Title :
Array factor approximation using physical optics and simple line integration
Author :
Colvin, Douglas H.
Author_Institution :
Raytheon Co., Tewksbury, MA, USA
Abstract :
The computation of the array factor of a large two-dimensional (2D) array aperture can result in a large number of computations; this is prohibitive when implemented in a real or semi-real time environment for modeling or simulation purposes. The Fast Fourier transform (FFT) is commonly used where zero-padding is required to minimize aliased spectral leakage. This paper presents a method of fast computation of the array pattern of a large uniformly distributed excitation of the antenna elements within an arbitrarily shaped aperture. The large 2D array factor may be approximated using physical optics and the Navier-Stokes (NS) closed-line integral (NSLI) provided that the array elements are spaced by less than λ/2. Beam steering is still accommodated utilizing this method. With this method, a uniformly excited array with any aperture shape may be evaluated. Both radiation and monostatic scattering may be addressed using the NSLI method.
Keywords :
Navier-Stokes equations; antenna phased arrays; antenna radiation patterns; beam steering; fast Fourier transforms; physical optics; FFT; NSLI; Navier-Stokes closed-line integral equation; aliased spectral leakage; array factor approximation; beam steering; fast Fourier transform; physical optics; simple line integration; Apertures; Approximation methods; Arrays; Beam steering; Current density; Electric fields; Electric potential;
Conference_Titel :
Phased Array Systems and Technology (ARRAY), 2010 IEEE International Symposium on
Conference_Location :
Waltham, MA
Print_ISBN :
978-1-4244-5127-2
Electronic_ISBN :
978-1-4244-5128-9
DOI :
10.1109/ARRAY.2010.5613265