Antennas and Electronic Devices

The combination of dipole and slot antennas with a balun structure addresses the coverage limitations of existing CPE antennas, achieving enhanced radiation and circularity for improved Wi-Fi performance in both horizontal and vertical planes.

JP7733151B2Active Publication Date: 2025-09-02HUAWEI TECH CO LTD
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Patent Information

Application Number
JP2024032971
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-12-27
Filing Date
2024-03-05
Publication Date
2025-09-02
Estimated Expiration
2040-10-30

AI Technical Summary

Technical Problem

Existing Wi-Fi antenna designs for customer premises equipment (CPE) face issues with poor horizontal and vertical coverage due to PCB interference and limited circularity, particularly in dual-branch designs like IFAs and dipoles with balun structures.

Method used

A combination of dipole and slot antennas with a balun structure that includes symmetrical branches and slots to enhance both horizontal and vertical radiation, forming a stable electric field and improving antenna circularity.

Benefits of technology

The solution achieves improved horizontal and vertical radiation patterns, enhancing the circularity and performance of Wi-Fi antennas, ensuring comprehensive coverage and efficiency in 2.4G and 5G Wi-Fi bands.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an antenna improved in antenna pattern roundness.SOLUTION: The antenna includes a radiator and a balun structure 10. The radiator includes a first branch 20 through which a first current flows and a second branch 30 through which a second current flows. The first branch and the second branch are arranged on two opposite sides of the balun structure. The first branch is separated from the balun structure by a first slot. The second branch is separated from the balun structure by a second slot. The first slot forms a first horizontally radiated electric field by currents I1, I5 and a current I2 on the balun structure. The second slot forms a second horizontally radiated electric field by currents I4, I7 and a current I3 on the balun structure. Through coordination of the slots with the first and second branches, radiation in both horizontal and vertical directions of the antenna is enhanced and antenna pattern roundness is increased.SELECTED DRAWING: Figure 5
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to Chinese Patent Application No. 201911378073.3, entitled "ANTENNA AND ELECTRONIC DEVICE," filed with the State Intellectual Property Office on December 27, 2019, the entire contents of which are incorporated herein by reference.

[0002] The present application relates to the field of communications technology, and in particular to antennas and electronic devices. [Background technology]

[0003] Existing customer premises equipment (CPE) products focus on Wi-Fi performance. Research into the configuration and wiring of wall-mounted Wi-Fi antennas has led to better horizontal and vertical coverage. Currently, most Wi-Fi antenna designs use dipoles, IFAs, and other solutions, and Wi-Fi operation is primarily implemented using a dual-branch design. However, both solutions have several drawbacks. For example, the main issues with the IFA solution include the need for space on the PCB and poor circularity of the antenna pattern in the horizontal plane due to PCB interference. The main issue with the dipole solution with a balun structure is that it can only provide horizontal coverage and poor vertical coverage. Therefore, a suitable Wi-Fi antenna is urgently needed to improve the performance of CPE. Summary of the Invention [Means for solving the problem]

[0004] The present application provides an antenna and an electronic device for improving the Wi-Fi performance of an electronic device and improving the communication effect of the electronic device.

[0005] According to a first aspect, an antenna is provided. The antenna is a combination of a dipole antenna and a slot antenna, and includes a radiator and a balun structure configured to feed the radiator. The radiator includes a first branch for a first current to flow through and a second branch for a second current to flow through. The first branch and the second branch are disposed on two opposite sides of the balun structure and function as two branches of a dipole antenna. The direction of the first current is at least partially opposite to the direction of the second current. The first branch is separated from the balun structure by a first slot. The second branch is separated from the balun structure by a second slot. The first slot and the second slot function as a slot antenna. The first slot is configured to form a first horizontal radiation electric field by the first current and a current on the balun structure. The second slot is configured to form a second horizontal radiation electric field by the second current and a current on the balun structure. In the aforementioned technical solution, the coordination of the slot with the first branch and the second branch enhances both the horizontal and vertical radiation of the antenna and increases the circularity of the antenna pattern.

[0006] In a specific possible solution, the width of each of the first slot and the second slot is in the range of 0.5 to 4 mm. For example, the width may be 0.5 mm, 0.8 mm, 1 mm, 1.5 mm, 2 mm, 3 mm, 4 mm, etc. This allows an electric field to be formed between the branches on both sides of the slot and the balun structure.

