Communication antenna and radiation unit thereof
11424530 ยท 2022-08-23
Assignee
Inventors
- Lei Shi (Zhongshan, CN)
- Cailong Yue (Zhongshan, CN)
- Tushuang Wei (Zhongshan, CN)
- Jin Yang (Zhongshan, CN)
- Wen Ding (Zhongshan, CN)
- Wei Zhao (Zhongshan, CN)
- Mulin Liu (Zhongshan, CN)
- Cong Fu (Zhongshan, CN)
Cpc classification
H01Q19/17
ELECTRICITY
H01Q21/28
ELECTRICITY
H01Q21/08
ELECTRICITY
H01Q21/30
ELECTRICITY
H01Q1/50
ELECTRICITY
International classification
H01Q19/17
ELECTRICITY
H01Q1/50
ELECTRICITY
Abstract
A communication antenna and radiation unit thereof with tapered clearance slots for transceiving radiation signals disposed at four corners of the radiation unit. The slots form groups and are arranged and fed by two feeding units. A middle portion of the radiation unit is a flat central platform. Peripheries of the radiation unit are turned up to form folded edges. The communication antenna includes a reflecting plate and a radiation unit operating at a low frequency. The central platform has a high-frequency radiation element. The radiation unit has a small aperture and is lightweight, so the antenna size is reduced, and a radiation performance indicator can be ensured. The radiation unit is applied to a multi-frequency antenna, has little effect on a high-frequency oscillator, and is especially suitable for a multi-frequency base station antenna with a low-frequency unit and a high-frequency unit forming an array in a nested manner.
Claims
1. A radiation unit of a communication antenna, the radiation unit comprising two feeding units; tapered clearance slots for transceiving radiation signals at four corners of the radiation unit, wherein each two of the tapered clearance slots that are diagonally distributed form a group, which results in two groups of the tapered clearance slots that are orthogonal, and each of the two groups is separately fed by a respective one of the two feeding units; a middle portion that is a flat central platform; and peripheries that are turned up toward a same side to form folded edges surrounding the central platform.
2. The radiation unit according to claim 1, wherein two of the folded edges that are adjacent are fixed by a dielectric slab at an opening of one of the tapered clearance slots that is between the two of the folded edges.
3. The radiation unit according to claim 1, wherein a window of a hollow structure is on the peripheries of the radiation unit surrounding the central platform.
4. The radiation unit according to claim 3, wherein a part of the window of the hollow structure between the adjacent tapered clearance slots causes two arm structures extending outward to be respectively formed at the four corners of the radiation unit, and one of the tapered clearance slots is between the two arm structures.
5. The radiation unit according to claim 3, wherein a part of the window of the hollow structure on the folded edges on the peripheries of the radiation unit causes a width of a middle portion of the folded edges to be less than widths of two sides.
6. The radiation unit according to claim 3, wherein the peripheries of the central platform include folding sheets that are folded in a same direction as the folded edges.
7. The radiation unit according to claim 1, further comprising a feeding PCB on an upper surface of the central platform and a feeding PCB on a lower surface of the central platform that respectively feed the two groups of the tapered clearance slots that are orthogonally arranged.
8. The radiation unit according to claim 1, further comprising a matching circuit PCB on one surface of the central platform.
9. A communication antenna comprising: a reflecting plate, wherein the radiation unit of claim 1 is on the reflecting plate and operates at a low frequency, and a high-frequency radiation element on the central platform of the radiation unit.
10. The communication antenna according to claim 9, further comprising a low-frequency array composed of a plurality of radiation units and a high-frequency array composed of a plurality of high-frequency radiation elements, wherein some or all of the high-frequency radiation elements are on the central platform.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7) Reference numerals: 1. Central platform, 2. Folded edge, 3. Tapered clearance slot, 301. Slot hole, 302. Transition slot line, 303. Tapered slot line, 4. Feeding unit, 5. Dielectric slab, 6. Window, 7. Arm-shaped structure, 8. Folding sheet, 9. Matching circuit PCB, 10. Reflecting plate, 11. High-frequency radiation element.
