Verifying Ray Tracing Amplitude Methods for Global Magnetospheric Modeling

被引:0
作者
Holmes, Justin C. [1 ]
Delzanno, G. L. [1 ]
Colestock, P. L. [2 ]
Yakymenko, K. [1 ]
机构
[1] Los Alamos Natl Lab, Los Alamos, NM 87545 USA
[2] Space Sci Inst, Boulder, CO USA
关键词
ray-tracing; whistler; magnetosphere; wave-particle interactions; radiation belt remediation; RESONANT SCATTERING; ELECTRONS; PRECIPITATION;
D O I
10.1029/2023JA031348
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Ray tracing is a commonly used method for modeling the propagation of electromagnetic waves in Earth's magnetosphere. To apply ray tracing results to global models of wave-particle interaction such as energetic electron scattering, it is useful to map the discrete rays to a volume filling mesh. However, some methods have inherent losses of energy from the wave source, or do not account for the full range of wave properties within a sample volume. We have developed and tested a 3D magnetospheric ray tracing code "MESHRAY" which resolves these issues. MESHRAY uses the conservation of Poynting flux through ray triplets with finite volume to determine the local field amplitudes. Electromagnetic wave energy density from all ray data points is mapped to a mesh and verified against the wave source power for energy conservation varying time step length, number of rays, and total time steps. We find that the method is self-consistent and numerically robust. We further investigate whether the neglect of phase information and superposition has a significant impact on the accuracy of mapping wave intensity to a mesh. We find excellent agreement between the analytic solution for waves emitted by a line source in a plane-stratified medium and an equivalent ray tracing solution. When phase information is excluded, ray tracing reproduces an average amplitude spread over regions of coherent constructive and destructive interference. This may be an important consideration for interpolating ray tracing results of longer wavelength waves such as magnetosonic, electromagnetic ion cyclotron, or ULF waves.
引用
收藏
页数:19
相关论文
共 50 条
  • [41] 60 GHz Channel Measurements and Ray Tracing Modeling in an Indoor Environment
    Zhou, Andong
    Huang, Jie
    Sun, Jian
    Zhu, Qiuming
    Wang, Cheng-Xiang
    Yang, Yang
    2017 9TH INTERNATIONAL CONFERENCE ON WIRELESS COMMUNICATIONS AND SIGNAL PROCESSING (WCSP), 2017,
  • [42] Ray tracing with PO/PTD for RCS modeling of large complex objects
    Weinmann, Frank
    IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2006, 54 (06) : 1797 - 1806
  • [43] Verifying path loss and delay spread predictions of a 3D ray tracing propagation model in urban environment
    Rautiainen, T
    Wölfle, G
    Hoppe, R
    IEEE 56TH VEHICULAR TECHNOLOGY CONFERENCE, VTC FALL 2002, VOLS 1-4, PROCEEDINGS, 2002, : 2470 - 2474
  • [44] Evaluation and simulations of a Thomson scattering X-ray source based on ray tracing methods
    Xia, B
    Li, Z
    Kang, KJ
    Huang, WH
    Huang, G
    He, XZ
    Du, YC
    Tang, CX
    LASER AND PARTICLE BEAMS, 2004, 22 (03) : 355 - 365
  • [45] Geometric modeling method based on the digital elevation model in ray tracing
    Guan X.
    Guo L.
    Wang Y.
    Li Q.
    Xi'an Dianzi Keji Daxue Xuebao/Journal of Xidian University, 2018, 45 (03): : 35 - 39and135
  • [46] Modeling of Ni-like Molybdenum x-ray laser by ray tracing algorithm
    Kurnali, S.
    Gueven, M. H.
    Demir, A.
    SIX INTERNATIONAL CONFERENCE OF THE BALKAN PHYSICAL UNION, 2007, 899 : 325 - +
  • [47] A hybrid technique based on combining ray tracing and FDTD methods for site-specific modeling of indoor radio wave propagation
    Wang, Y
    Safavi-Naeini, S
    Chaudhuri, SK
    IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2000, 48 (05) : 743 - 754
  • [48] Modeling and simulation of ray tracing for compound parabolic thermal solar collector
    Su, Zhongyuan
    Gu, Shengyan
    Vafai, Kambiz
    INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2017, 87 : 169 - 174
  • [49] Acoustic Modeling for Indoor Spaces Using Ray-Tracing Method
    Lixandru, Andreea Bianca
    Gorobievschi, Sebastian
    Baicoianu, Alexandra
    KNOWLEDGE SCIENCE, ENGINEERING AND MANAGEMENT, KSEM 2021, PT II, 2021, 12816 : 590 - 599
  • [50] Modeling Microwave Propagation in Natural Caves Using LiDAR and Ray Tracing
    Bedford, Michael D.
    Hrovat, Andrei
    Kennedy, Gareth
    Javornik, Tomaz
    Foster, Patrick
    IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2020, 68 (05) : 3878 - 3888