Multi-Band Dual-Polarized Antenna and Electronic Device
20230178894 · 2023-06-08
Inventors
Cpc classification
H01Q5/50
ELECTRICITY
International classification
Abstract
A multi-band dual-polarized antenna includes a first radiator and a second radiator, each having a rotationally symmetric structure. The first radiator has two feeding ports that are 90° rotationally symmetric with respect to a geometric center of the first radiator. The second radiator is annular, the first radiator and the second radiator are coplanar, the first radiator is disposed in the second radiator, and an annular gap is provided between the first radiator and the second radiator.
Claims
1-13. (canceled)
14. An antenna, comprising: a first radiator including a first rotationally symmetric structure; and a second radiator including a second rotationally symmetric structure, wherein the first radiator including two feeding ports that are 90° rotationally symmetric with respect to a geometric center of the first radiator, and wherein the second radiator is annular, the first radiator and the second radiator are coplanar, the first radiator is disposed in the second radiator, and an annular gap between the first radiator and the second radiator.
15. The antenna according to claim 14, wherein a first operating frequency band of the second radiator comprises a first frequency band, and a second operating frequency band of the annular gap comprises a second frequency band.
16. The antenna according to claim 15, wherein the first operating frequency band of the second radiator further comprises a third frequency band.
17. The antenna according to claim 15, wherein a first perimeter of an outer contour of the second radiator is twice a first wavelength corresponding to the first frequency band, and a second perimeter of the annular gap is twice a second wavelength corresponding to the second frequency band.
18. The antenna according to claim 14, wherein a width range of the annular gap is between 0.5 millimeter and 1.5 millimeters.
19. The antenna according to claim 14, wherein the antenna further comprises a reference ground disposed in parallel with the first radiator, and a distance range between the reference ground and the first radiator is between 3 millimeters and 7 millimeters.
20. The antenna according to claim 19, wherein a projection area of the second radiator on the reference ground is smaller than an area of the reference ground.
21. The antenna according to claim 15, wherein the first radiator is made of a square conductive material, and wherein a corresponding length of each side of the first radiator is a quarter of a wavelength corresponding to the second frequency band.
22. The antenna according to claim 15, wherein the second radiator is made of a square ring-shaped conductive material that is hollow inside, and wherein a length of an outer contour of the second radiator is a quarter of a wavelength corresponding to the first frequency band.
23. The antenna according to claim 22, wherein a gap is provided on each side of the outer contour of the second radiator, and wherein the gap includes an outward opening.
24. The antenna according to claim 14, wherein the second radiator is a passive parasitic structure.
25. An electronic device, comprising: an antenna, wherein the antenna comprises: a first radiator including a first rotationally symmetric structure; and a second radiator including a second rotationally symmetric structure, wherein the first radiator including two feeding ports that are 90° rotationally symmetric with respect to a geometric center of the first radiator, and wherein the second radiator is annular, the first radiator and the second radiator are coplanar, the first radiator is disposed in the second radiator, and an annular gap between the first radiator and the second radiator.
26. The electronic device according to claim 25, wherein a first operating frequency band of the second radiator comprises a first frequency band, and a second operating frequency band of the annular gap comprises a second frequency band.
27. The electronic device according to claim 26, wherein the first operating frequency band of the second radiator further comprises a third frequency band.
28. The electronic device according to claim 26, wherein a first perimeter of an outer contour of the second radiator is twice a first wavelength corresponding to the first frequency band, and a perimeter of the annular gap is twice a second wavelength corresponding to the second frequency band.
29. The electronic device according to claim 25, wherein a width range of the annular gap is between 0.5 millimeter and 1.5 millimeters.
30. The electronic device according to claim 25, wherein the antenna further comprises a reference ground disposed in parallel with the first radiator, and a distance range between the reference ground and the first radiator is between 3 millimeters and 7 millimeters.
31. The electronic device according to claim 26, wherein the first radiator is made of a square conductive material, and wherein a corresponding length of each side of the first radiator is a quarter of a wavelength corresponding to the second frequency band.
32. The electronic device according to claim 26, wherein the second radiator is made of a square ring-shaped conductive material that is hollow inside, and wherein a length of an outer contour of the second radiator is a quarter of a wavelength corresponding to the first frequency band.
