Please wait a minute...
Chin. Phys. B, 2011, Vol. 20(5): 050201    DOI: 10.1088/1674-1056/20/5/050201
GENERAL   Next  

Application of a multiregion model to the EM scattering from a rough surface with or without a target above it

Wang An-Qi(王安琪), Guo Li-Xin(郭立新), and Chai Cao(柴草)
School of Science, Xidian University, Xi'an 710071, China
Abstract  An efficient multiregion model is introduced to calculate the electromagnetic scattering from a perfectly electrical conducting (PEC) rough surface with or without a PEC target above it. In the multiregion model, the rough surface is split into multiple regions depending on their position along the rough surface. Two intermediate regions are chosen as the dominant region. If a target is located above the rough surface, the target will also be included in the dominant region. The method of moments (MOM) is only adopted on the dominant region to ensure validity. Hence, the new model can greatly reduce the number of unknowns associated with full MOM analysis. The induced electric currents on the other regions are obtained by approximately considering the mutual coupling between different regions along the rough surface. Compared with the published hybrid method, this new model is not only suitable for EM scattering from a target above a rough surface but also applicable for just rough surfaces. Several numerical simulations are presented to show the validity and efficiency of the multiregion model.
Keywords:  multiregion model      electromagnetic scattering      rough surface      method of moments  
Received:  17 June 2010      Revised:  17 January 2011      Accepted manuscript online: 
PACS:  02.60.Jh (Numerical differentiation and integration)  
  41.20.Jb (Electromagnetic wave propagation; radiowave propagation)  
  43.30.Hw (Rough interface scattering)  
Fund: Project supported by the National Natural Science Foundation of China (Grant No. 60971067), the Specialized Research Fund for the Doctoral Program of Higher Education, China (Grant No. 20100203110016), and the Fundamental Research Funds for the Central Universities, China (Grant No. K50510070001).

Cite this article: 

Wang An-Qi(王安琪), Guo Li-Xin(郭立新), and Chai Cao(柴草) Application of a multiregion model to the EM scattering from a rough surface with or without a target above it 2011 Chin. Phys. B 20 050201

