论文标题
立方体A阶段A设计概述 - 非常大的望远镜的Cassegrain U波段有效光谱仪
CUBES Phase A design overview -- The Cassegrain U-Band Efficient Spectrograph for the Very Large Telescope
论文作者
论文摘要
我们介绍了非常大型望远镜的Cassegrain U波段有效光谱仪(立方体)的基线概念设计。立方体将对地面紫外线(UV)的8-10 m类望远镜上的光谱学提供前所未有的灵敏度,跨越了> 100 nm的带宽,该带宽始于300 nm,是从地面上最短的波长。该设计已针对端到端的效率进行了优化,并提供了R> 20000的光谱解析能力,该功能将在太阳系,银河系和外乳外天文学上解锁广泛的新主题。该设计还具有第二个低分辨率(R \ sim 7000)模式,并且可以选择在uves仪器上进行光纤链接,以在更长的波长下同时观察。在这里,我们介绍了该项目的阶段A研究后的各个子系统的光学,机械和软件设计。我们讨论了布局选择的预期性能,并突出了认为最能满足仪器顶级要求的一些性能权衡。我们还介绍了用于组织和管理项目活动和界面的基于模型的系统工程方法,在将这些工具集成到复杂的天文项目的开发中是越来越必要的。
We present the baseline conceptual design of the Cassegrain U-Band Efficient Spectrograph (CUBES) for the Very Large Telescope. CUBES will provide unprecedented sensitivity for spectroscopy on a 8 - 10 m class telescope in the ground ultraviolet (UV), spanning a bandwidth of > 100 nm that starts at 300 nm, the shortest wavelength accessible from the ground. The design has been optimized for end-to-end efficiency and provides a spectral resolving power of R > 20000, that will unlock a broad range of new topics across solar system, Galactic and extraglactic astronomy. The design also features a second, lower-resolution (R \sim 7000) mode and has the option of a fiberlink to the UVES instrument for simultaneous observations at longer wavelengths. Here we present the optical, mechanical and software design of the various subsystems of the instrument after the Phase A study of the project. We discuss the expected performances for the layout choices and highlight some of the performance trade-offs considered to best meet the instrument top-level requirements. We also introduce the model-based system engineering approach used to organize and manage the project activities and interfaces, in the context that it is increasingly necessary to integrate such tools in the development of complex astronomical projects.