Reconstruction of a three-dimensional ionosphere from backscatter and vertical ionograms measured by over-the-horizon radar

被引:20
|
作者
Fridman, SV [1 ]
机构
[1] Mission Res Corp, Monterey, CA 93940 USA
关键词
D O I
10.1029/98RS00477
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
A method for inversion of backscatter ionograms is described. Source data for the method consist of leading edge of backscatter ionograms from all azimuthal sectors of the backscatter sounder and the quasi vertical incidence (QVI) ionogram. Such data are routinely collected at over-the-horizon radar (OTHR) installations operated by the U.S. Navy. The output is a three-dimensional model of the ionosphere for the coverage area of the sounder. The model produced is consistent with all the input data. The method is based on the Newton-Kontorovich method for nonlinear operator equations and Tikhonov's regularization technique. Theory of the method and principles of its numerical realization are described. The method is applied to data acquired by the backscatter sounder operating at the Chesapeake, Virginia, OTHR facility. Maps of plasma frequency at a constant altitude over a geographic region that covers a 64 degrees-80 degrees azimuthal sector out to distances of more than 2000 km are presented. The backscatter ionogram inversion technique suggested makes it possible for OTHR backscatter sounders to provide realtime monitoring of the ionosphere over a large geographical area.
引用
收藏
页码:1159 / 1171
页数:13
相关论文
共 50 条
  • [21] Association of Over-The-Horizon radar tracks with tracks from microwave radar and other sources
    White, KAB
    Dall, IW
    Shellshear, AJ
    [J]. SIGNAL PROCESSING, SENSOR FUSION, AND TARGET RECOGNITION V, 1996, 2755 : 335 - 346
  • [22] A Regular Two-Dimensional Over-Sampled Sparse Receiving Array for Over-the-Horizon Radar
    Frazer, G. J.
    Williams, C. G.
    Abramovich, Y. I.
    San-Antonio, G.
    [J]. 2015 IEEE INTERNATIONAL RADAR CONFERENCE (RADARCON), 2015, : 840 - 845
  • [23] Comprehensive Performance Evaluation of Ionosphere Phase Contamination Time-frequency Correction Approaches in Over-the-horizon Radar
    Yu Wenqi
    Chen Jianwen
    Li Xue
    [J]. JOURNAL OF ELECTRONICS & INFORMATION TECHNOLOGY, 2018, 40 (04) : 992 - 1001
  • [24] Evolution of Over-the-Horizon Radar in Australia From Humble Origins to Operational Capabilities
    Fabrizio, Giuseppe
    Holdsworth, David
    Ward, Bruce
    Sinnott, Don
    [J]. IEEE AEROSPACE AND ELECTRONIC SYSTEMS MAGAZINE, 2023, 38 (01) : 38 - 52
  • [25] Effect of Frequency Monitoring System for Over-The-Horizon Radar due to the presence of patches and arcs within the polar cap ionosphere
    Thayaparan, Thayananthan
    Warrington, Michael
    Stocker, Alan
    Siddle, David
    [J]. 2020 21ST INTERNATIONAL RADAR SYMPOSIUM (IRS 2020), 2020, : 368 - 372
  • [26] Sweep-surface reconstruction from three-dimensional measured data
    Ueng, Wen-Der
    Lin, Chih-Young
    Lai, Jiing-Yih
    [J]. Journal of the Chinese Society of Mechanical Engineers, Transactions of the Chinese Institute of Engineers, Series C/Chung-Kuo Chi Hsueh Kung Ch'eng Hsuebo Pao, 1997, 18 (04): : 321 - 329
  • [27] Sweep-surface reconstruction from three-dimensional measured data
    Ueng, WD
    Lai, JY
    Doong, JL
    [J]. COMPUTER-AIDED DESIGN, 1998, 30 (10) : 791 - 805
  • [28] Over-the-horizon radar array calibration using echoes from ionised meteor trails
    Solomon, ISD
    Gray, DA
    Abramovich, YI
    Anderson, SJ
    [J]. IEE PROCEEDINGS-RADAR SONAR AND NAVIGATION, 1998, 145 (03) : 173 - 180
  • [29] Practical two-dimensional antenna arrays for high-latitude over-the-horizon radar systems
    Riddolls, Ryan
    [J]. 2018 IEEE RADAR CONFERENCE (RADARCONF18), 2018, : 1495 - 1498
  • [30] Matched-field estimation of aircraft altitude from multiple over-the-horizon radar revisits
    Papazoglou, M
    Krolik, JL
    [J]. IEEE TRANSACTIONS ON SIGNAL PROCESSING, 1999, 47 (04) : 966 - 976