The present invention relates to an antenna such as an omnidirectional antenna and a dual polarization antenna, and specifically to a technique that is effective for achieving omnidirectivity as directivity in a horizontal plane, by using a half-wave dipole antenna.
Radio waves of vertical polarization are used for mobile communication using mobile phones or the like. Therefore, a half-wave dipole antenna for the vertical polarization is often used as an array antenna of a mobile communication base station antenna. The half-wave dipole antenna has omnidirectivity in a plane perpendicular to an axis of the dipole (in a plane of the magnetic field (H)), which has been publicly known.
Nowadays, there is a demand for, as the mobile communication base station antenna, a dual polarization antenna that can receive radio waves of both horizontal polarization and vertical polarization, and that is omnidirectional in both polarizations.
However, if the half-wave dipole antenna is used as an antenna receiving radio waves of horizontal polarization, it has radiation pattern of figure-of-eight shape in a plane including the dipole axis (in a plane of the electric field (E)). For this reason, if the half-wave dipole antenna is used as an antenna receiving the radio waves of the horizontal polarization, it is difficult to obtain omnidirectivity as radiation pattern in the horizontal plane.
To address the aforementioned problem, a patent document 1 described below discloses a half-wave dipole antenna curved into an arc to obtain omnidirectivity as radiation pattern in the horizontal plane.
Patent Document 1: Japanese Patent Application Laid-Open Publication No. Hei 11-68446
However, the antenna disclosed in the patent document 1 only obtains radiation pattern that are approximately omnidirectional and have deviation of 5 dB or less, as described in the aforementioned patent document 1.
The present invention is to address the aforementioned problem of the conventional art, and an object of the present invention is to provide an omnidirectional antenna achieving omnidirectivity as directivity in the horizontal plane with less deviation than before, by using a half-wave dipole antenna.
Another object of the present invention is to provide a dual polarization antenna using the aforementioned omnidirectional antenna.
The aforementioned and the other objects and novel features of the present invention will be clarified by description of this specification and attached drawings.
The following is a brief summary of the representative elements of the invention disclosed in this application:
(1) There is provided an antenna including: half-wave dipole antennas, the number of which is n being an integer of 3 or more, the half-wave dipole antennas being fed in the same phase. The half-wave dipole antennas, the number of which is n, are configured of arc-shaped conductive bodies each curved to form part of a circumference of a circle, and are disposed on the circumference of the circle at equal spaces.
(2) In (1), the antenna further includes monopole antennas the number of which is k being an integer of 3 or more, the monopole antennas being disposed on a circumference of a circle at equal spaces, being fed in the same phase, transmitting and receiving a polarized wave vertical to the circle, and having omnidirectivity at a direction parallel to a plane including the circle.
(3) There is provided an antenna including: a reflector; and a first omnidirectional antenna to a m-th omnidirectional antenna stacked in a first direction perpendicular to a plane of the reflector, and having omnidirectivity at a direction parallel to a surface of the reflector, wherein m is an integer of 2 or more, wherein each of the first omnidirectional antenna to the m-th omnidirectional antenna has half-wave dipole antennas the number of which is n being an integer of 3 or more, the half-wave dipole antennas being fed in the same phase, the half-wave dipole antennas, the number of which is n, are respectively configured of arc-shaped conductive bodies each curved to form part of a circumference of a circle, and are disposed on the circumference of the circle at equal spaces, when viewed from a direction opposite to the first direction, a diameter of the circle is different among the first omnidirectional antenna to the m-th omnidirectional antenna, and a polarization parallel to the surface of the reflector is transmitted and received.
(4) In (3), the antenna further includes monopole antennas the number of which is k being an integer of 3 or more, the monopole antennas being disposed on the reflector, being disposed on a circumference of a circle at equal spaces, being fed in the same phase, transmitting and receiving a polarization vertical to the surface of the reflector, and having omnidirectivity at a direction parallel to the surface of the reflector.
(5) In (3) or (4), at least any one of the first omnidirectional antenna to the m-th omnidirectional antenna has, near the half-wave dipole antennas the number of which is n, parasitic elements the number of which is n.
(6) In any one of (1) to (5), the n is 3 or 4.
(7) In (2) or (4), the k is 3 or 4.
(8) In any one of (3) to (7), the m is 2.
An effect obtained by the representative elements of the invention disclosed in this application will be briefly explained as follows.
According to the present invention, it is possible to provide an omnidirectional antenna and a dual polarization antenna achieving omnidirectivity as directivity in the horizontal plane, with less deviation of the directivity than before.
Hereinafter, examples of the present invention will be described in detail with reference to attached drawings.
Note that the same reference numerals are used for elements having the same functions in all drawings for illustrating the examples, and description thereof is not repeated. The examples described below are not intended to limit the scope of claims of the invention.
In
The dual polarization antenna of the example is disposed so that the surface of the reflector 1 is parallel to the ground. Thus, in
The dual polarization antenna of the example emits radio waves of horizontal polarization and vertical polarization having three frequencies containing a frequency f1 (800 MHz frequency band), a frequency f2 (1.5 GHz frequency band) and a frequency f3 (2.0 GHz frequency band).
