率。这样,无需商业射线追踪软件就可以对任何天文光谱仪进行建模和控制。该计算基于直接射线追踪,对某些表面类型进行了精确的校正。这使我们能够以高可靠性计算任何光谱特征在探测器上的位置。该模型的参数(描述光谱仪的物理属性)不断优化,以确保与观察到的光谱线位置最佳匹配。我们以案例研究的形式介绍CARMENES的物理模型。我们证明,我们的结果与商业射线追踪软件一致。模型预测与像素大小级别的观测值匹配,为高分辨率光谱仪的设计,构造和数据缩减提供了有效的工具。

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