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Prime Focus Spectrograph for the Subaru telescope : massively multiplexed optical and near-infrared fiber spectrograph.

机译:斯巴鲁望远镜的Prime Focus光谱仪:大规模复用的光学和近红外光纤光谱仪。

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摘要

he Prime Focus Spectrograph (PFS) is an optical/near-infrared multifiber spectrograph with 2394 science fibers distributed across a 1.3-deg diameter field of view at the Subaru 8.2-m telescope. The wide wavelength coverage from 0.38  μm0.38  μm to 1.26  μm1.26  μm, with a resolving power of 3000, simultaneously strengthens its ability to target three main survey programs: cosmology, galactic archaeology and galaxy/AGN evolution. A medium resolution mode with a resolving power of 5000 for 0.71  μm0.71  μm to 0.89  μm0.89  μm will also be available by simply exchanging dispersers. We highlight some of the technological aspects of the design. To transform the telescope focal ratio, a broad-band coated microlens is glued to each fiber tip. A higher transmission fiber is selected for the longest part of the cable system, optimizing overall throughput; a fiber with low focal ratio degradation is selected for the fiber-positioner and fiber-slit components, minimizing the effects of fiber movements and fiber bending. Fiber positioning will be performed by a positioner consisting of two stages of piezo-electric rotary motors. The positions of these motors are measured by taking an image of artificially back-illuminated fibers with the metrology camera located in the Cassegrain container; the fibers are placed in the proper location by iteratively measuring and then adjusting the positions of the motors. Target light reaches one of the four identical fast-Schmidt spectrograph modules, each with three arms. The PFS project has passed several project-wide design reviews and is now in the construction phase.
机译:Prime Focus光谱仪(PFS)是一种光学/近红外多纤维光谱仪,在Subaru 8.2米望远镜中,其2394条科学纤维分布在直径1.3度的视场中。从0.38μm0.38μm到1.26μm1.26μm的宽波长范围,具有3000的分辨能力,同时增强了其针对三个主要测量程序的能力:宇宙学,银河考古学和星系/ AGN演化。只需更换分散器,即可获得分辨率为5000的0.71μm0.71μm至0.89μm0.89μm的中分辨率模式。我们重点介绍设计的一些技术方面。为了改变望远镜的焦比,将宽带镀膜的微透镜粘贴到每个光纤尖端。为电缆系统的最长部分选择了更高的传输光纤,从而优化了总体吞吐量。为光纤定位器和光纤狭缝组件选择低焦比降低的光纤,可最大程度地减少光纤移动和光纤弯曲的影响。光纤定位将由由两级压电旋转电机组成的定位器执行。这些马达的位置是通过使用位于卡塞格林(Cassegrain)容器中的计量相机拍摄人工背照式光纤的图像来测量的;通过反复测量然后调整电动机的位置,将纤维放置在适当的位置。目标光到达四个相同的快速施密特光谱仪模块之一,每个模块具有三个臂。 PFS项目已通过了数个项目范围的设计审查,现在处于施工阶段。

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