Citation
Abstract
This article describes an algorithmic procedure for the synthesis of planar array feeds for paraboloidal reflectors to simultaneously provide electronic correction of systematic reflector surface distortions as well as a vernier electronic beamsteering capability. Simple “vules of thumb” for the optimum choice of planar array feed configuration (i.e., number and type of elements) are derived from a parametric study made using the synthesis procedure described herein. A number of f/D ratios and distortion models were examined that are typical of large paraboloidal reflectors. Numerical results are presented showing that, for the range of distortion models considered, good on-axis gain restoration can be achieved with as few as seven elements. For beamsteering to +1 beamwidth (BW), 19 elements are required. For arrays with either 7 or 19 elements, the results indicate that the use of high-aperture-efficiency elements (e.g., disk-on-rod and short backfire) in the array yields higher system gain than can be obtained with elements having lower aperture efficiency (e.g., open-ended waveguides), With 37 elements, excellent gain and beamsteering performance to +1.5 BW are obtained independent of the assumed effective aperture of the array element. An approximate expression is derived for the focal-plane field distribution of the distorted reflector. Contour plots of the focal-plane fields are also presented for various distortion and beam scan angle cases. The results obtained show the effectiveness of the array feed approach.
Details
- Volume
- 42-86
- Published
- August 15, 1986
- Pages
- 43–55
- File Size
- 875.3 KB