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Limits on adaptive optics systems for lightweight space telescopes

机译:轻型太空望远镜的自适应光学系统的限制

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Abstract: Future space telescopes seek to maximize collecting aperture for increased sensitivity and high spatial resolution yet are limited in mass due to launch weight restrictions. JPL has developed the Controlled Optics Modelling Package (COMP) to easily facilitate analyses of optical systems whose elements are perturbed. Development of the computer tool, IMOS (Integrated Modeling of Advanced Optical Systems) allows modeling of structurally and thermally induced deformations to interact with optical systems. Presented here are analyses on the Segmented Reflector Telescope, (SRT), to estimate and then minimize the effect of anticipated disturbances on the resultant optical performance. Such studies are a needed prerequisite for estimating the requirements for adaptive optics due to structural movements. A simulation study estimates the space-time power spectral density of the residual telescope phases from reaction wheel disturbances. Results show that significant disturbances are concentrated in the first few Zernike polynomials with 87% of all disturbances described by the first 11 terms leaving a 0.35 $mu@m rms residual. The time bandwidth of the disturbances is between 20 - 25 Hz which placed the required corrections in the adaptive optics regime.!17
机译:摘要:未来的太空望远镜寻求最大化收集孔径以提高灵敏度和高空间分辨率,但由于发射重量的限制,其质量受到限制。 JPL开发了可控光学建模套件(COMP),可以轻松地对元素受干扰的光学系统进行分析。计算机工具IMOS(高级光学系统的集成建模)的开发允许对结构和热引起的变形进行建模以与光学系统进行交互。此处介绍的是分段反射式望远镜(SRT)上的分析,以估计并最小化预期干扰对最终光学性能的影响。此类研究是估计由于结构运动而对自适应光学系统的要求的必要先决条件。一项仿真研究根据反作用轮干扰估算了剩余望远镜相的时空功率谱密度。结果表明,显着的扰动集中在前几个Zernike多项式中,前11个项描述了所有扰动的87%,剩余了0.35μm·m rms残留。干扰的时间带宽在20-25 Hz之间,这将所需的校正置于自适应光学系统中!17

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