论文标题
克服瞳孔失真在多轭自适应光学中的影响
Overcoming the effect of pupil distortion in multiconjugate adaptive optics
论文作者
论文摘要
比传统的单个共轭自适应光学系统,多种轭自适应光学(MCAO)系统具有在更大的视野上传递衍射限量的图像。在MCAO中,高空变形镜(DMS)会导致瞳孔平面的失真,并导致DM执行器与波前传感器(WFSS)之间的动态误差。由于WFS和DMS的空间采样较高,因此太阳天文学的问题要比夜间观察更为严重,而且科学观察通常是通过更强的湍流和较低的高度进行的。动态错误注册限制了太阳能MCAO系统提供的校正质量。在本文中,我们介绍了Propao,这是对学生失真效果进行建模的第一个AO仿真工具(据我们所知)。它利用了适当的光学传播库的Python实现。 Propao使用菲涅尔传播来传播通过大气和MCAO系统的传入波的幅度和相位。由WFSS分析所得波前,还用于评估校正后的图像质量。我们能够重现瞳孔失真的问题,并测试将失真考虑在内的新型非线性重建策略。证明Propao是研究欧洲太阳能望远镜的波前重建和控制行为的重要工具。
Multiconjugate adaptive optics (MCAO) systems have the potential to deliver diffraction-limited images over much larger fields of view than traditional single conjugate adaptive optics systems. In MCAO, the high altitude deformable mirrors (DMs) cause a distortion of the pupil plane and lead to a dynamic misregistration between the DM actuators and the wavefront sensors (WFSs). The problem is much more acute for solar astronomy than for night-time observations due to the higher spatial sampling of the WFSs and DMs, and the fact that the science observations are often made through stronger turbulence and at lower elevations. The dynamic misregistration limits the quality of the correction provided by solar MCAO systems. In this paper, we present PropAO, the first AO simulation tool (to our knowledge) to model the effect of pupil distortion. It takes advantage of the Python implementation of the optical propagation library PROPER. PropAO uses Fresnel propagation to propagate the amplitude and phase of an incoming wave through the atmosphere and the MCAO system. The resulting wavefront is analyzed by the WFSs and also used to evaluate the corrected image quality. We are able to reproduce the problem of pupil distortion and test novel non-linear reconstruction strategies that take the distortion into account. PropAO is shown to be an essential tool to study the behavior of the wavefront reconstruction and control for the European Solar Telescope.