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Rigid lightweight optical bench for a spaceborne FUV spatial heterodyne interferometer

机译:适用于星载FUV空间外差干涉仪的坚固轻巧的光学平台

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Abstract: Requirements for spaceflight optical instruments usually dictate that structures be rigid, lightweight, and thermally stable. In addition, for interferometric far ultraviolet (FUV) spectrometers, the requirements for torsional deflection are more severe than with conventional spectrometers. To meet the challenge for rigid and lightweight optical instruments, this paper explores the design of a high-stiffness structure for the support of an FUV spatial heterodyne interferometer where the torsional deflection of the instrument is on the order of 10 arc sec. The structure is based on use of a thin, hollow section beam with weight-relieving between optical elements. The design also uses a modular and self-contained positioning mechanism that is removed after final optical alignment. Several specific material properties are presented as criteria for material selection. The parameters which affect the particular design requirements are identified with respect to the desired material properties and physical design features. Although large thin sections are susceptible to thermal gradients, this could be minimized by a trade-off for weight, where adequate margin exists. This paper describes the preliminary design for the structure and presents an analysis to verify compliance with the requirements. !4
机译:摘要:航天光学仪器的要求通常要求结构坚固,轻巧且具有热稳定性。此外,对于干涉式远紫外(FUV)光谱仪,与传统光谱仪相比,对挠曲偏转的要求更加严格。为了应对刚性和轻型光学仪器的挑战,本文探讨了用于支撑FUV空间外差干涉仪的高刚度结构的设计,该仪器的扭转挠度约为10弧秒。该结构基于薄型空心截面光束的使用,减轻了光学元件之间的重量。该设计还使用了模块化且独立的定位机制,该机制在最终的光学对准之后就被移除了。介绍了几种特定的材料特性作为材料选择的标准。根据所需的材料特性和物理设计特征,确定影响特定设计要求的参数。尽管大的薄片容易受到热梯度的影响,但是可以通过权衡重量(在有足够余量的情况下)将其最小化。本文介绍了该结构的初步设计,并进行了分析以验证是否符合要求。 !4

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