ANTENNA AND COMMUNICATIONS DEVICE
20210367350 · 2021-11-25
Assignee
Inventors
Cpc classification
H01Q19/108
ELECTRICITY
H01Q9/30
ELECTRICITY
H01Q15/246
ELECTRICITY
H01Q21/24
ELECTRICITY
International classification
Abstract
An antenna for wireless communications includes a horizontal polarization antenna and a vertical polarization antenna that are disposed in a stacked manner. The horizontal polarization antenna includes a radiation element and a double-sided parallel strip line. One end of the double-sided parallel strip line is connected to the radiation element. A length range of the double-sided parallel strip line is 0.58 to 1.35 times a waveguide wavelength of an electromagnetic wave in the double-sided parallel strip line at an operating frequency of the vertical polarization antenna.
Claims
1. An antenna comprising: a horizontal polarization antenna comprising a radiation element and a double-sided parallel strip line, one end of the double-sided parallel strip line being connected to the radiation element; and a vertical polarization antenna disposed in a stacked manner with respect to the horizontal polarization antenna, wherein a length range of the double-sided parallel strip line of the horizontal polarization antenna is 0.58 to 1.35 times a waveguide wavelength of an electromagnetic wave in the double-sided parallel strip line at an operating frequency of the vertical polarization antenna.
2. The antenna according to claim 1, wherein the double-sided parallel strip line is not linear.
3. The antenna according to claim 2, wherein a linear distance between the radiation element and the other end of the double-sided parallel strip line is 0.36 to 0.57 times the waveguide wavelength.
4. The antenna according to claim 2, wherein the double-sided parallel strip line comprises a bent line structure and/or a curved line structure.
5. The antenna according to claim 1, wherein an operating frequency band of the vertical polarization antenna is identical to an operating frequency band of the horizontal polarization antenna.
6. The antenna according to claim 1, wherein line widths of the double-sided parallel strip line are not identical.
7. The antenna according to claim 1, wherein the radiation element is a dipole element.
8. The antenna according to claim 1, wherein the vertical polarization antenna is a monopole antenna.
9. The antenna according to claim 1, wherein the antenna further comprises a ground plate, the vertical polarization antenna is disposed on the ground plate, and the horizontal polarization antenna is disposed on a side of the vertical polarization antenna and away from the ground plate.
10. A communications device comprising: a radio frequency circuit; and an antenna connected to the radio frequency circuit, the antenna comprising: a horizontal polarization antenna comprising a radiation element and a double-sided parallel strip line, one end of the double-sided parallel strip line being connected to the radiation element; and a vertical polarization antenna disposed in a stacked manner with respect to the horizontal polarization antenna, wherein a length range of the double-sided parallel strip line of the horizontal polarization antenna is 0.58 to 1.35 times a waveguide wavelength of an electromagnetic wave in the double-sided parallel strip line at an operating frequency of the vertical polarization antenna.
11. The communications device according to claim 10, wherein the double-sided parallel strip line is not linear.
12. The communications device according to claim 11, wherein a linear distance between the radiation element and the other end of the double-sided parallel strip line is 0.36 to 0.57 times the waveguide wavelength.
13. The communications device according to claim 11, wherein the double-sided parallel strip line comprises a bent line structure and/or a curved line structure.
14. The communications device according to claim 10, wherein an operating frequency band of the vertical polarization antenna is identical to an operating frequency band of the horizontal polarization antenna.
15. The communications device according to claim 10, wherein line widths of the double-sided parallel strip line are not identical.
16. The communications device according to claim 10, wherein the radiation element is a dipole element.
17. The communications device according to claim 10, wherein the vertical polarization antenna is a monopole antenna.
18. The communications device according to claim 10, wherein the antenna further comprises a ground plate, the vertical polarization antenna is disposed on the ground plate, and the horizontal polarization antenna is disposed on a side the vertical polarization antenna away from the ground plate.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DESCRIPTION OF EMBODIMENTS
[0032] To make the objectives, technical solutions, and advantages of this application clearer, the following further describes an antenna and a communications device provided in embodiments of this application in detail with reference to the accompanying drawings.
[0033]
[0034] A length range of the double-sided parallel strip line 012 is 0.58 to 1.35 times a waveguide wavelength of an electromagnetic wave in the double-sided parallel strip line 012 at an operating frequency of the vertical polarization antenna 02.
