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Integrated modeling of optical performance for the Terrestrial Planet Finder structurally connected interferometer

机译:地面行星探测器结构连接干涉仪的光学性能集成建模

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摘要

The Terrestrial Planet Finder (TPF) mission, to be launched in 2014 as a part of NASA's Origins Program, will search for Earth-like planets orbiting other stars. One main concept under study is a structurally connected interferometer. Integrated modeling of all aspects of the flight system is necessary to ensure that the stringent dynamic stability requirements imposed by the mission are met. The MIT Space Systems Laboratory has developed a suite of analysis tools known as DOCS (Disturbances Optics Controls Structures) that provides a MATLAB environment for managing integrated models and performing analysis and design optimization. DOCS provides a framework for identifying critical subsystem design parameters and efficiently computing system performance as a function of subsystem design. Additionally, the gradients of the performance outputs with respect to design variables can be analytically computed and used for automated exploration and optimization of the design space. The TPF integrated model consists of a structural finite element model, optical performance model, reaction wheel isolation stage, and attitude/optical control systems. The integrated model is expandable and upgradeable due to the modularity of the state-space subsystem models. Optical performance under reaction wheel disturbances is computed, and the effects of changing design parameters are explored. The results identify redesign options that meet performance requirements with improved margins, reduced cost and minimized risk.
机译:作为NASA起源计划的一部分,将于2014年启动的“地球行星搜索器(TPF)”任务将搜索绕其他恒星飞行的类地球行星。研究中的一个主要概念是结构连接的干涉仪。必须对飞行系统的各个方面进行综合建模,以确保满足任务规定的严格的动态稳定性要求。麻省理工学院太空系统实验室开发了一套称为DOCS(干扰光学控制结构)的分析工具,该工具提供了一个用于管理集成模型以及执行分析和设计优化的MATLAB环境。 DOCS提供了一个框架,用于识别关键子系统设计参数并根据子系统设计有效地计算系统性能。此外,性能输出相对于设计变量的梯度可以进行分析计算,并用于设计空间的自动探索和优化。 TPF集成模型由结构有限元模型,光学性能模型,反作用轮隔离台和姿态/光学控制系统组成。由于状态空间子系统模型的模块化,因此集成模型是可扩展和可升级的。计算了反作用轮干扰下的光学性能,并探讨了更改设计参数的影响。结果确定了重新设计的选项,这些选项可以满足性能要求,并具有提高的利润率,降低的成本和最小的风险。

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