Wideband dual-polarized antenna
11688951 · 2023-06-27
Assignee
Inventors
- Vladislav Komov (Rostov Region, RU)
- Victor Aleksandrovich SLEDKOV (Wellington, NZ)
- Zimeng Li (Guangdong, CN)
Cpc classification
H01Q21/26
ELECTRICITY
H01Q19/108
ELECTRICITY
H01Q1/421
ELECTRICITY
H01Q1/42
ELECTRICITY
International classification
H01Q1/42
ELECTRICITY
Abstract
The application discloses a wideband dual-polarized antenna, including a reflective plate and a radiating element mounted on the reflective plate. The radiating element includes four dipoles which are combined together to be arranged on the reflective plate; two arms of each dipole are respectively connected to top ends of two conductor, and bottom ends of the conductor are connected to a common base and are placed on the reflective plate; a focusing member with a conical structure is mounted above the radiating element, and includes conductive members and dielectric members. The conductive members are arranged on the dielectric members in an axisymmetrical manner, are supported by the dielectric members and are arranged above the dipoles. The beamwidth is adjusted by arranging the focusing member with the conical structure above the radiating element so that the wideband dual-polarized antenna has the beamwidth reaching the desired range, has lower cross polarization ratio.
Claims
1. A wideband dual-polarized antenna, comprising a reflective plate and a radiating element mounted on the reflective plate, and characterized in that the radiating element comprises four dipoles which are combined together to be arranged on the reflective plate; two arms of each dipole are respectively connected to top ends of two conductors, and bottom ends of the conductors are connected to a common base and are placed on the reflective plate; a focusing member with a conical structure is mounted above the radiating element, and comprises conductive members and dielectric members; and the conductive members are arranged on the dielectric members, are supported by the dielectric members and are arranged above the dipoles.
2. The wideband dual-polarized antenna according to claim 1, characterized in that the focusing member has a conical structure and has a circular, elliptical or polygonal cross section.
3. The wideband dual-polarized antenna according to claim 1, characterized in that the radiating element comprises four balun-fed folded dipoles tilting for 30-90°.
4. The wideband dual-polarized antenna according to claim 1, characterized in that the arms of the dipoles are bent towards a central direction of the radiating element.
5. The wideband dual-polarized antenna according to claim 1, characterized in that a top of the focusing member with the conical structure is excised in part.
6. The wideband dual-polarized antenna according to claim 1, characterized in that in the focusing member, the conductive members have a square, circular, ring-shaped, or other polygonal structure, and the conductive members are placed at an axis part of the radiating element and are parallel to the reflective plate.
7. The wideband dual-polarized antenna according to claim 1, characterized in that the conductive members are supported by the dielectric members and are arranged on the dipoles respectively; and the conductive members are in a shape of a strap, a curved bar, a rectangle, an arc, or a part of a polygon.
8. The wideband dual-polarized antenna according to claim 1, characterized in that at least two radiating members and feeding parts are placed on the reflective plate to form a dual-polarized antenna array.
9. The wideband dual-polarized antenna according to claim 1, characterized in that the reflective plate is at least provided with two side walls.
10. The wideband dual-polarized antenna according to claim 1, characterized by being provided with a circular tube-shaped radome.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
DETAILED DESCRIPTION OF ILLUSTRATED EMBODIMENTS
(9) An existing dual-polarized antenna, for example, a dual-polarized antenna described in the patent document CN108172978A, as shown in
(10) Therefore, the present application inventively provides that a focusing member with a conical structure is installed above a radiating element, as shown in
(11) Compared with the existing technical solution, the dual-polarized antenna of the present application has the reduced half-power beamwidth, and the antenna having the focusing member with the conical structure obtains higher gains. In addition, the dual-polarized antenna of the present application can increase the cross polarization ratio at the edges of the +/−60-degree sector, and by employing the design that the focusing member has the conical structure, the difference of the beamwidths of an E plane and an H plane is reduced; the dielectric members and the conductive members that jointly constitute the focusing member with the conical structure can change the radiation characteristics of the dual-polarized antenna, and thus, the cross polarization ratio of the antenna can be increased by adjusting the sizes of these components. The dual-polarized antenna of the present application is capable of reducing coupling interference between adjacent antennas. Specifically, the focusing member with the conical structure can focus radiation waves from the arms of the dipoles, and meanwhile, can reduce radiation interference generated by the reflective plate the surface of which is provided with adjacent antennas to increase the overall performance of the antenna.
