WAVE SCATTERING WEDGE IN GAP WEDGE ANTENNAE STRUCTURES.
الكلمات المفتاحية:
Electromagnetic wave، scattering، structure، Gap Photonic Antennaeالملخص
Antenna remote sensing deals with the extraction of object information from electromagnetic wave parameters. To fully exploit the potential for quantitative information acquisition, a detailed description of microwave diffusion is required. The research on this subject was mainly devoted to the far-field analysis which assumes an incident plane wave, calculates its scattered field and evaluates the radar cross section (RCS). However, under some practical conditions, far-field analysis is not valid and near-field analysis is required. In this paper, we have given a complete analysis of the near field of a corner structure due to an incident electric field from a linear source or a plane wave in the case of Gap Photonic Antennae. The far-field model, in the case of a linear source exciting the structure, is also analyzed. The interest of this study will structure the modeling process of the fields by having a clear vision of the near field which will bring a maximum of information in the process of remote sensing to help an accurate and correct decision-making.المراجع
J.M Le Caillec, S.Redadaa, C.Sintes, B. Solaiman and M.Benslama : Focusing Problems of a buried point scatterer using a low frequency SAR. IEEE transactions on Aerospace and Electronic Systems, Vol 47, N°1, January 2011, pp438-453.
Zaakouf; S. Readaa, M.Benslama: Closed form of topographic elevation in the context of interferometric synthetic aperture. International Journal of Numerical Modeling, Electronic Networks, Devices and Field, Volume 30, Issue 2, March/April 2017.
Colton D. and Kress R. Integral equation methods in scattering theory; Wiley: Intersciences New York, 1983.
Kouyoumjian R. G and P. H Pathak P. H. A uniform geometrical theory of diffraction for an edge in a perfectly conducting surface. Proceedings IEEE 1974; 62 (11), 1448- 1461.
Rao S. M, .Wilton D. R and Glisson A. W. Electromagnetic scattering by surfaces of arbitrary shape. IEEE Transactions on Antenna and Propagation 1982; 30(3), 409-418.
Knott E.F, Shaeffer J.F and Tuley M.T. Radar cross section: Its prediction, measurement and reduction, Dedham, MA: Artech House, 1985.
Blume S and Krebs V, Numerical evaluation of dyadic diffraction coefficients and bistatic radar cross sections for a perfectly conducting semi-infinite elliptic cone. IEEE Transactions on Antenna and Propagation 1998; 46(3), 414-424.
Balanis C. A. Antenna theory: Analysis and design, John Wiley & Sons, 2nd edition, New York, 1997.
Ross R.A. Radar cross section of rectangular flat plate as function of aspect angle. IEEE Transactions on Antenna and Propagation 1966; 14, 329-335.
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