非线性介质中N个三维相互作用的非对称高斯波包的时空复杂几何光学(CGO): CGO是时空演化最简单有效的方法

P. Berczyński, S. Marczyński
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引用次数: 0

摘要

采用复杂几何光学(CGO)技术研究了任意数量的三维互非相干(不同载波频率)高斯波包在非线性Kerr介质中相互作用和传播的时空演化。CGO将光束、脉冲和波包的传播描述简化为复杂的常微分方程(ODE),这导致了异常快速的数值算法。我们观察到CGO方法在计算Kerr型非线性(异常)色散介质中传播的任意数量的三维高斯波包的相互作用方面具有很高的效率。将推导的CGO方程与变分法得到的方程进行了比较。CGO比傅里叶变换法和菲涅耳衍射积分法更能说明高斯光束在自由空间中的传播和高斯脉冲在线性反常色散介质中的传播。时空CGO已被证明是一种比谱分析、变分法、矩量法和广义eikonal逼近法更实用的方法。作为本文结果的补充,一个用Javascript实现的在线CGO求解器可以在作者的网站上免费获得:http://slawek.ps.pl/odelia.html。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spatiotemporal Complex Geometrical Optics (CGO) of N 3D interacting asymmetric Gaussian wave packets in nonlinear medium: CGO as the simplest and efficient method for spatiotemporal evolution
The complex geometrical optics (CGO) was applied for the spatiotemporal evolution of arbitrary number of 3D mutually incoherent (with different carrier frequencies) Gaussian wave packets (GWPs) interacting and propagating in a nonlinear medium of Kerr type. The CGO reduced description of the propagation of the beam, the pulse and the wave packet to complex ordinary differential equations (ODE) This leads to exceptionally fast numerical algorithms. We observed high efficiency of the CGO method to compute interactions of arbitrary number of 3D Gaussian wave packets propagating in a nonlinear (anomalous) dispersive medium of the Kerr type. The derived CGO equations were compared with equations obtained by the variational method. CGO described the Gaussian beam propagation in free space as well as the Gaussian pulse spreading in the linear anomalous dispersive medium more illustratively than both the Fourier transform method and the Fresnel diffraction integral method. The spatiotemporal CGO has been proven to be a method more practical than the spectral analysis, the variational method, the method of moments and the method of the generalized eikonal approximation. Complementary to the presented results, an on-line CGO solver, implemented in Javascript, is freely available at the authors' website: http://slawek.ps.pl/odelia.html.
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