论文标题

两种不同光束的湍流活塞相阶段和Zernike系数的时空统计

Spatiotemporal statistics of the turbulent piston-removed phase and Zernike coefficients for two distinct beams

论文作者

Plantet, Cédric, Carlà, Giulia, Agapito, Guido, Busoni, Lorenzo

论文摘要

在适应天文学的自适应光学的背景下,人们可以依靠湍流阶段的统计数据来评估系统性能的一部分。具有一个源和带有两个来源的空间统计数据的时间统计数据是众所周知的,广泛用于经典的自适应光学系统。包括空间和时间统计在内的更通用的框架,对于分析现有系统和支持未来设计的框架可能很有用。在本文中,我们提出了两个不同光束中湍流相的时间交叉功率频谱密度的表达,即从两个不同的来源到两个不同的光圈。我们要么将阶段视为没有活塞的阶段,要么将其分解为Zernike模式。一般公式允许涵盖各种配置,从单次远程望远镜到配备自适应光学器件的干涉望远镜,可以考虑在有限距离的不同尺寸和/或源的光圈。提出的方法应与傅立叶域中的现有方法相似,但它集中在时间频率而不是空间频率上,这对于某些方面(例如控制优化)可能很方便。为了用简单的应用来说明这一框架,我们证明,当单个偶联的自适应光学系统系统从协方差计算而不考虑适应性光学循环的时间过滤时,由于单聚体误差而引起的波前残留物被高估了。在小基线干涉仪的情况下,我们还显示了这一高估,这两个梁显着相关。

In the context of adaptive optics for astronomy, one can rely on the statistics of the turbulent phase to assess a part of the system's performance. Temporal statistics with one source and spatial statistics with two sources are well-known and are widely used for classical adaptive optics systems. A more general framework, including both spatial and temporal statistics, can be useful for the analysis of the existing systems and to support the design of the future ones. In this paper, we propose an expression of the temporal cross power spectral densities of the turbulent phases in two distinct beams, that is from two different sources to two different apertures. We either consider the phase as it is, without piston, or as its decomposition on Zernike modes. The general formulas allow to cover a wide variety of configurations, from single-aperture to interferometric telescopes equipped with adaptive optics, with the possibility to consider apertures of different sizes and/or sources at a finite distance. The presented approach should lead to similar results with respect to existing methods in the Fourier domain, but it is focused on temporal frequencies rather than spatial ones, which might be convenient for some aspects such as control optimization. To illustrate this framework with a simple application, we demonstrate that the wavefront residual due to the anisoplanatism error in a single-conjugated adaptive optics system is overestimated when it is computed from covariances without taking into account the temporal filtering of the adaptive optics loop. We also show this overestimation in the case of a small-baseline interferometer, for which the two beams are significantly correlated.

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