This application claims priority to Application No 2022/02053, filed Feb. 18, 2022 in South Africa, which application is incorporated by reference. To the extent appropriate, a claim of priority is made to each of the above disclosed applications
This invention relates to a broad band directional antenna and more particularly to a broad band cross polarised directional antenna.
Broad band cross polarised antennas are of considerable interest due to the large variety of frequencies used in 4G/5G and other communications systems. Broadband type dipole radiators are often arranged above a ground plane reflector surface to achieve a main beam perpendicular to the ground plane surface. This arrangement suffers from frequency limitations, since the ideal spacing for such a radiator is around a quarter wavelength above the reflector surface and which hence causes it to be half a wavelength above the reflector surface for signals having twice such frequency, resulting in destructive interference towards the main beam direction and other pattern irregularities. Metamaterials may be used artificially to delay waves at some frequencies. Hence, positioning a metamaterial ground plane between a radiator and a conductive ground plane may assist in achieving a broader bandwidth. Such assemblies are known, but radiation pattern control (i.e. maintaining the same shape at all frequencies, in other words, maintaining pattern stability) is still problematic over a wide bandwidth. This is due to pseudo surface waves which can exist between the metamaterial ground plane and conductive ground plane and many other undesirable EM interactions, amongst other reasons.
An example of a broad band directional antenna comprising a metamaterial layer is disclosed in the applicant's international application which was published under number WO/2021/038381. The gain performance of this antenna at lower frequencies may not be suitable for some applications and the antenna may be considered cumbersome and therefore unnecessarily costly to manufacture and assemble.
Accordingly, it is an object of the present invention to provide a broad band directional antenna with which the applicant believes the aforementioned disadvantages may at least be alleviated and/or which may provide a useful alternative for the known antennas.
According to the invention there is provided a broad band directional antenna comprising.
The patch antenna may comprise a conductive ground plane which is axially spaced from the patch in a second and opposite direction.
Shape, dimension and relative spacing of the conductive ground plane, the patch, the at least one active radiator and the metamaterial ground plane assembly are selected to improve antenna bandwidth, pattern consistency or stability and gain.
The non-circular patch may comprise at least five sides.
Preferably, the non-circular patch is octagonal in configuration.
The conductive ground plane and the metamaterial ground plane assembly may have any suitable shape, including a rectangular shape, but preferable a square shape, having four sides.
The metamaterial ground plane assembly may comprise a dielectric substrate with spaced conductive elements formed thereon. The elements may be arranged in repeated patterns.
In a preferred embodiment the elements may be arranged on a plurality of circles. Four elements may be arranged in equi-spaced relation on each circle and each element may be in the shape of a quadrant or circle sector having a central angle of 90°.
The at least one active radiator may comprise at least one dipole radiator.
In a preferred embodiment, the at least one active radiator comprises first and second cross polarized dipole radiators, which are driven at respective centre points.
The antenna may also comprise at least one passive radiator which is axially spaced from the at least one active radiator in the one direction.
In the preferred embodiment, the at least one passive radiator is of the same shape and configuration as the at least one active radiator, but smaller in size.
A surface area of the patch is preferably larger than a surface area of the metamaterial ground plane assembly.
According to another aspect of the invention there is provided a broad band directional antenna comprising:
The invention will now further be described, by way of example only, with reference to the accompanying diagrams wherein:
An example embodiment of a broad band directional antenna is generally designated by the reference numeral 10 in
Referring to
The patch antenna 12 comprises a conductive ground plane 22 which is axially spaced from the patch 14 in a second and opposite direction B.
As will become clearer below, the conductive ground plane 22, the patch 14 and the metamaterial ground plane assembly 20 may have any suitable shape and/or dimensions. However, shape, dimensions and relative spacing of the conductive ground plane 22, the at least one active radiator 18.1, 18.2 and the metamaterial ground plane assembly 20 and its constituent parts are selected to improve antenna bandwidth, pattern consistency or stability and gain.
In the example embodiment shown, the conductive non-circular patch 14 has at least five sides and preferably is octagonal in configuration.
Referring to
The frame 27 is connected by depending conductive sidewall parts 29.1 to 29.4 to a conductive ground plane 31 of the assembly 20.
As best shown in
As best shown in
Referring to
The surface area of the patch 14 is preferably larger than the surface area of the metamaterial ground plane assembly 20. Known feeds for the patch 14 are shown at 40.
The example embodiment of the antenna 10 operates in the frequency band of about 600 MHz to 3.8 GHz.
Referring to
In
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Number | Date | Country | Kind |
---|---|---|---|
2022/02053 | Feb 2022 | ZA | national |