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The Infrared Imaging Spectrograph (IRIS) for TMT: optical design of IRIS imager with 'Co-axis double TMA'

机译:用于TMT的红外成像光谱仪(IRIS):具有“同轴双TMA”的IRIS成像仪的光学设计

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摘要

IRIS (InfraRed Imaging Spectrograph) is one of the first-generation instruments for the Thirty Meter Telescope (TMT). IRIS is composed of a combination of near-infrared (0.84-2.4 μm) diffraction limited imager and integral field spectrograph. To achieve near-diffraction limited resolutions in the near-infrared wavelength region, IRIS uses the advanced adaptive optics system NFIRAOS (Narrow Field Infrared Adaptive Optics System) and integrated on-instrument wavefront sensors (OIWFS). However, IRIS itself has challenging specifications. First, the overall system wavefront error should be less than 40 nm in Y, z, J, and H-band and 42 nm in K-band over a 34.0 × 34.0 arcsecond field of view. Second, the throughput of the imager components should be more than 42 percent. To achieve the extremely low wavefront error and high throughput, all reflective design has been newly proposed. We have adopted a new design policy called "Co-Axis double-TMA", which cancels the asymmetric aberrations generated by "collimator/TMA" and "camera/TMA" efficiently. The latest imager design meets all specifications, and, in particular, the wavefront error is less than 17.3 nm and throughput is more than 50.8 percent. However, to meet the specification of wavefront error and throughput as built performance, the IRIS imager requires both mirrors with low surface irregularity after high-reflection coating in cryogenic and high-level Assembly Integration and Verification (AIV). To deal with these technical challenges, we have done the tolerance analysis and found that total pass rate is almost 99 percent in the case of gauss distribution and more than 90 percent in the case of parabolic distribution using four compensators. We also have made an AIV plan and feasibility check of the optical elements. In this paper, we will present the details of this optical system.
机译:IRIS(红外成像光谱仪)是三十米望远镜(TMT)的第一代仪器之一。 IRIS由近红外(0.84-2.4μm)衍射极限成像仪和积分场光谱仪组成。为了在近红外波长范围内实现近衍射极限分辨率,IRIS使用了先进的自适应光学系统NFIRAOS(窄视场红外自适应光学系统)和集成的仪器上波前传感器(OIWFS)。但是,IRIS本身具有挑战性的规格。首先,在34.0×34.0弧秒视场上,Y,z,J和H波段的整体系统波前误差应小于40 nm,K波段的整体系统波前误差应小于40 nm。其次,成像器组件的吞吐量应大于42%。为了实现极低的波前误差和高通量,新提出了全反射设计。我们采用了一种称为“同轴双TMA”的新设计策略,该策略可以有效地消除“准直器/ TMA”和“相机/ TMA”产生的不对称像差。最新的成像仪设计符合所有规格,尤其是波前误差小于17.3 nm,吞吐率大于50.8%。然而,为了满足作为建筑物性能的波前误差和吞吐率的规范,IRIS成像器要求在低温和高级组件集成与验证(AIV)中进行高反射涂层后,两个镜面均应具有低表面不规则性。为了应对这些技术挑战,我们进行了公差分析,发现在使用高斯分布的情况下,使用四个补偿器的总合格率接近99%,在抛物线分布的情况下,总合格率超过90%。我们还制定了光学元件的AIV计划和可行性检查。在本文中,我们将介绍该光学系统的细节。

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