论文标题

级联自适应光学:通过数值模拟对两阶段控制器的对比度性能分析

Cascade adaptive optics: contrast performance analysis of a two-stage controller by numerical simulations

论文作者

Cerpa-Urra, Nelly, Kasper, Markus, Kulcsár, Caroline, Raynaud, Henri-François, Heritier, Cedric Taïssir

论文摘要

通过添加第二个AO校正阶段,具有自己的波前传感器,可变形镜和实时控制器,可以改善当前极端自适应光学(XAO)系统的对比性能。我们为这种级联AO(CAO)系统开发了一个动力学模型,该模型具有两个阶段,每个阶段由标准集成商控制,并研究其控制属性。我们研究这种配置如何在不修改第一阶段的情况下改善现有系统。我们总体上分析了CAO架构,并展示了一部分干扰的部分是如何从低时间到高的时间频率转移到第二阶段集成器过冲的邪恶效应的,并提出了减轻这种情况的可能方法。我们还使用Shack-Hartmann波前传感器和第二阶段AO进行了对第一阶段AO的特定情况的数值模拟,其较小的可变形镜以较高的帧率运行,以减少时间误差。在这种情况下,我们证明了第二阶段通过一个数量级来改善成像对比度,并缩短了大气湍流斑点的去相关时间,甚至更大。结果表明,CAO提出了一种有希望且相对简单的方法,可以升级某些现有的XAO系统并获得改进的成像对比,与促进了大量科学案例(包括直接成像的系外行星)对比。

The contrast performance of current eXtreme Adaptive Optics (XAO) systems can be improved by adding a second AO correction stage featuring its own wavefront sensor, deformable mirror, and real-time controller. We develop a dynamical model for such a cascade AO (CAO) system with two stages each controlled by a standard integrator, and study its control properties. We study how such a configuration can improve an existing system without modifying the first stage. We analyze the CAO architecture in general and show how part of the disturbance is transferred from low to high temporal frequencies with a nefarious effect of the second stage integrator overshoot, and suggest possible ways to mitigate this. We also carry out numerical simulations of the particular case of a first stage AO using a Shack-Hartmann wavefront sensor and a second stage AO with a smaller deformable mirror running at a higher framerate to reduce temporal error. In this case, we demonstrate that the second stage improves imaging contrast by one order of magnitude and shortens the decorrelation time of atmospheric turbulence speckles by even a greater factor. The results show that CAO presents a promising and relatively simple way to upgrade some existing XAO systems and achieve improved imaging contrasts fostering a large number of science cases including the direct imaging of Exoplanets.

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