BROAD BAND DIRECTIONAL ANTENNA
20220344803 ยท 2022-10-27
Inventors
Cpc classification
H01Q19/106
ELECTRICITY
H01Q21/28
ELECTRICITY
H01Q15/0086
ELECTRICITY
H01Q15/006
ELECTRICITY
H01Q5/40
ELECTRICITY
H01Q21/24
ELECTRICITY
H01Q1/52
ELECTRICITY
H01Q5/28
ELECTRICITY
International classification
H01Q21/26
ELECTRICITY
Abstract
The invention provides for a broad band directional antenna (10) comprising a ground plane (12) having an axis (14) extending perpendicularly to the ground plane, an active radiator (13) which is axially spaced from the ground plane, a metamaterial ground plane assembly (16) and a conductive pillar (28.1) between the first conductive wall and the ground plane. The metamaterial ground plane assembly comprises a metamaterial ground plane (17), a first conductive wall (20) adjacent a periphery of the metamaterial ground plane, the first conductive wall having a bottom (22) and atop (24) and a second wall (26) comprising two mutually insulated conductive wall parts (26.1, 26.2) located spaced from and outside of the first conductive wall. The bottom of the first conductive wall is located between the ground plane and the metamaterial ground plane and the top of the first conductive wall is located beyond the active radiator.
Claims
1. A broad band directional antenna comprising: a conductive ground plane having a main axis extending perpendicularly to the conductive ground plane; at least one active radiator which is axially spaced from the conductive ground plane in one direction, a metamaterial ground plane assembly comprising: a metamaterial ground plane having a periphery; a first conductive wall immediately adjacent the periphery of the metamaterial ground plane, the first conductive wall having a bottom and a top; and a second wall comprising at least two mutually electrically insulated conductive wall parts located spaced from and outside of the first conductive wall, the metamaterial ground plane assembly being arranged such that the bottom of the first conductive wall is located between the conductive ground plane and the metamaterial ground plane and the top of the first conductive wall is located beyond the at least one active radiator in the one direction; and at least one conductive pillar between the first conductive wall and the conductive ground plane.
2. The antenna as claimed in claim 1 wherein at least one of the conductive ground plane and the metamaterial ground plane is rectangular in shape.
3. The antenna as claimed in claim 2 wherein both the conductive ground plane and the metamaterial ground plane are square in shape, respectively having first, second, third and fourth sides and wherein the first side of the conductive ground plane is parallel to the first side of the metamaterial ground plane.
4. The antenna as claimed in claim 1 wherein the first conductive wall abuts the periphery of the metamaterial ground plane.
5. The antenna as claimed in claim 2 wherein the at least one conductive pillar extends between a bottom of the first conductive wall and a middle of at least one of the sides of the conductive ground plane.
6. The antenna as claimed in claim 2 wherein the first conductive wall is a continuous wall circumscribing the metamaterial ground plane, the continuous wall comprising four first wall parts, each wall part having a respective bottom.
7. The antenna as claimed in claim 6 comprising at least two pillars extending from a middle of the bottom of at least two of the four first wall parts respectively to the middle of at least two sides of the conductive ground plane, respectively.
8. The antenna as claimed in claim 6 comprising four pillars extending respectively from a middle of the bottom of each of the four first wall parts respectively to the middle of a respective side of the conductive ground plane.
9. The antenna as claimed in claim 6 wherein the second wall comprises four electrically insulated conductive wall parts which are respectively located parallel to a corresponding one of the four first wall parts.
10. The antenna as claimed in claim 1 wherein the at least one active radiator comprises at least one dipole radiator.
11. The antenna as claimed in claim 10 wherein the at least one active radiator comprises first and second cross polarized dipole radiators, which are driven at respective centre points.
12. The 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 one direction.
13. The antenna as claimed in claim 12 wherein the at least one passive radiator is of a shape and configuration similar to that of the at least one active radiator, but smaller in size.
14. The antenna as claimed in claim 1 comprising an active patch type radiator having a surface area and which active patch type radiator is axially spaced from the conductive ground plane in a direction opposite the one direction.
15. The antenna as claimed in claim 14 wherein the surface area of the active patch type radiator is larger than a surface area of the metamaterial ground plane assembly.
16. The antenna as claimed in claim 14 wherein a passive patch type radiator is provided between the active patch type radiator and the conductive ground plane.
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
[0040] An example embodiment of a broad band directional antenna is generally designated by the reference numeral 10 in
[0041] Referring to
[0042] In the example embodiment, the metamaterial ground plane 17 comprises an electrically insulating substrate 31 and a plurality of mutually spaced rectangular or square conductive pads 33 printed on the substrate in a matrix pattern. Each pad defines a matrix of four holes exposing the underlying substrate. It has been found that a thickness t of the substrate should preferably be as small as possible, without compromising a mechanical strength of the substrate that may be required. A conventional printed circuit board with copper pads may be used.
[0043] As will become clearer below, the conductive ground plane 12 and the metamaterial ground plane assembly 16 may have any suitable shape and/or dimensions. However, shape, dimensions and relative spacing of the conductive ground plane 12, the at least one active radiator 13 and the metamaterial ground plane assembly 16 and its constituent parts are selected to improve antenna bandwidth, pattern consistency or stability and gain.
[0044] In the example embodiment shown, the conductive ground plane 12 is square having four equi-dimensioned sides 12.1, 12.2, 12.3 and 12.4.
[0045] As best shown in
[0046] As best shown in
[0047] Referring to
[0048] Referring to
[0049] Referring to
[0050] Still referring to
[0051] The example embodiment of the antenna 10 further comprises a known support structure 44 with diplexer 46, which structure is spaced from the patch type radiator 38 in the other or opposite direction B.
[0052] The example embodiment of the antenna 10 is designed to operate in the frequency band 1.7 GHz to 3.7 GHz.
[0053] In
[0054] It is believed that the pillars 28.1 to 28.4 serve to suppress pseudo surface waves that propagate on the conductive ground plane 12 and which cause unwanted radiation and thereby negatively affects the radiation pattern.
[0055] In
[0056] It has also been found that the parasitic dipole 36 increases the gain by 4-5 dB in the frequency band 3.4 GHz-3.8 GHz.