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Progress with the Prime Focus Spectrograph for the Subaru Telescope: a massively multiplexed optical and near-infrared fiber spectrograph

机译:用Prime焦点光谱仪进行底座望远镜的进展:一种大型多路复用光学和近红外光纤光谱仪

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The Prime Focus Spectrograph (PFS) is an optical/near-infrared multi-fiber spectrograph with 2394 science fibers, which are distributed in 1.3 degree diameter field of view at Subaru 8.2-meter telescope. The simultaneous wide wavelength coverage from 0.38 μm to 1.26 μm, with the resolving power of 3000, strengthens its ability to target three main survey programs: cosmology, Galactic archaeology, and galaxy/AGN evolution. A medium resolution mode with resolving power of 5000 for 0.71 μm to 0.89 μm also will be available by simply exchanging dispersers. PFS takes the role for the spectroscopic part of the Subaru Measurement of Images and Redshifts (SuMIRe) project, while Hyper Suprime-Cam (HSC) works on the imaging part. HSC's excellent image qualities have proven the high quality of the Wide Field Corrector (WFC), which PFS shares with HSC. The PFS collaboration has succeeded in the project Preliminary Design Review and is now in a phase of subsystem Critical Design Reviews and construction. To transform the telescope plus WFC focal ratio, a 3-mm thick broad-band coated microlens is glued to each fiber tip. The microlenses are molded glass, providing uniform lens dimensions and a variety of refractive-index selection. After successful production of mechanical and optical samples, mass production is now complete. Following careful investigations including Focal Ratio Degradation (FRD) measurements, a higher transmission fiber is selected for the longest part of cable system, while one with a better FRD performance is selected for the fiber-positioner and fiber-slit components, given the more frequent fiber movements and tightly curved structure. Each Fiber positioner consists of two stages of piezo-electric rotary motors. Its engineering model has been produced and tested. After evaluating the statistics of positioning accuracies, collision avoidance software, and interferences (if any) within/between electronics boards, mass production will commence. Fiber positioning will be performed iteratively by taking an image of artificially back-illuminated fibers with the Metrology camera located in the Cassegrain container. The camera is carefully designed so that fiber position measurements are unaffected by small amounts of high special-frequency inaccuracies in WFC lens surface shapes. Target light carried through the fiber system reaches one of four identical fast-Schmidt spectrograph modules, each with three arms. All optical glass blanks are now being polished. Prototype VPH gratings have been optically tested. CCD production is complete, with standard fully-depleted CCDs for red arms and more-challenging thinner fully-depleted CCDs with blue-optimized coating for blue arms. The active damping system against cooler vibration has been proven to work as predicted, and spectrographs have been designed to avoid small possible residual resonances.
机译:主要聚焦光谱仪(PFS)是一种光学/近红外多光纤光谱仪,具有2394个科学纤维,其在斯巴鲁8.2米望远镜的1.3度直径视野中分布。同时宽波长覆盖范围为0.38μm至1.26μm,具有3000的分辨率,加强其瞄准三个主要调查计划的能力:宇宙学,银河考古学和银河/ agn演化。通过简单地交换分散器,可以使用分辨率为5000至0.89μm的介质分辨率模式。 PFS对图像和红移(Sumire)项目的底座测量的光谱部分的作用,而超级凸轮(HSC)在成像部分上工作。 HSC的出色形象质量已经证明了高质量的宽场校正器(WFC),PFS与HSC共享。 PFS协作成功地在项目初步设计审查中取得了成功,现在处于子系统的阶段关键设计评论和建设。为了改变望远镜加WFC焦平率,将3毫米厚的宽带涂层微透镜粘合到每个纤维尖端。微透镜是模塑玻璃,提供均匀的透镜尺寸和各种折射率选择。成功生产机械和光学样品后,批量生产现已完成。在包括焦平率下降(FRD)测量的仔细调查之后,为电缆系统的最长部分选择更高的透射光纤,而具有更好的FRD性能的用于光纤定位器和光纤狭缝组件,则给出更频繁的纤维运动和紧密弯曲的结构。每个光纤定位器由两个压电旋转电动机的两个阶段组成。它的工程模型已经生产和测试。在评估电子板内/之间/之间的定位精度,碰撞避免软件和干扰(如果有的话)之后,批量生产将开始。通过使用位于CasseGrain容器中的计量相机进行人工背光纤维的图像来迭代地进行光纤定位。仔细设计了相机,使光纤位置测量不受WFC镜片表面形状中少量高特殊频率不准确的影响。通过光纤系统携带的目标光达到四个相同的快速施密仪模块中的一个,每个臂具有三个臂。所有光学玻璃坯料都已抛光。原型VPH格栅已经光学测试。 CCD生产已完成,具有标准的全耗尽CCD,用于红色武器,更具挑战性较薄的全耗尽CCD,具有蓝色武器的蓝色优化涂层。已经证明了对冷却器振动的主动阻尼系统以预测工作,并设计光谱仪以避免小可能的剩余共振。

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