Patent classifications
H01Q3/14
ANTENNA LENS SWITCHED BEAM ARRAY FOR TRACKING SATELLITES
A radio frequency antenna array uses lenses and RF elements, to provide ground-based coverage for cellular communication. The antenna array can include two spherical lenses, where each spherical lens has at least two associated RF elements. Each of the RF elements associated with a given lens produces an output beam with an output area. Each lens is positioned with the other lenses in a staggered arrangement. The antenna includes a control mechanism configured to enable a user to move the RF elements along their respective tracks, and automatically phase compensate the output beams produced by the RF elements based on the relative distance between the RF elements.
PILLAR-SHAPED LUNEBERG LENS ANTENNA AND PILLAR-SHAPED LUNEBERG LENS ANTENNA ARRAY
Embodiments of this application provide a pillar-shaped luneberg lens antenna and a pillar-shaped luneberg lens antenna array, and relate to the field of communications technologies, so that the pillar-shaped luneberg lens antenna can support dual polarization and improve a capacity of a communications system. The pillar-shaped luneberg lens antenna includes two metal plates that are parallel to each other and a pillar-shaped luneberg lens disposed between the two metal plates, the pillar-shaped luneberg lens includes a main layer and a compensation layer that are of the pillar-shaped luneberg lens, and the compensation layer is configured to compensate for equivalent dielectric constants of the main layer of the pillar-shaped luneberg lens in a TEM mode and/or a TE10 mode, so that distribution of equivalent dielectric constants of the pillar-shaped luneberg lens in the TEM mode and the TE10 mode is consistent with distribution of preset dielectric constants.
Dichroic spherical antenna
The present disclosure relates to a dichroic spherical antenna. In one embodiment of the present disclosure, a dichroic spherical antenna comprises a collector disposed within a spherically-shaped reflector; wherein the reflector comprises a coating. In some embodiments, the coating comprises a plurality of ferromagnetic particles dispersed throughout an epoxy-based medium. In some embodiments, the collector's interior is held at a pressure less than the pressure exerted on the exterior of the collector. The present disclosure also relates to a method of receiving radio signals, the method comprising the steps of receiving, at a collector disposed inside a spherical reflector, electromagnetic radiation; wherein the exterior of the reflector comprises a coating.
Dichroic spherical antenna
The present disclosure relates to a dichroic spherical antenna. In one embodiment of the present disclosure, a dichroic spherical antenna comprises a collector disposed within a spherically-shaped reflector; wherein the reflector comprises a coating. In some embodiments, the coating comprises a plurality of ferromagnetic particles dispersed throughout an epoxy-based medium. In some embodiments, the collector's interior is held at a pressure less than the pressure exerted on the exterior of the collector. The present disclosure also relates to a method of receiving radio signals, the method comprising the steps of receiving, at a collector disposed inside a spherical reflector, electromagnetic radiation; wherein the exterior of the reflector comprises a coating.
MULTISEGMENT REFLECTOR ANTENNA DIRECTING BEAMS
A multisegment array-fed reflector antenna includes a feed array consisting of a number of subarrays and a multisegment reflector to reflect multiple beams of the feed array into a number of elevation angles. A support structure couples the multisegment reflector to the feed array. The multisegment reflector includes two or more ring-focus parabolic segments, and each ring-focus parabolic segment is a parabolic surface extending along a circle around the support structure.
MULTISEGMENT REFLECTOR ANTENNA DIRECTING BEAMS
A multisegment array-fed reflector antenna includes a feed array consisting of a number of subarrays and a multisegment reflector to reflect multiple beams of the feed array into a number of elevation angles. A support structure couples the multisegment reflector to the feed array. The multisegment reflector includes two or more ring-focus parabolic segments, and each ring-focus parabolic segment is a parabolic surface extending along a circle around the support structure.
Pillar-shaped luneberg lens antenna and pillar-shaped luneberg lens antenna array
Embodiments of this application provide a pillar-shaped luneberg lens antenna and a pillar-shaped luneberg lens antenna array, and relate to the field of communications technologies, so that the pillar-shaped luneberg lens antenna can support dual polarization and improve a capacity of a communications system. The pillar-shaped luneberg lens antenna includes two metal plates that are parallel to each other and a pillar-shaped luneberg lens disposed between the two metal plates, the pillar-shaped luneberg lens includes a main layer and a compensation layer that are of the pillar-shaped luneberg lens, and the compensation layer is configured to compensate for equivalent dielectric constants of the main layer of the pillar-shaped luneberg lens in a TEM mode and/or a TE10 mode, so that distribution of equivalent dielectric constants of the pillar-shaped luneberg lens in the TEM mode and the TE10 mode is consistent with distribution of preset dielectric constants.
Cellular system
A system includes one or more antennas and a processor to communicate with a predetermined target using 5G or 6G protocols.
MULTI-BEAM MIMO ANTENNA SYSTEMS AND METHODS
This application proposes multi-beam antenna systems using spherical lens with high isolation between antenna ports and compatible to 2×2, 4×4, 8×8 MIMO transceivers. Several compact multi-band multi-beam solutions (with wideband operation, 40%+, in each band) are achieved by creating dual-band radiators movable on the track around spherical lens and by placing of lower band radiators between spherical lenses. By using of secondary lens for high band radiators, coupling between low band and high band radiators is reduced. Beam tilt range and side lobe suppression are improved by special selection of phase shift and rotational angle of radiators. Resultantly, a wide beam tilt range (0-40 degree) is realized in proposed multi-beam antenna systems. Each beam can be individually tilted. Based on proposed single- and multi-lens antenna solutions, cell coverage improvements and stadium tribune coverage optimization are also achieved, together with interference reduction.
MULTI-BEAM MIMO ANTENNA SYSTEMS AND METHODS
This application proposes multi-beam antenna systems using spherical lens with high isolation between antenna ports and compatible to 2×2, 4×4, 8×8 MIMO transceivers. Several compact multi-band multi-beam solutions (with wideband operation, 40%+, in each band) are achieved by creating dual-band radiators movable on the track around spherical lens and by placing of lower band radiators between spherical lenses. By using of secondary lens for high band radiators, coupling between low band and high band radiators is reduced. Beam tilt range and side lobe suppression are improved by special selection of phase shift and rotational angle of radiators. Resultantly, a wide beam tilt range (0-40 degree) is realized in proposed multi-beam antenna systems. Each beam can be individually tilted. Based on proposed single- and multi-lens antenna solutions, cell coverage improvements and stadium tribune coverage optimization are also achieved, together with interference reduction.