[0007] In a specific possible solution, the width of the first slot and the width of the second slot can be the same or different. Regardless of whether they are the same or different, it is necessary to ensure that the width of each of the first slot and the second slot is in the range of 0.5 to 4 mm.

[0008] In a particular possible solution, the balun structure is U-shaped, and the balun structure includes a strip-shaped first structure and a strip-shaped second structure.

[0009] The first branch is connected to the first structure, and a first slot is formed between the first branch and the first structure.

[0010] The second branch is connected to a second structure, and a second slot is formed between the second branch and the second structure. The two different structures correspond one-to-one to the two branches and form an electric field.

[0011] In a particular possible solution, the balun structure further includes a feed point and a ground point, the feed point being located on the first structure and the ground point being located on the second structure.

[0012] In a particular possible solution, one end of the first structure connected to the first branch is provided with a protrusion facing the second structure, and the feed point is located on the protrusion, the position of the protrusion facilitating the placement of the feed point.

[0013] In a particular possible solution, the first branch and the second branch are symmetrical, which improves the circularity effect in the horizontal direction.

[0014] In a particular possible solution, the current path length of the first branch is 0.15 to 0.35 times the wavelength corresponding to the operating band of the antenna. The current path length of the second branch is 0.15 to 0.35 times the wavelength corresponding to the operating band of the antenna.

[0015] In a particular possible solution, the current path length from the ground point to the feed point of the balun structure is 1 / 2 of a wavelength corresponding to the operating band of the antenna.

[0016] In a particular possible solution, the first branch is L-shaped, the second branch is L-shaped, the current path length of the vertical portion of the first branch is equal to the current path length of the vertical portion of the second branch, and the horizontal portion of the second branch is used to generate a vertical electric field.

[0017] According to a second aspect, an electronic device is provided, the electronic device including: a housing; a support layer disposed in the housing; and an antenna as in the above-described aspect disposed on the support layer. In the above technical solution, the adjustment of the slot with the first branch and the second branch enhances both horizontal and vertical radiation of the antenna and increases the circularity of the antenna pattern.

[0018] According to a third aspect, an antenna is provided, the antenna including a balun structure and a radiating portion. The balun structure is a U-shaped structure. The U-shaped structure includes a first structure, a second structure, and a third structure. The first structure and the second structure are disposed on two sides of the third structure and are respectively connected to two opposite ends of the third structure in a one-to-one correspondence. The radiating portion includes a first branch located on one side of the U-shaped structure and a second branch located on the other side of the U-shaped structure. The first branch has a first strip-shaped structure. The first strip-shaped structure and the first structure are connected to each other and have a first slot therebetween. The second branch has a second strip-shaped structure. The second strip-shaped structure and the second structure are connected to each other and have a second slot therebetween. In the above technical solution, by adjusting the slot and the first branch and the second branch, both horizontal and vertical radiation of the antenna are enhanced and the circularity of the antenna pattern is increased.

[0019] In a specific possible solution, the first branch is an inverted L-shaped structure, and the first branch includes a first strip and a third strip connected to the first strip. The first strip is connected to the first structure using the third strip. The width of the first slot is limited by the length of the third strip.

[0020] In a specific possible solution, the second branch is an inverted L-shaped structure, and the second branch includes a second band structure and a fourth band structure connected to the second band structure. The second band structure is connected to the second structure using the fourth band structure. The width of the first slot is limited by the length of the fourth band structure. [Brief explanation of the drawings]

