BROAD BAND DIRECTIONAL ANTENNA
20230268652 · 2023-08-24
Inventors
Cpc classification
H01Q9/0407
ELECTRICITY
H01Q5/307
ELECTRICITY
H01Q19/108
ELECTRICITY
H01Q5/50
ELECTRICITY
H01Q15/006
ELECTRICITY
H01Q5/40
ELECTRICITY
International classification
H01Q5/307
ELECTRICITY
H01Q21/26
ELECTRICITY
Abstract
A broad band directional antenna 10 comprises a patch antenna 12 comprising a conductive and non-circular patch 14 and having a main axis 16 extending perpendicularly to the patch. The antenna further comprises at least one active radiator 18.1, 18.2 which is axially spaced from the patch 14 in a first direction A. A metamaterial ground plane assembly 20 is located between the patch antenna 12 and the at least one active radiator 18.1, 8.2. 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.
Claims
1. A broad band directional antenna comprising: a patch antenna comprising a conductive and non-circular patch and having a main axis extending perpendicularly to the patch; at least one active radiator which is axially spaced from the patch in a first direction; and a metamaterial ground plane assembly located between the patch antenna and the at least one active radiator.
2. The broad band directional antenna as claimed in claim 1 wherein the patch antenna comprises a conductive ground plane which is axially spaced from the patch in a second and opposite direction.
3. The broad band directional antenna as claimed in claim 1 wherein the non-circular patch comprises at least five sides.
4. The broad band directional antenna as claimed in claim 3 wherein the non-circular patch is octagonal in configuration.
5. The broad band directional antenna as claimed in claim 1 wherein the metamaterial ground plane assembly has a shape selectable from a rectangular shape and a square shape.
6. The broad band directional antenna as claimed in claim 2 wherein the conductive ground plane has a shape selectable from a rectangular shape and a square shape.
7. The broad band directional antenna as claimed in claim 1 wherein the metamaterial ground plane assembly comprises a dielectric substrate with spaced conductive elements formed thereon.
8. The broad band directional antenna as claimed in claim 7 wherein the elements are arranged in repeated patterns.
9. The broad band directional antenna as claimed in claim 8 wherein the elements are arranged on a plurality of circles.
10. The broad band directional antenna as claimed in claim 9 wherein four elements are arranged in equi-spaced relation on each circle and wherein each element is in the shape of a quadrant or circle sector having a central angle of 90°.
11. The broad band directional antenna as claimed in claim 1 wherein the at least one active radiator comprises at least one dipole radiator.
12. The broad band directional antenna as claimed in claim 11 wherein the at least one active radiator comprises first and second cross polarized dipole radiators, which are driven at respective centre points.
13. The broad band directional antenna as claimed in claim 1 comprising at least one passive radiator which is axially spaced from the at least one active radiator in the first direction.
14. The broad band directional antenna as claimed in claim 13 wherein the at least one passive radiator is of the same shape and configuration as the at least one active radiator, but smaller in size.
15. The broad band directional antenna as claimed in claim 1 wherein a surface area of the patch is larger than a surface area of the metamaterial ground plane assembly.
16. A broad band directional antenna comprising: a patch antenna comprising a conductive patch and having a main axis extending perpendicularly to the patch; at least one active radiator which is axially spaced from the patch in a first direction; and a metamaterial ground plane assembly located between the patch antenna and the at least one active radiator, wherein the metamaterial ground plane assembly comprises a substrate with spaced conductive elements formed thereon, wherein the elements are arranged in repeated patterns, wherein the patterns are circles, wherein four elements are arranged in equi-spaced relation on each circle and wherein each element is in the shape of a quadrant or circle sector having a central angle of 90°.
Description
BRIEF DESCRIPTION OF THE ACCOMPANYING DIAGRAMS
[0026] The invention will now further be described, by way of example only, with reference to the accompanying diagrams wherein:
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DESCRIPTION OF A PREFERRED EMBODIMENT OF THE INVENTION
[0039] An example embodiment of a broad band directional antenna is generally designated by the reference numeral 10 in
[0040] Referring to
[0041] 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.
[0042] 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.
[0043] In the example embodiment shown, the conductive non-circular patch 14 has at least five sides and preferably is octagonal in configuration.
[0044] Referring to
[0045] 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.
[0046] As best shown in
[0047] As best shown in
[0048] Referring to
[0049] 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.
[0050] The example embodiment of the antenna 10 operates in the frequency band of about 600 MHz to 3.8 GHz.
[0051] Referring to
[0052] In
[0053] The plots in