(12) The present application is further described in detail below by way of specific embodiments and drawings. The following embodiments are only for further illustrating the present application and should not be construed as limiting the present application.
Embodiment 1
(13) A wideband dual-polarized antenna of the embodiment includes a reflective plate and a radiating element mounted on the reflective plate. The radiating element, as shown in
(14) Compared with a structural form of a focusing conductive member of an existing antenna, the design of the focusing member 5 with the conical structure in the embodiment can more efficiently focus radiation from the arms of the dipoles, making beams produced by the dual-polarized antenna of the present application narrower. Alternatively, in the case that beamwidths are the same, the size of the reflective plate of the antenna of the present invention may be smaller. In addition, compared with the existing technical solution, the dual-polarized antenna of the present application can increase the cross polarization ratio at the edges of the +/−60-degree sector, and the employed focusing member with the conical structure can reduce the difference of the beamwidths of the E plane and the H plane. The focusing member with the conical structure is constituted by the dielectric members and the conductive elements jointly, can change the radiation characteristics of the antenna, and thus, in practical use, the cross polarization ratio of the antenna can be increased by adjusting the sizes of the components.
Embodiment 2
(15) A wideband dual-polarized antenna of the embodiment is similar to that in the embodiment 1, and has the differences that the focusing member with the conical structure specifically employs a pyramid structure. As shown in
(16) The conductive members in the embodiment, for example, sheet-like conductive members, are placed on an axis part of the radiating element, or bent conductive members in a strap-shaped structure are placed above the arms of the dipoles, and can promote the focusing effect of the focusing member with the conical structure.
(17) Therefore, in the case that the focusing member with the conical structure and multiple layers of conductive members is employed, by changing the dielectric properties of the dielectric members, or optimizing the shape or structure of the conductive members, the dual-polarized antenna can acquire a direction diagram meeting requirements in a wider band range, and good matching between the radiating element and a feed line is achieved. For example, the dielectric members placed at different layers of the focusing member with the conical structure need to be reduced in dielectric constants, and may be considered to be fabricated by using different materials including porous foam-like materials. With such a multilayer focusing member with the conical structure and having conductive members arranged inside, it is possible to obtain a desired radiation direction diagram according to the practical use demands and to reduce the height of the focusing member. Therefore, for the antenna including the focusing member with the conical structure in the embodiment, the usage amount of dielectric materials can be reduced, meanwhile, the size of a radome is reduced, the design and fabrication are simplified, the space is saved, and the cost is lowered.
Embodiment 3
(18) A wideband dual-polarized antenna in the embodiment is similar to that in the embodiment 1, and has the differences that as shown in
Embodiment 4
(19) A wideband dual-polarized antenna in the embodiment is similar to that in the embodiment 1, and has the differences that as shown in
Embodiment 5
(20) In the embodiment, an antenna array is formed by employing the wideband dual-polarized antenna in the embodiment 4. As shown in
Embodiment 6
(21) In the embodiment, an antenna array is formed by employing the wideband dual-polarized antenna in the embodiment 3, and is placed entirely within a circular tube-shaped radome 28. As shown in
(22) In addition, in the embodiment, the antenna array as shown in
(23) The above content is for further detailed description of the present application in combination with the specific embodiments, and cannot be construed that the specific embodiments of the present application are only limited to these descriptions. Those of ordinary skill in the art can make a plurality of simple derivations and substitutions without departing from the concept of the present application.