33. The electronic device according to claim 25, wherein the electronic device feeds a multiple-input multiple-output (MIMO) signal to the antenna through the two feeding ports.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
[0032] Dual-polarized antennas have been widely used because the dual-polarized antennas can provide better signal quality. An antenna having a dual-polarized radiation characteristic can simultaneously radiate two electromagnetic waves whose phases are perpendicular to each other. With a phase difference of 90°, the two electromagnetic waves can be transmitted in space at the same time without mutual interference. Therefore, the dual-polarized antenna can radiate/receive more information than a common antenna at the same time, so that signal quality is optimized and a throughput is improved.
[0033] In the conventional technology, dual-polarized radiation of an antenna may be implemented through coupled feeding. For example, two radiators a that are perpendicular to each other may be used as feeding ends for coupled feeding, to feed an electrical signal to another radiator b close to the radiators a through spatial coupling. The radiator b can radiate two orthogonal electromagnetic wave signals that work in a same frequency band and have a phase difference of 90°, to excite currents perpendicular to each other on the radiator b. In this way, dual-polarized radiation of the antenna is implemented.
[0034] For example,
[0035] As shown in (a) in
[0036] Refer to (b) in
[0037] It can be learned that in the antenna structure shown in
[0038] To solve the foregoing problems, embodiments of this application provide a multi-band dual-polarized antenna, to effectively reduce antenna complexity and processing costs while implementing multi-band dual-polarized radiation, and significantly reduce space required by the antenna. The multi-band dual-polarized antenna can be more widely used in electronic devices. In an example, the electronic device may be a router, data card, CPE, or the like.
[0039] The following describes in detail the multi-band dual-polarized antenna provided in embodiments of this application with reference to the accompanying drawings.
[0040]
[0041] As shown in (a) in
[0042] As shown in (b) in
[0043] In the multi-band dual-polarized antenna provided in this embodiment of this application, the feeding ports on the first radiator 201 are distributed in a rotationally symmetric manner with respect to a geometric center of the first radiator 201 by +90°/−90°, so that after the feeding terminals feed the electrical signal to the first radiator 201 by using the feeding ports 203-1 and 203-2, currents perpendicular to each other can be formed on the first radiator 201. It should be noted that, in this application, a location of the geometric center corresponding to the first radiator varies with a form of the first radiator. For example, when the first radiator has a circular structure, the geometric center corresponding to the first radiator is a circle center of the first radiator. For another example, when the first radiator is of a regular polygon structure, the geometric center corresponding to the first radiator is a point that is in the first radiator and that has an equal distance to each side. In addition, because the two feeding ports are 90° rotationally symmetric relative to each other with respect to the geometric center of the first radiator, when a location of one feeding port is rotated by 90° by using the geometric center as a circle center, the location of the feeding port can coincide with a location of the other feeding port. With reference to (b) in
[0044] In addition, in the multi-band dual-polarized antenna provided in this embodiment of this application, the first radiator 201 and the second radiator 202 each have a rotationally symmetric structure, so that the first radiator 201 and the second radiator 202 can correspondingly generate orthogonal electromagnetic waves for radiation under excitation of the electrical signal fed by the two feeding terminals. It should be understood that a graph having a rotationally symmetric structure is a graph having the following feature: a new graph obtained after rotation about a point on a plane by a specific angle totally coincides with a graph obtained before rotation. In an example, the first radiator 201 in this embodiment of this application may be in the shape of a circle, a regular triangle, a square, a regular pentagon, a regular hexagon, or another regular polygon. In addition, the second radiator 202 may also be an annular structure having the foregoing feature. Details are not described again in this embodiment of this application. With reference to (b) in
[0045] Based on the foregoing description, when the antenna provided in this embodiment of this application works, the first radiator 201 may generate currents perpendicular to each other under excitation of the two feeding ports. Because of the rotationally symmetric structure of the first radiator 201, an excitation signal may be fed to the second radiator 202 evenly by spatial feeding through the annular gap 205. In other words, under excitation of the first radiator 201, induced currents with basically consistent intensity can be generated at the inner edges of the second radiator 202. Because the second radiator 202 has a rotationally symmetric structure, and electrical signals whose directions are perpendicular to each other exist on the first radiator 201 used for excitation, currents that are perpendicular to each other can also be excited on the second radiator 202. In addition, current distributions perpendicular to each other also exist on two annular edges enclosing the annular gap 205. Therefore, both the second radiator 202 and the annular gap 205 can perform dual-polarized radiation. In addition, because a size of the second radiator 202 is different from a size of the annular gap 205, different frequency bands can be covered, that is, two or more frequency bands can be covered at the same time.
