论文标题

Simons天文台:在大光圈望远镜中建模光学系统学

The Simons Observatory: Modeling Optical Systematics in the Large Aperture Telescope

论文作者

Gudmundsson, Jon E., Gallardo, Patricio A., Puddu, Roberto, Dicker, Simon R., Adler, Alexandre E., Ali, Aamir M., Bazarko, Andrew, Chesmore, Grace E., Coppi, Gabriele, Cothard, Nicholas F., Dachlythra, Nadia, Devlin, Mark, Dünner, Rolando, Fabbian, Giulio, Galitzki, Nicholas, Golec, Joseph E., Ho, Shuay-Pwu Patty, Hargrave, Peter C., Kofman, Anna M., Lee, Adrian T., Limon, Michele, Matsuda, Frederick T., Mauskopf, Philip D., Moodley, Kavilan, Nati, Federico, Niemack, Michael D., Orlowski-Scherer, John, Page, Lyman A., Partridge, Bruce, Puglisi, Giuseppe, Reichardt, Christian L., Sierra, Carlos E., Simon, Sara M., Teply, Grant P., Tucker, Carole, Wollack, Edward J., Xu, Zhilei, Zhu, Ningfeng

论文摘要

我们为Simons天文台大光圈望远镜提供了几何和物理光学仿真结果。这项工作是作为望远镜一般设计过程的一部分而开发的。允许我们评估各种设计选择对性能指标和潜在系统影响的影响。模拟的主要目的是评估反射器的最终设计和现在正在构建的冷光学。我们描述了用于告知冷光学设计的非顺序射线跟踪,包括每个光学管内部的吸收器。我们讨论了望远镜结构的射线追踪模拟,这些模拟使我们能够确定几何形状,从而最大程度地减少检测器的负载并减轻伪造的近场效应,而这些近场效应尚未通过内部的困惑解决。我们还描述了在一系列频率和现场位置执行的物理光学模拟,这些模拟产生了单色远场梁模式的估计值,这些图案又用于评估一般的光学性能。最后,我们描述的模拟从面板间隙衍射中揭示了光束旁的镜头。

We present geometrical and physical optics simulation results for the Simons Observatory Large Aperture Telescope. This work was developed as part of the general design process for the telescope; allowing us to evaluate the impact of various design choices on performance metrics and potential systematic effects. The primary goal of the simulations was to evaluate the final design of the reflectors and the cold optics which are now being built. We describe non-sequential ray tracing used to inform the design of the cold optics, including absorbers internal to each optics tube. We discuss ray tracing simulations of the telescope structure that allow us to determine geometries that minimize detector loading and mitigate spurious near-field effects that have not been resolved by the internal baffling. We also describe physical optics simulations, performed over a range of frequencies and field locations, that produce estimates of monochromatic far field beam patterns which in turn are used to gauge general optical performance. Finally, we describe simulations that shed light on beam sidelobes from panel gap diffraction.

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