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The Hector Instrument: optical design of the new higher-resolution spectrograph

机译:赫克托仪器:新型高分辨率光谱仪的光学设计

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The Hector instrument is the new multi-object facility at the Anglo-Australian Telescope. It consists of new-format hexabundle IFU's, complex robotic positioner with magnetic system, unique sky-fibre system, guiding system, optical cable and two spectrographs. Light is captured at the telescope prime focus by optical fiber imaging bundles (hexabundles) at f/3.25 and delivered to the spectrograph slit via ~50 m long fiber cable. At the spectrograph end, the fibers are reformatted into a curved slit relaying unconverted telescope input. The spectrograph optics includes fast collimators and cameras reimaging the slit onto 4k × 4k E2V detectors at f/1.3 with magnification 1/2.5. The challenge of good image quality with the large pupil size (180 mm) and the field of view (±12° at detector) was met by introduction of several aspheric surfaces in the all-refractive design. The blue and red arms, 372-591 nm and 571-778 nm, respectively, are implemented with the help of a dichroic beam splitter in the diverging beam followed by a collimating doublet lens for each arm. An upgrade is possible to the infra-red arm with the help of an additional dichroic beam splitter. The dispersers are asymmetric VPH gratings with slanted fringes optimised for the passband of each arm. Optical performance of the dichroic beamsplitter and gratings has been confirmed and complemented by in-house metrology. The spectrograph throughput is predicted based on transmittance of materials and coatings.
机译:赫克隆乐器是英国澳大利亚望远镜的新型多目标设施。它由新格式的Hexabundle IFU,复杂的机器人定位器,带有磁性系统,独特的天空光纤系统,引导系统,光缆和两种光谱仪。光线在F / 3.25处通过光纤成像束(Hexabundles)在望远镜的焦点上捕获光,并通过〜50米长的光纤电缆传送到光谱仪。在光谱仪端,纤维重新重新格式化成弯曲的狭缝中继未转换的望远镜输入。光谱仪光学器件包括快速准直器和摄像机,将狭缝重新设计到4K×4K E2V探测器上,在F / 1.3,倍率为1 / 2.5。通过引入全折射设计中的几个非球面,通过引入良好的瞳孔尺寸(180 mm)和视野(在探测器处的±12°)的良好图像质量的挑战。在发散梁中的二向导分束器中,分别实施蓝色和红色臂372-591nm和571-778nm,然后在每个臂的准直的双重透镜的帮助下实现。有助于额外的二向色分束器的红外线臂可以进行升级。分散器是不对称的VPH格栅,其具有针对每个臂的通带优化的倾斜条纹。已经确认了二向色束投标器和光栅的光学性能并通过内部计量学。基于材料和涂层的透射率来预测光谱仪吞吐量。

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