光学
物理
折射率
几何光学
波传播
物理光学
激光束
反射(计算机编程)
光散射
分束器
大气光学
光束
散射
衰减系数
空间频率
计算机模拟
信号处理
全内反射
衍射
波前
耦合模理论
反射率
相位调制
光通信
傅里叶变换
光强度
作者
Lujia Zhao,Hao Tan,Yan Mo,Donglin Ma
出处
期刊:Applied optics-OT
[Optica Publishing Group]
日期:2026-09-03
卷期号:65 (28): 9656-9656
摘要
Large-angle scattered light propagation in non-rotationally symmetric optical systems is difficult to simulate because a wide angular spectrum can impose conflicting requirements on spatial sampling and computational-window size. We propose a sectorized angular domain synthesis method (SASM) to address this problem. The target scattering angular domain is determined by downstream aperture acceptance and divided into overlapping local sectors using partition-of-unity weighting to preserve the prescribed angular power distribution. In each sector, the large deflection carrier is removed, the residual field is propagated as a slowly varying envelope in a moving window, and the carrier is restored after registration on a common image plane grid. Sector fields are coherently synthesized within each random-phase realization, followed by Monte Carlo ensemble averaging. The method is evaluated in a tilted two-mirror system under the first-order scattering approximation. Partition-of-unity consistency tests show that the BSDF-weighted sector allocation is independent of the sector number and the overlap ratio within numerical precision. Comparison with an independent direct full-field calculation gives a relative two-dimensional intensity error of 0.849% and an intensity correlation coefficient of 0.999964. Additional sampling tests demonstrate that sectorization suppresses propagation-induced spatial truncation and enables accurate calculation when a single local angular representation exceeds the Nyquist limit. Monte Carlo convergence further confirms a stable ensemble-averaged power estimate. These results demonstrate the numerical reliability of SASM for large-angle scattered light propagation in non-rotationally symmetric optical systems.
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