论文标题

拉格朗日扩展法的大气传播定律

Lagrangian Scaling Law for Atmospheric Propagation

论文作者

Bragdon, Sophia Potoczak, Cargill, Daniel, Grosek, Jacob

论文摘要

提出了一个新的缩放定律模型,用于通过大气湍流传播光束,并将其与常见的标量随机波动触发技术进行了比较。该方法可以跟踪繁殖高斯形状的激光场的重要光束波前和相位参数的演变,因为它在大气湍流中移动,假设有能力保存。与其他缩放定律一样,该拉格朗日缩放定律对光束进行了多个简化的假设,以捕获感兴趣的基本特征,同时大大降低了计算的计算成本。该拉格朗日缩放定律被证明可以可靠地具有低至中湍流强度的可靠工作,每次传播的梁和> 100倍的记忆减少(取决于所选的分辨率),至少产生2倍的计算加速。

A new scaling law model for propagation of optical beams through atmospheric turbulence is presented and compared to a common scalar stochastic waveoptics technique. This methodology tracks the evolution of the important beam wavefront and phasefront parameters of a propagating Gaussian-shaped laser field as it moves through atmospheric turbulence, assuming a conservation of power. As with other scaling laws, this Lagrangian scaling law makes multiple simplifying assumptions about the optical beam in order to capture the essential features of interest, while significantly reducing the computational cost of calculation. This Lagrangian scaling law is shown to reliably work with low to medium turbulence strengths, producing at least a 2x computational speed-up per individual propagation of the beam and >100x memory reduction (depending on the chosen resolution).

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源