Validation of a Long-Wavelength, Near-Field Scattering Simulator Based on Boundary Relaxation

被引:0
|
作者
Snider, W. Clint [1 ,2 ]
Moore, Robert C. [1 ]
机构
[1] Univ Florida, Dept Elect & Comp Engn, Gainesville, FL 32611 USA
[2] Auburn Univ, Dept Elect & Comp Engn, Auburn, AL 36830 USA
关键词
Electric potential; Scattering; Conductors; Boundary conditions; Electrostatics; Magnetostatics; Numerical models; Magnetic flux; Finite difference methods; Surface treatment; Boundary relaxation; computation; finite-difference; long-wavelength; low-frequency; scattering; PERFECTLY MATCHED LAYER; FINITE-ELEMENT-METHOD; PROPAGATION;
D O I
10.1109/TAP.2024.3484532
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This article presents a numerical model that calculates radio wave scattering from electrically small perfect electric conductors in the near-field of the scattering bodies. The tool is referred to as the long-wavelength, near-field scattering (LWNFS) model, and it is based on electrostatic and magnetostatic field solutions calculated using a boundary-relaxation technique at the edge of the numerical grid space. Electrostatic and magnetostatic solutions are used to approximate the solutions in the slow-time-varying limit. Field tests are performed and analyzed to assess the accuracy of the LWNFS model using measurements of very-low-frequency (VLF) transmitter signals scattered by electrically small metallic boxes with different shapes. Because the amplitudes of the VLF transmitter signals can vary over time, a validation technique using normalized field values is employed: measurements are interpreted using the normalized Stokes parameters of the VLF transmitter signals. Excellent agreement between experimental observations and the predictions of the LWNFS model is demonstrated for a variety of cases. Cases where the LWNFS model is not accurate are highlighted and sources of error are considered.
引用
收藏
页码:9355 / 9365
页数:11
相关论文
共 50 条
  • [21] Wavelength-stabilized near-field laser
    Shchukin, V. A.
    Kalosha, V. P.
    Ledentsov, N., Jr.
    Chorchos, L.
    Ledentsov, N. N.
    NOVEL IN-PLANE SEMICONDUCTOR LASERS XIX, 2020, 11301
  • [22] NEAR-FIELD MICROSCOPES BEAT THE WAVELENGTH LIMIT
    POOL, R
    SCIENCE, 1988, 241 (4861) : 25 - 26
  • [23] SPECTRUM AND RELAXATION OF LONG-WAVELENGTH MAGNONS IN DISORDERED FERROMAGNETIC METALS
    LUTOVINOV, VS
    MOLODYKH, OE
    VEDYAYEV, AV
    SOLID STATE COMMUNICATIONS, 1985, 54 (03) : 207 - 210
  • [24] Wavelength-stabilized near-field laser
    Shchukin, V. A.
    Ledentsov, N. N.
    Egorov, A. Yu
    OPTICS EXPRESS, 2019, 27 (22): : 32019 - 32036
  • [25] Near-field scattering of longitudinal fields
    Bouhelier, A
    Beversluis, MR
    Novotny, L
    APPLIED PHYSICS LETTERS, 2003, 82 (25) : 4596 - 4598
  • [26] Near-Field Scattering Characters of the Ship
    Fang, Chonghua
    Huang, Xuemei
    Huang, Qiong
    Tan, Hui
    Xiao, Jing
    2013 PROCEEDINGS OF THE INTERNATIONAL SYMPOSIUM ON ANTENNAS AND PROPAGATION (ISAP), VOLS 1 AND 2, 2013,
  • [27] Inverse scattering for near-field microscopy
    Carney, PS
    Schotland, JC
    APPLIED PHYSICS LETTERS, 2000, 77 (18) : 2798 - 2800
  • [28] Poroelastic near-field inverse scattering
    Pourahmadian, Fatemeh
    Napal, Kevish
    JOURNAL OF COMPUTATIONAL PHYSICS, 2022, 455
  • [29] The Near-Field Scattering of Chaff Cloud
    Zuo Yanchun
    Guo Lixin
    Xiao Donghai
    2018 CROSS STRAIT QUAD-REGIONAL RADIO SCIENCE AND WIRELESS TECHNOLOGY CONFERENCE (CSQRWC), 2018,
  • [30] Near-field scattering prediction and analysis
    Chen, Bin
    Dang, Tongxin
    Li, Yiming
    Zhang, Kaibin
    ELECTROMAGNETICS, 2024, 44 (05) : 339 - 348