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Extreme adaptive optics system optimization with the High Order Test bench

机译:使用高阶测试台架进行极端自适应光学系统优化

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Extreme adaptive optics systems dedicated to the search for extrasolar planets are currently being developed for most 8-10 meter telescopes. Extensive computer simulations have shown the ability of both Shack-Hartmann and pyramid wave front sensors to deliver high Strehl ratio correction expected from extreme adaptive optics but few experiments have been realized so far. The high order test bench implements extreme adaptive optics on the MACAO test bench with realistic telescope conditions reproduced by star and turbulence generators. A 32x32 actuator micro deformable mirror, one pyramid wave front sensor, one Shack-Hartmann wave front sensor, the ESO SPARTA real time computer and an essentially read-noise free electron multiplying CCD60 (E2V CCD60) provide an ideal cocoon to study the different behavior of the two types of wave front sensors in terms of linearity, sensitivity to calibration errors, noise propagation, specific issues to pyramid or Shack-Hartmann wave front sensors, etc. We will describe the overall design of this test bench and will focus on the characterization of two essential sub-systems: the micro deformable mirror and the phase screens.
机译:目前正在为大多数8-10米望远镜开发专用于寻找太阳系外行星的极端自适应光学系统。大量的计算机仿真表明,Shack-Hartmann和金字塔波阵面传感器均具有实现极端自适应光学器件所期望的高Strehl比校正的能力,但到目前为止,尚未实现任何实验。高阶试验台在星载和湍流发生器再现的逼真的望远镜条件下,在MACAO试验台上实现了极端自适应光学。一台32x32执行器微变形镜,一个金字塔形波前传感器,一个Shack-Hartmann波前传感器,ESO SPARTA实时计算机和一个基本无噪声的电子倍增CCD60(E2V CCD60)提供了研究不同行为的理想茧在线性,对校准误差的敏感性,噪声传播,金字塔或Shack-Hartmann波阵面传感器的特定问题等方面,对两种波阵面传感器进行了分析。我们将描述该测试台的总体设计,并将重点放在两个基本子系统的特征:微变形镜和相筛。

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