IP Library › Granted Patent US 11,374,330
Granted Patent B2
US 11,374,330 · App. 16/335,015 · Granted Jun 28, 2022

Multi-beam antenna (variants)

Inventors: Evgenij Petrovich Basnev (Korolev, RU); Anatolij Vasilevich Vovk (Korolev, RU)
H01Q19/06H01Q3/24H01Q19/17
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Quick Facts
Patent No.
US 11,374,330
App. No.
16/335,015
Granted
Jun 28, 2022
Kind
B2
Abstract

A multi-beam telecommunications antenna system with a focusing device including a two-dimensional radiator array generating a plurality of beams simultaneously by setting amplitude-time parameters of the signals for each radiator. The antenna includes: a focusing system having an amplifying lens; a radiating device, for irradiating the amplifying lens and having a two-dimensional radiator array, is disposed at a distance from the amplifying lens and covers a projection area of beams at this distance; and a beam forming system. At least one sub-array of the radiators provides a beam in a set direction. For each beam, the beam forming system provides, for each radiator in the corresponding sub-array, amplitude-time parameters of the signal being transmitted to form a non-planar wavefront, which is equidistant across the amplifying lens to a planar wavefront of the beam. The radiating surface of the radiator array is outside a region of self-intersection of the non-planar wavefronts.

Claims (17)

1. A multi-beam antenna comprising:

a focusing system;

an irradiating device designed to irradiate the focusing system, comprising a two-dimensional array of feeders, placed at a distance from the focusing system and overlapping a zone of beam projections at this distance; and

a beamforming system, which serves at least one subarray of feeders of the two-dimensional array of feeders, providing one beam in a given direction,

wherein the focusing system is designed as an amplifying lens, and for each such beam, the beamforming system provides amplitude-time parameters of a transmitted signal for each feeder in the corresponding subarray, to form a non-planar wave front, which is equidistant across the amplification lens to a planar wave front of the beam, while the radiating surface of the irradiation device is outside a self-intersection zone of non-planar wave fronts.

2. A multi-beam antenna comprising:

a focusing system;

an irradiating device designed to irradiate the focusing system, comprising a two-dimensional array of feeders, placed at a distance from the focusing system and overlapping an area of beam projections at this distance; and

a beamforming system, which serves at least one sub-array of feeders of the two-dimensional array of feeders, providing one beam in a given direction,

wherein the focusing system is designed as an amplifying lens with partial feeders, containing photodetectors on a side of the irradiation device, and the irradiating device contains feeders in the form of light sources are amplitude-modulated by a radio signal, and

for each such beam, the beamforming system provides amplitude-time parameters for each feeder in the corresponding sub-array, to form a non-planar wave front of an amplitude-modulated signal, which is equidistant across the amplifying lens to a plane wave front of such a beam, and wherein a radiating surface of the irradiation device is outside a self-intersection zone of non-planar wave fronts.

3. The multi-beam antenna according to claim 1 , wherein a refractive surface of the amplifying lens is designed as a surface of revolution with a continuous second derivative and an axis of revolution that does not coincide in at least one of an angle or a position with axes of at least one of the amplifying lens or the irradiating device.

4. The multi-beam antenna according to claim 1 , wherein a refractive surface of the amplifying lens is designed as a pulling surface of forming curves with a continuous second derivative.

5. The multi-beam antenna according to claim 2 , wherein a refractive surface of the amplifying lens is designed as a surface of revolution with a continuous second derivative and an axis of revolution that does not coincide in at least one of an angle or a position with axes of at least one of the amplifying lens or the irradiating device.

6. The multi-beam antenna according to claim 2 , wherein a refractive surface of the amplifying lens is designed as a pulling surface of forming curves with a continuous second derivative.

7. The multi-beam antenna according to claim 4 , wherein the refractive surface of the amplifying lens is designed as a pulling surface of a variable forming curve along a guiding curve.

8. The multi-beam antenna according to claim 6 , wherein the refractive surface of the amplifying lens is designed as a pulling surface of a variable forming curve along a guiding curve.

Priority Claims (1)
RU RU2016138755 · Oct 1, 2016 · national
Continuity (1)
Related Publication 20190252793A1 · Aug 15, 2019
Cited By (1)
US 12,431,633