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The Infrared Imaging Spectrograph (IRIS) for TMT: Multi-tiered Wavefront Measurements and Novel Mechanical Design

机译:TMT的红外成像光谱仪(IRIS):多层波前测量和新型机械设计

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The InfraRed Imaging Spectrograph (IRIS) will be the first light adaptive optics instrument on the Thirty Meter Telescope (TMT). IRIS is being built by a collaboration between Caltech, the University of California, NAOJ and NRC Herzberg. In this paper we present novel aspects of the Support Structure, Rotator and On-Instrument Wavefront Sensor systems being developed at NRC Herzberg. IRIS is suspended from the bottom port of the Narrow Field Infrared Adaptive Optics System (NFIRAOS), and provides its own image de-rotation to compensate for sidereal rotation of the focal plane. This arrangement is a challenge because NFIRAOS is designed to host two other science instruments, which imposes strict mass requirements on IRIS. As the mechanical design of all elements has progressed, we have been tasked with keeping the instrument mass under seven tonnes. This requirement has resulted in a mass reduction of 30 percent for the support structure and rotator compared to the most recent IRIS designs. To accomplish this goal, while still being able to withstand earthquakes, we developed a new design with composite materials. As IRIS is a client instrument of NFIRAOS, it benefits from NFIRAOS's superior AO correction. IRIS plays an important role in providing this correction by sensing low-order aberrations with three On-Instrument Wavefront Sensors (OIWFS). The OIWFS consists of three independently positioned natural guide star wavefront sensor probe arms that patrol a 2-arcminute field of view. We expect tip-tilt measurements from faint stars within the IRIS imager focal plane will further stabilize the delivered image quality. We describe how the use of On-Detector Guide Windows (ODGWs) in the IRIS imaging detector can be incorporated into the AO correction. In this paper, we present our strategies for acquiring and tracking sources with this complex AO system, and for mitigating and measuring the various potential sources of image blur and misalignment due to properties of the mechanical structure and interfaces.
机译:红外成像光谱仪(IRIS)将是第三十米望远镜(TMT)的第一灯自适应光学仪器。虹膜是由Caltech,加利福尼亚大学,Naoj和NRC Herzberg的合作建造的。在本文中,我们在NRC Herzberg开发的支持结构,旋转器和仪器上的仪器波前传感器系统的新颖方面。虹膜从窄场红外自适应光学系统(NFIRAOS)的底部悬挂,并提供自己的图像去旋转以补偿焦平面的恒星旋转。这种安排是一个挑战,因为Nfiraos旨在举办另外两种科学仪器,这对虹膜施加了严格的质量要求。由于所有元素的机械设计进行了进展,我们已被任务保持七吨仪器块。与最近的虹膜设计相比,该要求导致支撑结构和旋转器的质量减少30%。为了实现这一目标,虽然仍有能够承受地震,但我们开发了一种具有复合材料的新设计。由于IRIS是NFIRAOS的客户仪器,它来自Nfiraos的优越的AO校正。虹膜在通过用三个仪器波前传感器(OIWFS)感测到低阶像差来发挥重要作用。 OIWFS由三个独立定位的自然导向之星波前传感器探头探头组成,该探头探测器巡逻A 2-Arcminute视野。我们预计Iris成像焦点内的微弱恒星的尖端倾斜测量将进一步稳定交付的图像质量。我们描述了如何在IRIS成像检测器中使用On-Detector指南窗口(ODGWS)可以结合到AO校正中。在本文中,我们介绍了使用这种复杂的AO系统获取和跟踪来源的策略,以及由于机械结构和界面的性质而减轻和测量图像模糊和未对准的各种潜在来源。

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