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快速计算一维分层粗糙面之间金属目标复合散射的互耦迭代算法 被引量:2

EM Scattering from a PEC Target Below the Layered Rough Surface Based on the Cross Coupling Iterative Approach
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摘要 为研究一维分层介质粗糙面之间金属目标的复合电磁散射特性,该文提出了一种结合前后向迭代算法(FBM)和双共轭梯度法(Bi-CG)的快速互耦迭代算法(CCIA)。推导了分层粗糙面与金属目标的耦合边界积分方程组,采用FBM和Bi-CG分别求解分层粗糙面与目标的边界积分方程,目标和分层粗糙面的相互作用通过更新两方程的激励项来实现。计算了双层介质高斯粗糙面及无限长金属圆柱的复合电磁散射特性,当目标尺寸趋于零时与只有分层粗糙面的散射系数相吻合,验证了该算法的正确性;分析了不同粗糙面情况下该算法的收敛性;讨论了目标尺寸与位置变化对复合散射系数的影响。结果表明,金属目标的存在明显影响了分层粗糙面的散射特性。 To study EM scattering of a Perfectly Electric Conducting(PEC) target below the layered rough surface,a fast cross coupling iterative approach based on Bi-Conjugate Gradient(Bi-CG) method and Forward Backward Method(FBM) is presented in this paper.At first,the Electric Field Integral Equations(EFIE) of the induced currents on the rough surface and the target are derived.An iterative approach is developed to solve the two EFIE and scattering from both the target and underlying surface.The EFIE of the rough surface and the target are solved by using FBM and Bi-CG respectively.The mutual effect between the rough surface and the target are finished by iterative Calculation.The EM scattering from a metallic cylinder below the layered rough surface with two Gauss rough surfaces is computed.The result shows that the scattering coefficient is agreement with that of layered rough surfaces when the target is small enough.The relationship between the scattering pattern and the target's size and station are also discussed.Results show a buried PEC cylinder can significantly alter the scattering behaviors of layered rough surfaces.
出处 《电子与信息学报》 EI CSCD 北大核心 2010年第10期2479-2484,共6页 Journal of Electronics & Information Technology
基金 毫米波国家重点实验室基金(K200818)资助课题
关键词 电磁散射 分层粗糙面与金属目标 前后向迭代算法 双共轭梯度法 EM scattering Layered rough surfaces with PEC target Forward Backward Method (FBM) Bi-Conjugate Gradient (Bi-CG) method
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  • 1郭立新,王运华,吴振森.二维导体微粗糙面与其上方金属平板的复合电磁散射研究[J].物理学报,2005,54(11):5130-5138. 被引量:30
  • 2郭立新,王运华,吴振森.等效原理和互易性定理在两个相邻球形目标电磁散射中的应用[J].物理学报,2006,55(11):5815-5823. 被引量:9
  • 3Liu P,Jin Y Q 2004 IEEE Trans. on Geoscience and Remote Sensing 42 950
  • 4Li L, He J Q, Liu Z J, Carin L 2003 IEEE Trans. on Antennas and Propagation 51 810
  • 5Chiu T, Sarabandi K 1999 IEEE Trans. on Antennas and Propagation 47 902
  • 6Ye H X, Jin Y Q 2006 IEEE Trans. on Geoscience and Remote Sensing 44 108
  • 7Ye H X, Jin Y Q 2005 Science in China 48 723
  • 8Ye H X, Jin Y Q 2007 IEEE Trans. on Geoscience and Remote Sensing 45 1174
  • 9Tsang L, Kong J A 2001 Scattering of Electromagnetic Waves vol.3 Advanced Topics ( New York : John Wiley & Sons Inc. ) p65
  • 10Peterson A F, Ray S L, Mittra R 1997 Computational Method for Electromagnetics ( New York : IEEE Press)

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  • 1张云华,肖伯勋,朱国强.一种快速计算分层媒质中三维目标电磁散射的方法[J].武汉大学学报(理学版),2007,53(1):119-122. 被引量:2
  • 2Tsang L, Kong J A, Ding K H. Scattering of electromagnetic waves. New York: John Wiley & Sons Inc, 2001.
  • 3BOURLIER C, LI H, and PINEL N. Low-grazing anglepropagation and scattering above the sea surface in the presence of a duct jointly solved by boundary integral equations[J]. IEEE Transactions on Antennas and Propagation, 2015, 63(2): 667-677. doi: 10.1109/TAP.2014. 2379945.
  • 4AFIFI S, DUSSEAUX R, and BERROUK A. Electromagnetic scattering from 3D layered structures with randomly rough interfaces: analysis with the small perturbation method and the small slope approximation[J]. IEEE Transactions on Antennas and Propagation, 2014, 62(10): 5200-5208. doi: 10.1109/TAP.2014.2341704.
  • 5WU Zhensen, ZHANG Jinpeng, and GUO Lixin. An improved two-scale model with volumes scattering for the dynamic ocean surface[J]. Progress in Electromagnctics Research, 2009, 89(1): 39-56.
  • 6MICHIEL B, FOSTIER J, BOGAERT I, et al. Full-wave simulations of electromagnetic scattering problems with billions of unknowns[J]. IEEE Transactions on Antennas and Propagation, 2015, 63(2): 796-799. doi: 10.1109/TAP.2014. 2380438.
  • 7NIE Zalping, MA Wenmin, REN Yi, et al. A wideband electromagnetic scattering analysis, using MLFMA with higher order hierarchical vector basis functions[J]. IEEE Transactions on Antennas and Propagation, 2009, 57(10): 3169-3178. doi: 10.1109/TAP.2009.2028497.
  • 8BOURLIER C, BELLEZ S, LI H, et al. Sub-domain decomposition iterative method combined with ACA: an efficient technique for the scattering from a large highly conducting rough sea surface[J]. IEEE Transactions on Antennas and Propagation, 2015, 63(2): 659-666. doi: 10.1109/TAP.2014.2373395.
  • 9TSANG L, CHAN C H, PAK K, et al. Monte-Carlo simulations of large-scale problems of random rough surface scattering and applications to grazing incidence with the BMIA/canonical grid method[J]. IEEE Transactions on Antennas and Propagation, 1995, 43(8): 851-859.
  • 10JOHNSON J T. A numerical study of low-grazing-angle backscatter from ocean-like impedance surfaces with the canonical grid method[J]. IEEE Transactions on Antennas and Propagation, 1998, 46(1): 114-120.

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