Sedmak Giorgio
Dipartimento di Astronomia, Università di Trieste, Via G B Tiepolo 11, Trieste 34131, Italy.
Appl Opt. 2004 Aug 10;43(23):4527-38. doi: 10.1364/ao.43.004527.
Fast-Fourier-transform-based simulations of single-layer atmospheric von Kármán phase screens and Kolmogorov scintillation screens up to hundreds of meters in size were implemented and tested for applications with percent range accuracy. The tests included the expected and the observed structure and pupil variance functions; for the phase, the tests also included the Fried turbulence parameter r0 measured by the seeing and by a simulated differential image motion monitor. The standard compensations used to correct the undersampling at low spatial frequencies were improved, and those needed for the high spatial frequencies were determined analytically. The limiting ratios of the screen sampling step to r0 and of the screen size to the pupil aperture were estimated by means of the simulated data. Sample results are shown that demonstrate the performances of the simulations for single-layer Kolmogorov and von Kármán phase screens up to 200 m in size and for Kolmogorov scintillation screens for pupils up to 50 m of aperture.
基于快速傅里叶变换,实现了尺寸达数百米的单层大气冯·卡门相位屏和科尔莫戈罗夫闪烁屏的模拟,并针对具有百分比范围精度的应用进行了测试。测试包括预期和观测到的结构及光瞳方差函数;对于相位,测试还包括通过视见度和模拟差分图像运动监测器测量的弗里德湍流参数r0。用于校正低空间频率下欠采样的标准补偿方法得到了改进,并通过解析确定了高空间频率所需的补偿方法。借助模拟数据估计了屏采样步长与r0的极限比以及屏尺寸与光瞳孔径的极限比。展示了样本结果,这些结果证明了尺寸达200米的单层科尔莫戈罗夫和冯·卡门相位屏以及孔径达50米的光瞳的科尔莫戈罗夫闪烁屏的模拟性能。