首页> 外文会议>Conference on Nonlinear Optics and Applications IX >Numerical simulation and comparison of nonlinear self-focusing based on iteration and ray tracing
【24h】

Numerical simulation and comparison of nonlinear self-focusing based on iteration and ray tracing

机译:基于迭代和射线跟踪的非线性自聚焦的数值模拟与比较

获取原文

摘要

Self-focusing is observed in nonlinear materials owing to the interaction between laser and matter when laser beam propagates. Some of numerical simulation strategies such as the beam propagation method (BPM) based on nonlinear Schrodinger equation and ray tracing method based on Fermat's principle have applied to simulate the self-focusing process. In this paper we present an iteration nonlinear ray tracing method in that the nonlinear material is also cut into massive slices just like the existing approaches, but instead of paraxial approximation and split-step Fourier transform, a large quantity of sampled real rays are traced step by step through the system with changing refractive index and laser intensity by iteration. In this process a smooth treatment is employed to generate a laser density distribution at each slice to decrease the error caused by the under-sampling. The characteristics of this method is that the nonlinear refractive indices of the points on current slice are calculated by iteration so as to solve the problem of unknown parameters in the material caused by the causal relationship between laser intensity and nonlinear refractive index. Compared with the beam propagation method, this algorithm is more suitable for engineering application with lower time complexity, and has the calculation capacity for numerical simulation of self-focusing process in the systems including both of linear and nonlinear optical media. If the sampled rays are traced with their complex amplitudes and light paths or phases, it will be possible to simulate the superposition effects of different beam. At the end of the paper, the advantages and disadvantages of this algorithm are discussed.
机译:由于激光束传播时,由于激光和物质之间的相互作用,在非线性材料中观察到自聚焦。基于Fermat原理的基于非线性Schrodinger方程和光线跟踪方法的光束传播方法(BPM)等数值模拟策略已经应用于模拟自对焦过程。在本文中,我们介绍了一种迭代非线性光线跟踪方法,因为非线性材料也与现有方法切成大量切片,但代替近似近似和分流傅立叶变换,追踪步骤的大量采样的真实光线逐步通过系统通过迭代改变折射率和激光强度。在该过程中,采用平滑的处理来在每个切片处产生激光密度分布,以降低由下抽样引起的误差。该方法的特征是通过迭代计算电流切片上的点的非线性折射率,以便解决由激光强度和非线性折射率之间的因果关系引起的材料中未知参数的问题。与光束传播方法相比,该算法更适合于具有较低时间复杂性的工程应用,并且具有在包括线性和非线性光学介质的系统中的自对焦过程的数值模拟的计算能力。如果采样的光线与其复杂的幅度和光路或阶段进行跟踪,则可以模拟不同光束的叠加效果。在纸张结束时,讨论了该算法的优点和缺点。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号