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Opto-mechanical design for transmission optics in cryogenic IRinstrumentation

机译:低温红外仪器中传输光学的光机械设计

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ASTRON is involved in the development and realization of various optical astronomical instruments for ground-based as well as space telescopes, with a focus on near- and mid-infrared instrumentation. ASTRON has developed, among others, cryogenic optics for the first generation ESO VLT and VLTI instruments VISIR, MIDI and the SPIFFI 2K-camera for SINFONI. Currently under construction are MIRI for the James Webb Space Telescope and X-shooter for the second generation ESO VLT instrumentation, while the initial design of several ELT instruments has started.Mounting optics is always a compromise between firmly fixing the optics and preventing stresses within the optics. The fixing should ensure mechanical stability and thus accurate positioning in various gravity orientations, temperature ranges, during launch, transport or earthquake. On the other hand, the fixings can induce deformations and sometimes birefringence in the optics and thus cause optical errors. Even cracking or breaking of the optics is a risk, especially at the cryogenic temperatures required in instruments for infrared astronomy, where differential expansion of various materials amounts easily to several millimetres per meter. Special kinematic mounts are therefore needed to ensure both accurate positioning and low stress.Though ASTRON is involved in the full realization of instruments from initial design to commissioning, this paper concentrates on the opto-mechanical design of optics mountings, especially for large transmission optics in cryogenic circumstances. It describes the development of temperature-invariant ("a-thermal"), kinematic designs and how they are implemented in instruments such as SPIFFI and X-shooter.
机译:Astron参与了地面和空间望远镜的各种光学天文仪器的开发和实现,重点是近红外仪器。 Astron除了另外,对于第一代ESO VLT和VLTI仪器Visir,Midi和Spiffi 2k-Camera for sinfoni,载体的光学元件的低温光学器件。目前正在建设中是詹姆斯韦伯太空望远镜和X射击者为第二代ESO VLT仪器的Miri,而几个elt仪器的初始设计已经开始。 安装光学器件始终是牢固固定光学器件和防止光学内的应力之间的折衷。固定应确保机械稳定性,从而在发射,运输或地震期间以各种重力定向,温度范围的定位精确定位。另一方面,固定可以诱导光学器件中的变形和有时双折射,从而导致光学误差。甚至开裂或突破光学器件都是一种风险,特别是在红外天文学仪器所需的低温温度下,其中各种材料的差异膨胀容易到每米的几毫米。因此,需要特殊的运动座,以确保精确定位和低应力。 虽然Astron参与了从初始设计的完全实现仪器到调试,但本文专注于光学贴装的光电机械设计,尤其是在低温情况下大型传输光学。它描述了温度不变(“A热”),运动学设计以及它们在诸如Spiffi和X射击液等仪器中实现的开发。

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