An inverse problem approach is adopted to investigate the role of a limited observation domain in conformal source radiation both in the far and near zone. The spectral decomposition of the relevant operator drives the investigation,especially by the discussion of the singular values behavior and the Point Spread Function (PSF). For a circular source geometry, accurate closed form evaluations of the PSF allow to establish its angular variant behavior for limited observation angular domains. This leads to introduce a numerical procedure, based on the widths of the PSF main lobes, able to define an optimal source discretization, that is the spacing of the array elements whose radiated field has the same number of degrees of freedom of the continuous conformal source. A non-uniform spacing is derived and the performances of the corresponding conformal arrays are compared with the uniform case, the number of elements being equal. Numerical results about pattern synthesis and array diagnostics of faulty elements support the improvement achieved by the approach when the same number of array elements are located in a non-uniform pattern
Radiation of a Circular Arc Source in a Limited Angle for Non-uniform Conformal Arrays
Leone, Giovanni;Munno, Fortuna;Pierri, Rocco
2021
Abstract
An inverse problem approach is adopted to investigate the role of a limited observation domain in conformal source radiation both in the far and near zone. The spectral decomposition of the relevant operator drives the investigation,especially by the discussion of the singular values behavior and the Point Spread Function (PSF). For a circular source geometry, accurate closed form evaluations of the PSF allow to establish its angular variant behavior for limited observation angular domains. This leads to introduce a numerical procedure, based on the widths of the PSF main lobes, able to define an optimal source discretization, that is the spacing of the array elements whose radiated field has the same number of degrees of freedom of the continuous conformal source. A non-uniform spacing is derived and the performances of the corresponding conformal arrays are compared with the uniform case, the number of elements being equal. Numerical results about pattern synthesis and array diagnostics of faulty elements support the improvement achieved by the approach when the same number of array elements are located in a non-uniform patternI documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.