[0046] It should be noted that, in
[0047] When a signal is fed to the first radiator 201 through one feeding port, the first radiator 201 may generate a current signal. Through spatial coupling, the current signal may be fed to the second radiator 202, to generate a corresponding current signal. Therefore, the antenna may convert currents at different locations into electromagnetic waves, and cover at least three frequency bands. For example, frequencies of the three covered frequency bands in ascending order are respectively a frequency band 1, a frequency band 2, and a frequency band 3. Directions of currents at two ends of the gap between the first radiator 201 and the second radiator 202 are opposite, so that an intermediate-frequency resonance of the antenna, for example, a resonance in the frequency band 2, may be formed. Because the second radiator 202 is large, a current distributed on the second radiator 202 may form a low-frequency resonance of the antenna, for example, a resonance in the frequency band 1. In addition, the current distributed on the second radiator 202 may further excite a higher-order mode, to form a high-frequency resonance of the antenna, for example, a resonance in the frequency band 3. In this way, the antenna covers at least three frequency bands.
[0048] It should be noted that, because a current also exists on the first radiator 201, a corresponding resonance can also be formed. However, because the first radiator 201 is small, a resonance frequency formed by the first radiator 201 is high (for example, above 6 G). If an electrical length of the first radiator 201 is increased through tuning, and a corresponding resonance frequency is lowered, the antenna can implement coverage of four frequency bands, or expand an existing resonance frequency band.
[0049] Generally, to meet requirements for operating frequency bands in different scenarios, the antenna needs to be enabled to work in a specific frequency range (that is, a frequency band). According to the multi-band dual-polarized antenna provided in this embodiment of this application, an operating frequency band may be adjusted by adjusting sizes of locations corresponding to the frequency band 1, the frequency band 2, and the frequency band 3. For example, the required frequency band is a Wi-Fi dual-band (that is, a 2.4 G frequency band, a 5 G low band, and a 5 G high band). A perimeter of an outer contour of the second radiator 202 is adjusted to twice a wavelength corresponding to a frequency band (for example, the 2.4 G frequency band) with the lowest frequency in the three required frequency bands, that is, each side length is ¼ of a wavelength corresponding to the 2.4 G frequency band. In this way, the frequency band 1 can be adjusted to a 2.4 G frequency band range, so that the antenna covers the 2.4 G frequency band. A perimeter of an inner contour of the second radiator 202 is set to twice a wavelength corresponding to a frequency band (for example, the 5 G low band) with a moderate frequency in the three required frequency bands, that is, each side length is ¼ of a wavelength corresponding to the 5 G low band. In this way, the frequency band 2 can be adjusted to a 5 G low band range, so that the antenna covers the 5 G low band.
[0050] It should be noted that, as described above, a resonance in the 5 G high band is generated by a higher-order mode of a 2.4 G resonance. Therefore, when the perimeter of the outer contour of the second radiator 202 is adjusted to ¼ of the wavelength corresponding to the frequency band (for example, the 2.4 G frequency band) with the lowest frequency in the three required frequency bands, a resonance 3 may also be adjusted to near the 5 G high band. In this embodiment of this application, after the size of the antenna is adjusted, capacitance/inductance matching may be further performed on the antenna, so that the three resonances can accurately cover a corresponding frequency band.
[0051] In this embodiment of this application, a plurality of different methods are provided to adjust sizes such as the perimeter of the outer contour and perimeter of the inner contour of the second radiator 202.
[0052] For example, in some embodiments, a non-run-through gap may be provided on the second radiator 202, to increase an electrical length of a current on the outer contour. As shown in
[0053] It should be noted that
[0054] It should be understood that, in the foregoing description, an example in which the gap is in a rectangle shape shown in
[0055] In some other embodiments, the perimeter of the outer contour of the second radiator may be increased by increasing the area of the second radiator 202. By using this solution, because a radiation area of the second radiator 202 can be increased, a bandwidth of a corresponding resonance can be effectively expanded while frequency domain locations of the resonance 1 and the resonance 3 are adjusted.
[0056] In some other embodiments, the perimeter of the outer contour of the second radiator 202 may be further increased through matched tuning. For example, an inductor may be connected in series, and/or a capacitor may be connected in parallel at an appropriate location, to increase an equivalent electrical length of the second radiator 202, and achieve an effect similar to that of increasing the perimeter of the outer contour of the second radiator 202.