As shown in
The omnidirectional vertical polarization antenna 20, which emits radio waves of vertical polarization, is disposed on the reflector 1.
Further, the first omnidirectional horizontal polarization antenna 101 and the second omnidirectional horizontal polarization antenna 102 are disposed above the omnidirectional vertical polarization antenna 20.
Furthermore, the parasitic elements 30 are disposed above the first omnidirectional horizontal polarization antenna 101 (between the first omnidirectional horizontal polarization antenna 101 and the second omnidirectional horizontal polarization antenna 102).
As shown in
The monopole antennas of the example are each configured of a rectangular conductive plate 5 having a shorter side of L8 (=0.12λf1) and a longer side of L9 (=0.15λf1).
The three monopole antennas respectively configured of the rectangular conductive plates 5 emit the radio waves of the omnidirectional vertical polarization at three frequencies f1, f2 and f3. Note that the rectangular conductive plate 5 may be formed on a dielectric substrate by a printed-circuit technique, or metal plate may be used therefor. The three monopole antennas configured of the rectangular conductive plates 5 are disposed so that centerlines passing through the centers thereof intersect with each other at a 120-degree angle.
The first omnidirectional horizontal polarization antenna 101 of the example is configured of three half-wave dipole antennas (3a, 3b, 3c) that are configured of arc-shaped conductive bodies each curved to form part of a circumference of a certain circle, and that are disposed on the circumference of the certain circle at equal spaces.
The half-wave dipole antennas (3a, 3b, 3c) emit the radio waves of the omnidirectional horizontal polarization at the frequencies (f2, f3).
A diameter of a circumscribed circle of the three half-wave dipole antennas (3a, 3b, 3c) is set at L7 (=0.57λf2). An interval between the three half-wave dipole antennas (3a, 3b, 3c) and the reflector 1 is set at L4 (=0.36λf2) (refer to
The three half-wave dipole antennas (3a, 3b, 3c) may be formed on a dielectric substrate 2 by a printed-circuit technique, or metal plates, bars, tubes or the like may be used therefor.
The second omnidirectional horizontal polarization antenna 102 of the example is configured of three half-wave dipole antennas (5a, 5b, 5c) that are configured of arc-shaped conductive bodies each curved to form part of a circumference of a certain circle, and that are disposed on the circumference of the certain circle at equal spaces.
The half-wave dipole antennas (5a, 5b, 5c) emit the radio waves of the horizontal polarization at the frequency (f1). A diameter of a circumscribed circle of the three half-wave dipole antennas (5a, 5b, 5c) is set at L5 (=0.38λf1). An interval between the three half-wave dipole antennas (5a, 5b, 5c) and the reflector 1 is set at L1 (=0.26λf1) (refer to
The three half-wave dipole antennas (5a, 5b, 5c) may be formed on a dielectric substrate 2 by a printed-circuit technique, or metal plates, bars, tubes or the like may be used therefor.
Note that the three conductive bodies (4a, 4b, 4c) may be formed on a dielectric substrate 2 by a printed-circuit technique, or metal plates, bars, tubes or the like may be used therefor.
As shown in
As shown in
As mentioned above, although the half-wave dipole antenna has the radiation pattern of figure-of-eight shape in the plane including the dipole axis (in the plane of the electric field (E)), omnidirectional pattern are obtainable in the plane including the dipole axis (in the horizontal plane; in the plane of the electric field (E)) by disposing three half-wave dipole antennas configured of arc-shaped conductive bodies on the circumference of the certain circle at equal spaces as shown in the example.
As shown in
The 1.5 GHz frequency band and the 2.0 GHz frequency band of the horizontal polarization shown in
As shown in
The horizontal polarization antenna shown in
Each of the first omnidirectional horizontal polarization antenna 101, the second omnidirectional horizontal polarization antenna 102 to the N-th omnidirectional horizontal polarization antenna 10N is configured of three half-wave dipole antennas (6a, 6b, 6c) that are configured of arc-shaped conductive bodies each curved to form part of a circumference of a certain circle, and that are disposed on the circumference of the certain circle at equal spaces.
Note that, in the modified example 1 shown in
The dual polarization antenna shown in
The horizontal polarization antenna shown in
In the modified example 2 shown in
Note that the omnidirectional vertical polarization antenna may be configured of monopole antennas the number of which is k as an integer of 4 or more. In this case, omnidirectional pattern with less deviation of directivity are obtainable as the vertical polarization characteristics.
In the horizontal polarization antenna shown in
Since each of the horizontal polarization antenna s shown in
The invention made by the inventor has been explained specifically on the basis of the example and the modified examples 1, 2 and 3, but this invention is not limited in the example and the modified examples 1, 2 and 3. It should be clear that various modifications can be made without departing from the gist of this invention.
Number | Date | Country | Kind |
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2012-186491 | Aug 2012 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2013/072288 | 8/21/2013 | WO | 00 |