[0035] The waveguide wavelength is a wavelength at which the electromagnetic wave is transmitted in the double-sided parallel strip line 012 at the operating frequency of the vertical polarization antenna 02. The waveguide wavelength is correlated with the operating frequency, a size of the double-sided parallel strip line, and a dielectric constant and a thickness of a material inside the double-sided parallel strip line. A length of the double-sided parallel strip line adjusts one waveguide wavelength, and a corresponding phase variation is 360°.
[0036] Optionally, referring to
[0037] In conclusion, the embodiments of this application provide the antenna. The antenna includes the horizontal polarization antenna and the vertical polarization antenna that are disposed in the stacked manner. The length of the double-sided parallel strip line is 0.58 to 1.35 times the waveguide wavelength of the electromagnetic wave in the double-sided parallel strip line at the operating frequency of the vertical polarization antenna. When the vertical polarization antenna works, distribution of a radiation field of the vertical polarization antenna is affected by a coupling radiation field of the horizontal polarization antenna. A total phase delay of the double-sided parallel strip line of the horizontal polarization antenna is changed by adjusting the length of the double-sided parallel strip line, to adjust a phase of the coupling radiation field of the horizontal polarization antenna. The total radiation field of the vertical polarization antenna is changed, that is, an intervention mode of the coupling radiation field of the horizontal polarization antenna and the radiation field of the vertical polarization antenna is changed, to achieve a purpose of adjusting a radiation angle of the vertical polarization antenna to enhance a large-angle radiation capability of the vertical polarization antenna. According to the solutions provided in this application, deterioration of radiation performance of the vertical polarization antenna caused by a blocking problem can be alleviated without increasing an overall height of the antenna.
[0038] The horizontal polarization antenna 01 has two opposite sides, which are respectively a first side away from the vertical polarization antenna and a second side close to the vertical polarization antenna.
[0039] In the embodiment of this application, the horizontal polarization antenna includes one radiation element and one double-sided parallel strip line, or the horizontal polarization antenna includes a plurality of radiation elements and a plurality of double-sided parallel strip lines. A quantity of radiation elements is the same as a quantity of double-sided parallel strip lines. Each double-sided parallel strip line is connected to one radiation element. For example, referring to
[0040] Optionally, referring to
[0041] Optionally, when the horizontal polarization antenna includes the plurality of radiation elements and the plurality of double-sided parallel strip lines, the plurality of radiation elements are disposed axisymmetrically or centrosymmetrically, and the plurality of double-sided parallel strip lines are connected to one feedpoint. For example, referring to
[0042] In the embodiment of this application, the horizontal polarization antenna may be fed by using a coaxial cable, and the coaxial cable (not shown in the figure) is connected to the feedpoint. If the quantity of radiation elements included in the horizontal polarization antenna is N, and N is an integer greater than 1, the horizontal polarization antenna may also be referred to as an N-element antenna. Correspondingly, the horizontal polarization antenna includes N double-sided parallel strip lines, and the N double-sided parallel strip lines and the feedpoint form a feeding network, to transfer energy transmitted by the coaxial cable to the N radiation elements. Therefore, the N radiation elements can be fed. The feedpoint is connected to a one-to-N power splitter. The one-to-N power splitter can divide the energy transmitted by the coaxial cable into N paths, and respectively transmit the N paths of energy to the N double-sided parallel strip lines through the feedpoint.
[0043] Optionally, referring to
[0044] Optionally, the double-sided parallel strip line includes a bent line structure and/or a curved line structure. For example,
[0045] In this embodiment of this application, the double-sided parallel strip line is designed to be non-linear, so that an area of the horizontal polarization antenna in a horizontal direction can be reduced while a length requirement of the double-sided parallel strip line is met, thereby reducing a volume of the antenna.
[0046] Alternatively, the double-sided parallel strip line 012 may be linear. This is not limited in the embodiments of this application.
[0047] Optionally, the double-sided parallel strip line has unequal line widths, that is, the line widths of the double-sided parallel strip line are not all equal. For example, line widths of two ends of the double-sided parallel strip line are less than line widths of a middle part of the double-sided parallel strip line. Impedance matching of the horizontal polarization antenna can be implemented by designing the unequal line widths of the double-sided parallel strip line.
[0048] Optionally, the radiation element in the horizontal polarization antenna is a dipole element. Referring to
[0049] Alternatively, the radiation element in the horizontal polarization antenna may be another type of radiation element, for example, may be a slot radiation element. In this case, the horizontal polarization antenna is a slot antenna.
[0050] Optionally, the vertical polarization antenna is a monopole antenna. An operating frequency band of the vertical polarization antenna may be the same as an operating frequency band of the horizontal polarization antenna. For example, operating frequency bands of both the vertical polarization antenna and the horizontal polarization antenna may be 5 GHz frequency bands.
