2013IEEE Transactions on Antennas and PropagationRequires access

Rough Surface RCS Measurements and Simulations Using the Physical Optics Approximation

Charlotte Corbel, Christophe Bourlier, Nicolás Pinel, Janic Chauveau

Open publisher page 27 citations

Abstract

The objective of this paper is to develop innovative approaches to obtain analytical expressions of the radar cross section (RCS) of perfectly conducting random rough surfaces under the physical optics (PO) approximation. The led approaches take into account the specific geometrical properties of the considered surfaces to calculate their RCS. The objective is to reduce the computing time with respect to the numerical PO technique, which requires two numerical integrations. All developed approaches are validated by comparison with a commercial code (the multilevel fast multi-pole method (MLFMM) of FEKO), used as a reference, and with measurements performed on three selected rough surfaces samples.

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What this paper is about

The objective of this paper is to develop innovative approaches to obtain analytical expressions of the radar cross section (RCS) of perfectly conducting random rough surfaces under the physical optics (PO) approximation. The led approaches take into account the specific geometrical properties of the considered surfaces to calculate their RCS. The objective is to reduce the computing time with respect to the numerical PO technique, which requires two numerical integrations. All developed approaches are validated by comparison with a commercial code (the multilevel fast multi-pole method (MLFMM) of FEKO), used as a reference, and with measurements performed on three selected rough surfaces samples.

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OpenAlex reports 27 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

The objective of this paper is to develop innovative approaches to obtain analytical expressions of the radar cross section (RCS) of perfectly conducting random rough surfaces under the physical optics (PO) approximation. The led approaches take into account the specific geometrical properties of the considered surfaces to calculate their RCS. The objective is to reduce the computing time with respect to the numerical PO technique, which requires two numerical integrations. All developed approaches are validated by comparison with a commercial code (the multilevel fast multi-pole method (MLFMM) of FEKO), used as a reference, and with measurements performed on three selected rough surfaces samples.

Key concepts: FEKO, Physical optics, Radar cross-section, Geometrical optics, Surface (topology), Rough surface, Optics, Computer science

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