This invention relates to a patch antenna, and in particular a patch antenna suitable, but not exclusively, for telecommunications.
Monopoles are widely used in wireless communication. However, conventional monopoles have a high profile of quarter wavelengths, which is too high for some devices or applications which have limited space for housing an antenna. A number of monopolar patch antennae have thus been proposed. In this connection, although monopolar patch antennae can produce a vertical polarization, the gain of monopolar patch antennae is low, especially in the horizontal plane.
It is thus an object of the present invention to provide a patch antenna in which the aforesaid shortcomings are mitigated or at least to provide a useful alternative to the trade and public.
According to the present invention, there is provided a patch antenna comprising a rectangular patch, and a ground plane substantially parallel to and spaced apart from said patch by a sheet of dielectric material, wherein said patch has a first longer side and a second longer side which are opposite to each other and a first shorter side and a second shorter side which are opposite to each other, wherein a first row of vias are provided adjacent said first longer side of said patch, a second row of vias are provided adjacent said second longer side of said patch, a third row of vias are provided adjacent said first shorter side of said patch, and a fourth row of vias are provided adjacent said second shorter side of said patch, and wherein each said via extends through said patch, said sheet of dielectric material and said ground plane to short said antenna.
A preferred embodiment of the present invention will now be described, by way of example only, with reference to the accompanying drawings, in which:
A long rectangular microstrip patch antenna according to a preferred embodiment of the present invention is shown in
As shown in
The patch 14 has a pair of longer sides 18a, 18b which are opposite to and parallel to each other, and a pair of shorter sides 18c, 18d which are opposite to and parallel to each other. A straight row of vias 20a are provided adjacent and along the longer side 18a; a straight row of vias 20b are provided adjacent and along the longer side 18b; a straight row of vias 20c are provided adjacent and along the shorter side 18c; and a straight row of vias 20d are provided adjacent and along the shorter side 18d. The row of vias 20a are parallel to the row of vias 20b; and the row of vias 20c are parallel to the row of vias 20d.
Each of the vias 20a, 20b, 20c, 20d extends through the ground plane 12, the substrate 16, and the circular patch 14, and electrically conducts the ground plane 12 with the patch 14, thus shorting the antenna 10. The vias 20a, 20b, 20c, 20d may be made of wires of an electrically conducting material, such as copper wires.
More particularly, the dimensions of the antenna 10 may be as follows:
a. the distance L between the row of vias 20c and the row of vias 20d is 62.4 mm;
b. the length W of each of the shorter sides 18c, 18d is 30.4 mm;
c. the thickness h of the substrate 16 is 1.57 mm;
d. the diameter d of each of the vias 20a, 20b, 20c, 20d is 0.6 mm;
e. the distance s between the row of vias 20a and the row of vias 20b is 16.8 mm;
f. the distance p between successive vias 20a along the row of vias 20a and that between successive vias 20b along the row of vias 20b is 3.9 mm;
g. the distance p1 between successive vias 20c along the row of vias 20c and that between successive vias 20d along the row of vias 20d is 1.5 mm; and
h. the ground plane 12 is in a square shape with the length of each side being 100 mm.
The profile of the patch antenna 10 is thus only about 0.03 wavelengths in free space. In addition, the patch antenna 10 is said to be “long” in that the distance L between the row of vias 20c and the row of vias 20d is equal to or more than one wavelength in free space. In this particular embodiment, the distance L is about 1.25 wavelengths in free space.
It should be understood that this type of patch antenna can be designed for other frequencies besides the band illustrated herein.
The patch antenna 10 is of a very low profile, high gain and wide bandwidth. It has a low cost, low weight, and a simple structure that can be easily fabricated on a PCB, and thus can be easily produced in the industry. The patch antenna 10 can be used in indoor base stations, vehicles, airplanes, helicopters, etc. The patch antenna 10 can co-operate with conventional monopoles as the patch antenna 10 also produces a conical radiation pattern in the main elevation plane and vertical polarization at backward and forward endfires.
It should be understood that the above only illustrates an example whereby the present invention may be carried out, and that various modifications and/or alterations may be made thereto without departing from the spirit of the invention. It should also be understood that various features of the invention which are, for brevity, described here in the context of a single embodiment, may also be provided separately or in any appropriate sub-combinations.