[0051] Optionally,
[0052] Optionally, referring to
[0053] In the embodiments of this application, simulation is further separately performed on a vertical polarization antenna, a vertical polarization antenna and a conventional horizontal polarization antenna that are disposed in a stacked manner, and the antenna provided in the embodiments of this application. Simulation results are as follows:
[0054]
[0055] An arrow in the figure points to a direction that is perpendicular to the ground plate D and that is away from the ground plate D. Due to a reflection effect of the ground plate D, most of radiant energy of the antenna ranges from −90° to +90°.
[0056] As shown in
[0057] As shown in
[0058] As shown in
[0059] The horizontal polarization antenna H2 may be the horizontal polarization antenna 01 shown in
[0060] Radiation fields in
[0061] It can be learned through comparison of
[0062] For example,
TABLE-US-00001 TABLE 1 Operating V.fwdarw.Average V + H1.fwdarw.Average V + H2.fwdarw.Average frequency gain gain gain 5.15 GHz 2.1 dB 0.9 dB 2.7 dB 5.5 GHz 2.3 dB 0.4 dB 2.8 dB 5.85 GHz 2.3 dB −3.3 dB 2.9 dB
[0063] Referring to Table 1, the average gain of the vertical polarization antenna V in
[0064] In conclusion, the embodiments of this application provide the antenna. The antenna includes the horizontal polarization antenna and the vertical polarization antenna that are disposed in the stacked manner. A length of a double-sided parallel strip line is 0.58 to 1.35 times a waveguide wavelength of an electromagnetic wave in the double-sided parallel strip line at the operating frequency of the vertical polarization antenna. When the vertical polarization antenna works, distribution of a total radiation field of the vertical polarization antenna is affected by a coupling radiation field of the horizontal polarization antenna. A total phase delay of the double-sided parallel strip line is changed by adjusting the length of the double-sided parallel strip line, to adjust a phase of the coupling radiation field of the horizontal polarization antenna. To be specific, the total radiation field of the vertical polarization antenna is changed, to achieve a purpose of adjusting a radiation angle of the vertical polarization antenna to enhance a large-angle radiation capability of the vertical polarization antenna. According to the solutions provided in this application, deterioration of radiation performance of the vertical polarization antenna caused by a blocking problem is alleviated without increasing an overall height of the antenna. This increases a gain of the vertical polarization antenna on the large-angle pitch plane, and enhances a far-region radiation capability of the vertical polarization antenna. In this way, a compact design of a product can be realized without increasing a thickness of the communications device. In addition, a far-region radiation capability of an antenna is improved, so that a signal coverage area of the communications device can be expanded. In this way, deployment density of the communications device, a quantity of deployed communications devices, and costs can be reduced.
[0065]
[0066] The antenna 10 includes the vertical polarization antenna 02 and the horizontal polarization antenna 01 shown in any one of
[0067] Optionally, the antenna 10 is connected to the radio frequency circuit 20 through a coaxial cable. Referring to
[0068] In this embodiment of this application, the vertical polarization antenna 02 is also connected to the radio frequency circuit 20. For example, referring to
[0069] Optionally, the communications device is an AP or a base station.
[0070] In conclusion, an embodiment of this application provides a communications device, and the communications device includes an antenna. According to the solutions provided in the embodiments of this application, deterioration of radiation performance of the vertical polarization antenna caused by a blocking problem can be alleviated without increasing an overall height of the antenna. Therefore, a compact design of a product can be realized without increasing a thickness of the communications device. In addition, in the antenna provided in the embodiments of this application, a gain of the vertical polarization antenna on a large-angle pitch plane is increased, and a far-region radiation capability of the vertical polarization antenna is enhanced. Therefore, signal strength of the communications device can be increased, and a signal coverage area of the communications device can be expanded. In this way, deployment density of the communications device, a quantity of deployed communications devices, and costs can be reduced.
[0071] In the embodiments of this application, the terms “first”, “second”, and “third” are merely used for a purpose of description, and shall not be understood as an indication or implication of relative importance.
[0072] The term “and/or” in this application describes only an association relationship for describing associated objects and represents that three relationships may exist. For example, A and/or B may represent the following three cases: Only A exists, both A and B exist, and only B exists. In addition, the character “/” in this specification generally indicates an “or” relationship between the associated objects.
[0073] The foregoing descriptions are merely optional embodiments of this application, but are not intended to limit this application. Any modification, equivalent replacement, or improvement made without departing from the concept and principle of this application should fall within the protection scope of this application.