Modeling physical optics phenomena by complex ray tracing

被引:40
|
作者
Harvey, James E. [1 ]
Irvin, Ryan G. [1 ]
Pfisterer, Richard N. [1 ]
机构
[1] Photon Engn LLC, Tucson, AZ 85711 USA
关键词
physical optics modeling; complex ray tracing; Gaussian beam decomposition of arbitrary wave fields; GAUSSIAN BEAMS; WAVE-FIELDS; DESIGN; REPRESENTATION; APERTURE; MEDIA;
D O I
10.1117/1.OE.54.3.035105
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Physical optics modeling requires propagating optical wave fields from a specific radiometric source through complex systems of apertures and reflective or refractive optical components, or even complete instruments or devices, usually to a focal plane or sensor. The model must accurately include the interference and diffraction effects allowed by the polarization and coherence characteristics of both the initial optical wave field and the components and media through which it passes. Like a spherical wave and a plane wave, a Gaussian spherical wave (or Gaussian beam) is also a solution to the paraxial wave equation and does not change its fundamental form during propagation. The propagation of a Gaussian beam is well understood and easily characterized by a few simple parameters. Furthermore, a paraxial Gaussian beam can be propagated through optical systems using geometrical ray-trace methods. The decomposition of arbitrary propagating wave fields into a superposition of Gaussian beamlets is, thus, an alternative to the classical methods of propagating optical wave fields. This decomposition into Gaussian beamlets has been exploited to significant advantage in the modeling of a wide range of physical optics phenomena. (C) The Authors.
引用
收藏
页数:12
相关论文
共 50 条
  • [41] RAY-TRACING IN COMPLEX MEDIA
    FARRA, V
    JOURNAL OF APPLIED GEOPHYSICS, 1993, 30 (1-2) : 55 - 73
  • [42] The intersection of ray tracing and solid modeling
    Hayford, MJ
    INTERNATIONAL OPTICAL DESIGN CONFERENCE 1998, 1998, 3482 : 86 - 89
  • [43] Ray-tracing modeling for submillimeters
    Molebny, Vasyl
    Sokurenko, Vyacheslav
    Hui, Ling
    RADAR SENSOR TECHNOLOGY XXVIII, 2024, 13048
  • [44] New modeling method for ray tracing
    Yang X.
    Wei B.
    Xi'an Dianzi Keji Daxue Xuebao, 3 (73-77): : 73 - 77
  • [45] Study on Hybrid Method of Ray-Tracing and Physical Optics for Outdoor-to-Indoor Propagation Channel Prediction
    Imai, Tetsuro
    Okumura, Yukihiko
    2014 IEEE INTERNATIONAL WORKSHOP ON ELECTROMAGNETICS (IEEE IWEM): APPLICATIONS AND STUDENT INNOVATION COMPETITION, 2014, : 249 - 250
  • [46] Comparison between ray-tracing and physical optics for the computation of light absorption in capillaries - the influence of diffraction and interference
    Qin, Yuan
    Michalowski, Andreas
    Weber, Rudolf
    Yang, Sen
    Graf, Thomas
    Ni, Xiaowu
    OPTICS EXPRESS, 2012, 20 (24): : 26606 - 26617
  • [47] Comparison of indoor penetration loss between measurement result and hybrid method by ray-tracing and physical optics
    Kimoto, Hayate
    Nishimori, Kentaro
    Imai, Tetsuro
    Omaki, Nobutaka
    Tran, Ngochao
    2015 IEEE INTERNATIONAL SYMPOSIUM ON ANTENNAS AND PROPAGATION & USNC/URSI NATIONAL RADIO SCIENCE MEETING, 2015, : 1778 - 1779
  • [48] Airy theory revisited with the method combining vectorial complex ray model and physical optics
    Zhang, Ce
    Roze, Claude
    Ren, Kuan Fang
    OPTICS LETTERS, 2022, 47 (09) : 2149 - 2152
  • [49] Combined Ray-Tracing and Physical-Optics Model for Flat-Aperture PPW Lens Antennas
    Chen, Mingzheng
    Mesa, Francisco
    Quevedo-Teruel, Oscar
    2024 18TH EUROPEAN CONFERENCE ON ANTENNAS AND PROPAGATION, EUCAP, 2024,
  • [50] Block modeling and segmentally iterative ray tracing in complex 3D media
    Xu, Tao
    Xu, Guoming
    Gao, Ergen
    Li, Yingchun
    Jiang, Xianyi
    Luo, Kaiyun
    GEOPHYSICS, 2006, 71 (03) : T41 - T51