(8) H1, H2, H3, H4, H5, H6, H7, H8, H9, and H10 are high-frequency radiation elements; L1, L2, L3, L4, L5, and L6 are radiation units; B1, B2, B3, B4, B5, B6, B7, B8, B9, B10, B11, B12, B13, B14, B15, B16, B17, B18, B19, and B20 are high-frequency radiation elements; and D1, D2, D3, D4, D5, and D6 are radiation units.
DETAILED DESCRIPTION
(9) Implementations of the present invention will be described in detail with reference to embodiments.
(10) A radiation unit of the present invention applies the Vivaldi antenna principle. As shown in
(11)
(12) Two groups of orthogonally arranged tapered clearance slots are fed by two feeding units 4, respectively. An upper surface and a lower surface of the central platform 1 are respectively provided with a feeding PCB, the feeding PCB being provided with a feeding unit 4 in the form of a microstrip line, and the feeding PCBs on two surfaces respectively feeding two groups of orthogonal tapered clearance slots, to avoid line crossing. The tapered clearance slot 3 applies the Vivaldi antenna principle, and includes a slot hole 301 on the central platform 1, a transition slot line 302 connected to the slot hole 301, and a tapered slot line 303 extending outward from the transition slot line 302 and with the clearance gradually increasing. A feeding point of the feeding unit is located near the transition slot line 302. By changing the shape and size of the slot hole 301 at the rear of the feeding point and an opening angle of the tapered slot line 303 in the front part, the clearance antenna input impedance can be mutually adjusted, thereby showing the bandwidth. Further, by changing a length and a width of an open-circuit branch of the feeding unit 4 on the feeding PCB, the standing-wave effect can be adjusted. A thickness of the feeding PCB is increased, so that the bandwidth can be further increased. For the specific size of the tapered clearance slot and the feeding line form, reference may be made to the Vivaldi antenna principle, and details are not described in this specification.
(13) As shown in
(14) As shown in
(15) As shown in
(16) As shown in
(17) The window 6 of the hollow structure can be disposed both on a plane part and folded edges of the radiation unit. A part of the window 6 on the plane of the radiation unit is located between the adjacent tapered clearance slots. The hollow structure causes two arm structures 7 extending outward to be respectively formed at the four corners of the radiation unit, a tapered clearance slot 3 existing between the two arm structures. A part of the window 6 of the hollow structure located on the folded edges 2 on the peripheries of the radiation unit causes a width of a middle portion of the folded edges to be less than widths of two sides, and only a thinner part remains at the middle edge of the folded edge 2 to connect two ends thereof.
(18) Further, as shown in
(19) During application to the communication antenna, the radiation unit of the present invention can be mounted in a nested manner through matching with a high-frequency radiation element. The radiation unit is mounted on the reflecting plate of the communication antenna and works at a low frequency, and the high-frequency radiation element is disposed on the central platform of the radiation unit in a nested manner.
(20) A plurality of radiation units and a plurality of high-frequency radiation elements can form different arrays on the reflecting plate, and communication antennas with different performances can be obtained by forming arrays in different arraying modes. According to different specific arraying modes, some or all of the high-frequency radiation elements can be correspondingly disposed on the central platform of the radiation unit.
(21)
(22) Because the aperture size of the radiation unit of the present invention is much less than that of the existing low-frequency unit, and some high-frequency units are nested in the low-frequency unit, a width of the multi-frequency antenna A is only 466 mm, which can meet the performance index of a coaxial dual-column multi-frequency base station antenna.
(23)
(24) The multi-frequency base station antenna adopting the novel small-aperture bowl-shaped radiation unit disclosed in the present invention can significantly reduce the size of the antenna, and can meet the performance indicator of the customer, which is especially suitable for the multi-frequency base station antenna with the low-frequency unit and the high-frequency unit forming an array in a nested manner.