[0057] In a specific implementation process, one or more methods in the foregoing examples may be flexibly used to adjust the perimeter of the outer contour of the second radiator 202. It may be understood that, for adjustment of the perimeter of the inner contour of the second radiator 202, refer to the foregoing method for adjusting the perimeter of the outer contour. Details are not described herein again.
[0058] It should be noted that, based on the foregoing description, the annular gap 205 between the first radiator 201 and the second radiator 202 plays a very important role during coupled feeding and radiation. Therefore, based on a large quantity of experimental verifications, in this embodiment of this application, a width of the annular gap 205 may be set to between 0.5 millimeter and 1.5 millimeters, so as to better excite the annular gap 205 between the first radiator 201 and the second radiator 202, and the second radiator 202 for radiation. In addition, because impact of the reference ground on antenna radiation is also very important, a distance between the substrate 204 and a plane on which the first radiator 201 and the second radiator 202 are located may be set to between 3 millimeters and 7 millimeters, so as to enable the antenna provided in this embodiment of this application to radiate better.
[0059] To enable a person of ordinary skill in the art to more clearly know a radiation effect of the multi-band dual-polarized antenna provided in this embodiment of this application, the following provides an example for description with reference to an example and a simulation result. For example, the antenna has a structure shown in
[0060]
[0061] This example also provides current distributions in different operating frequency bands to verify the preceding description.
[0062]
[0063]
[0064] Based on the foregoing description, the multi-band dual-polarized antenna provided in this embodiment of this application can implement multi-band dual-polarized radiation. In addition, because there is only one layer of structure except the substrate, complexity of the antenna can be effectively reduced, processing costs can be reduced, and space required by the antenna can be significantly reduced, so that the antenna can be more generally applicable to an electronic device.
[0065] It should be noted that, based on the foregoing multi-band dual-polarized antenna, the multi-band dual-polarized antenna can also be applied to a MIMO system to transmit and receive a signal.
[0066] For example, in some embodiments, an example in which the MIMO system needs to transmit a first signal and a second signal is used. The first signal may be fed to the feeding port 203-1, and the second signal may be fed to the feeding port 203-2. Because the antenna can convert signals fed to the two feeding ports into orthogonal electromagnetic waves for dual-polarized radiation, the first signal and the second signal can be transmitted.
[0067] It may be understood that, in some other embodiments, when the MIMO system needs to receive a signal, electromagnetic waves corresponding to at least two different signals may also be received by using the antenna having the foregoing composition, and corresponding currents are transmitted to back-end components by using different feeding ports, for example, a radio frequency component and/or a system on chip (System on Chip, SOC) in the MIMO system, to facilitate parsing and processing. In this way, signal receiving of the MIMO system is implemented.
[0068] Embodiments of this application further provide an electronic device. The electronic device may be provided with one or more antennas described in any one of
[0069] In an example,
[0070] Either of the antenna 1 and the antenna 2, or the antenna 1 and the antenna 2 may be the multi-band dual-polarized antenna formed in any one of
[0071] In a specific implementation, the electronic device may be a router that provides a Wi-Fi connection, to provide good Wi-Fi signal coverage and signal quality.
[0072] It should be understood that, according to the multi-band dual-polarized antenna provided in this embodiment of this application, because both the first radiator and the second radiator (and the annular gap between the first radiator and the second radiator) are disposed on a same plane, only one plane needs to be processed during production and processing, so that production costs and antenna complexity can be effectively reduced, and significant beneficial effects are achieved for controlling antenna costs and improving quality control. In addition, because at least three frequency bands can be covered, and the dual-polarized radiation characteristic can be provided in a corresponding frequency band, compared with a common antenna, the multi-band dual-polarized antenna provided in this embodiment of this application can provide better signal coverage and signal quality.
[0073] Although this application is described with reference to specific features and embodiments thereof, it is clear that various modifications and combinations may be made to them without departing from the scope of this application. Correspondingly, the specification and accompanying drawings are merely example description of this application defined by the appended claims, and are considered as any of or all modifications, variations, combinations or equivalents that cover the scope of this application. It is clearly that a person skilled in the art can make various modifications and variations to this application without departing from the spirit and scope of this application. This application is intended to cover these modifications and variations of this application provided that they fall within the scope of protection defined by the following claims and their equivalent technologies.