[1] Ma J, Guo L X and Wang A Q 2009 Chin. Phys. B 18 3431
[2] Wang R, Guo L X and Ma J 2009 Chin. Phys. B 18 3422
[3] Yang C, Guo L X and Wu Z S 2010 Chin. Phys. B 19 054101
[4] Thorsos E I 1988 Journal of Acoustical Society of American 83 78
[5] Zhang Y, Yang Y E, Braunisch H and Kong J A 1999 Progress in Electromagnetics Research 22 315
[6] Li J, Guo L X and Zeng H 2008 Waves in Random and Complex Media 18 641
[7] Guo L X, Wang A Q and Ma J 2009 Progress in Electromagnetics Research 89 149
[8] Wang X, Wang C F, Gan Y B and Li L W 2003 Progress in Electromagnetics Research 40 207
[9] Tsang L, Chan C H, Pak K and Sangani H 1995 IEEE Trans. Antennas Propag. 43 851
[10] Li Z X and Jin Y Q 2001 Microwave Opt. Technol. Lett. 31 146
[11] Xia M Y, Chan C H, Li S Q, Zhang B and Tsang L 2003 IEEE Trans. Antennas Propag. 51 1142
[12] Wang A Q, Guo L X and Chai C 2010 J. Electromagnetic Waves and Applications 24 1315
[13] Wang R, Guo L X, Ma J and Wu Z S 2009 Chin. Phys. B 18 1503
[14] Li J, Guo L X, Zeng H and Han X B 2009 Chin. Phys. B 18 2757
[15] Cui T J, Lu W B, Qiao Z G, Hong W and Yin X X 2004 IEEE Trans. Antennas Propag. 52 1707
[16] Tsang L, Kong J A and Ding K H 2001 Scattering of Electromagnetic Wave (New York: John Wiley & Sons. Inc)
[17] Ye H X and Jin Y Q 2007 IEEE Trans. Geosci. Remote Sens. 45 1174
[18] Harrington R F 1993 Filed Computation by Moment Method (New York: IEEE Press)
[19] Tran P, Celli V and Maradudin A A 1994 J. Opt. Soc. Am. A 11 1686
[20] Lu C C and Chew W C 1993 IEE Proceedings-H 140 455 endfootnotesize
[1] A hybrid method of solving near-zone composite eletromagnetic scattering from targets and underlying rough surface
Xi-Min Li(李西敏), Jing-Jing Li(李晶晶), Qian Gao(高乾), Peng-Cheng Gao(高鹏程). Chin. Phys. B, 2020, 29(2): 024202.
[2] Reducing the calculation workload of the Green function for electromagnetic scattering in a Schwarzschild gravitational field
Shou-Qing Jia(贾守卿). Chin. Phys. B, 2019, 28(7): 070401.
[3] Reliable approach for bistatic scattering of three-dimensional targets from underlying rough surface based on parabolic equation
Dong-Min Zhang(张东民), Cheng Liao(廖成), Liang Zhou(周亮), Xiao-Chuan Deng(邓小川), Ju Feng(冯菊). Chin. Phys. B, 2018, 27(7): 074102.
[4] Polarization ratio characteristics of electromagnetic scattering from sea ice in polar areas
Li Zhao(赵立), Tao Xie(谢涛), Lei Meng(孟雷), William Perrie, Jin-Song Yang(杨劲松), He Fang(方贺), Han Chen(陈韩), Run-Bing Ai(艾润冰). Chin. Phys. B, 2018, 27(12): 124102.
[5] Electromagnetic backscattering from one-dimensional drifting fractal sea surface II:Electromagnetic backscattering model
Tao Xie(谢涛), William Perrie, Shang-Zhuo Zhao(赵尚卓), He Fang(方贺), Wen-Jin Yu(于文金), Yi-Jun He(何宜军). Chin. Phys. B, 2016, 25(7): 074102.
[6] Bidirectional reflectance distribution function modeling of one-dimensional rough surface in the microwave band
Guo Li-Xin (郭立新), Gou Xue-Yin (苟雪银), Zhang Lian-Bo (张连波). Chin. Phys. B, 2014, 23(11): 114102.
[7] An iterative analytic-numerical method for scattering from a target buried beneath a rough surface
Xu Run-Wen (徐润汶), Guo Li-Xin (郭立新), Wang Rui (王蕊). Chin. Phys. B, 2014, 23(11): 114101.
[8] Influence of roughness on the detection of mechanical characteristics of low-k film by the surface acoustic waves
Xiao Xia (肖夏), Tao Ye (陶冶), Sun Yuan (孙远). Chin. Phys. B, 2014, 23(10): 106803.
[9] Research on synthetic aperture radar imaging technology of one-dimensional layered rough surfaces
Ji Wei-Jie (姬伟杰), Tong Chuang-Ming (童创明). Chin. Phys. B, 2013, 22(2): 020301.
[10] Electromagnetic scattering from two-layered rough interfaces with a PEC object: vertical polarization
Wang An-Qi(王安琪), Guo Li-Xin(郭立新), and Chai Cao(柴草). Chin. Phys. B, 2011, 20(5): 050202.
[11] An angular cutoff composite model for investigation on electromagnetic scattering from two-dimensional rough sea surfaces
Nie Ding(聂丁) and Zhang Min(张民). Chin. Phys. B, 2010, 19(7): 074101.
[12] Investigation on the Doppler shifts induced by 1-D ocean surface wave displacements by the first order small slope approximation theory: comparison of hydrodynamic models
Wang Yun-Hua(王运华), Zhang Yan-Min(张彦敏), and Guo Li-Xin(郭立新). Chin. Phys. B, 2010, 19(7): 074103.
[13] Investigation on global positioning system signal scattering and propagation over the rough sea surface
Yang Chao(杨超), Guo Li-Xin(郭立新), and Wu Zhen-Sen(吴振森). Chin. Phys. B, 2010, 19(5): 054101.
[14] Study of scattering from time-varying Gerstners sea surface using second-order small slope approximation
Zhang Yan-Min(张彦敏), Wang Yun-Hua(王运华), and Guo Li-Xin(郭立新). Chin. Phys. B, 2010, 19(5): 054103.
[15] Application of the method of equivalent edge currents to composite scattering from the cone-cylinder above a dielectric rough sea surface
Guo Li-Xin(郭立新), Wang Rui(王蕊), and Wu Zhen-Sen(吴振森). Chin. Phys. B, 2010, 19(4): 044102.
No Suggested Reading articles found!