[0021] [Figure 1] 1 is a schematic diagram of a structure of an NFC antenna according to an embodiment of the present application; [Figure 2] FIG. 1 is a schematic diagram of a balun structure according to an embodiment of the present application. [Figure 3] FIG. 2 is a schematic diagram of the structure of the first branch according to an embodiment of the present application. [Figure 4] FIG. 2 is a schematic diagram of the structure of the second branch according to an embodiment of the present application. [Figure 5] FIG. 2 is a schematic diagram of the current generated when the antenna operates at 2.4 G according to an embodiment of the present application. [Figure 6] FIG. 1 is a schematic diagram of the current generated when the antenna operates in 5G, according to an embodiment of the present application. [Figure 7] FIG. 2 is a schematic diagram of the structure of the antenna used in the simulations, according to one embodiment of the present application. [Figure 8] 1 is a schematic diagram of a structure of a comparative antenna according to an embodiment of the present application; [Figure 9] FIG. 8 is a diagram showing the 3D directivity pattern of the antenna shown in FIG. 7. [Figure 10] FIG. 9 is a diagram showing the 3D directivity pattern of the antenna shown in FIG. 8. [Figure 11] FIG. 8 is a diagram showing the circularity of the antenna pattern in the horizontal direction of the antenna shown in FIG. [Figure 12] 9 is a diagram showing the circularity of the antenna pattern in the horizontal direction of the antenna shown in FIG. 8. FIG. [Figure 13] FIG. 8 is a standing wave diagram of the antenna shown in FIG. [Figure 14] FIG. 9 is a standing wave diagram of the antenna shown in FIG. [Figure 15] FIG. 8 is an efficiency diagram of the antenna shown in FIG. [Figure 16] FIG. 10 is a schematic diagram of another comparative antenna structure according to an embodiment of the present application. [Figure 17] FIG. 17 is a diagram showing the 3D directivity pattern of the antenna shown in FIG. 16. [Figure 18] FIG. 17 is a diagram showing the circularity of the antenna pattern in the horizontal direction of the antenna shown in FIG. [Figure 19] 1 is a schematic diagram of an electronic device according to an embodiment of the present application. DETAILED DESCRIPTION OF THE INVENTION

[0022] To facilitate understanding of the antenna provided in the embodiments of the present application, the following first describes application scenarios of the antenna provided in the embodiments of the present application. The antenna provided in the embodiments of the present application is applied to an electronic device. The electronic device is actually a mobile signal access device that receives mobile signals and transmits the mobile signals using wireless Wi-Fi signals. The electronic device is also a device that converts high-speed 4G or 5G signals into Wi-Fi signals and can support a relatively large number of mobile terminals for simultaneous Internet access. The electronic device can be widely applied to wireless network access in rural areas, towns, hospitals, companies, factories, and residential areas to save the costs of deploying wired networks. However, in conventional technologies, when an antenna of an electronic device is used, it is not possible to ensure horizontal and vertical plane coverage simultaneously, resulting in relatively poor communication effectiveness. Therefore, the embodiments of the present application provide an antenna for improving communication effectiveness of a customer premises terminal.

[0023] Figure 1 is a schematic diagram of an antenna structure according to one embodiment of the present application. The antenna shown in Figure 1 includes two parts: a radiator and a balun structure 10. The balun structure 10 is configured to feed the radiator, and the radiator is configured to radiate a signal.

[0024] See FIG. 1 . The balun structure 10 provided in this embodiment of the present application is disposed on a substrate within an electronic device. The balun structure 10 may be a common conductive medium disposed on the substrate, such as a metal layer, a flexible circuit board, or a metal sheet. The balun structure in this embodiment of the present application refers to a component or structure that performs a feed conversion from an unbalanced structure (coaxial cable) to a balanced structure (dipole). In this application, the balun structure is configured to reverse the phase of the feed leakage current by using a half-wavelength cable (a wavelength corresponding to the operating band of the antenna) to cancel the leakage current on the ground and achieve a balanced feed function. In certain settings, the half-wavelength connection feed structure may be implemented between the feed point 60 and the ground point 70 in different forms, for example, by using a U-shaped structure shown in FIG. 1 . It should be understood that a structure that meets any of the aforementioned dimensional conditions may be used as the balun structure in this embodiment of the present application.

[0025] FIG. 2 is a schematic diagram of a specific balun structure 10. The balun structure 10 is a U-shaped structure with an opening at one end. For ease of explanation, the balun structure is divided into a first structure 11, a second structure 12, and a third structure 13. The first structure 11 and the second structure 12 are strip-shaped structures elongated in a first direction indicated by the arrows in FIG. 2 , and the third structure 13 is located between the first structure 11 and the second structure 12 and connected to both the first structure 11 and the second structure 12 to form a U-shaped structure. The two ends of the U-shaped structure are a first end a of the first structure 11 and a second end b of the second structure 12. See FIG. 2 . The first structure 11, the second structure 12, and the third structure 13 are all rectangular strip-shaped structures. However, the specific shapes are not limited in this embodiment of the present application. The first structure 11, the second structure 12, and the third structure 13 provided in this embodiment of the present application may use other shapes. Please continue to refer to FIG. 2. When the first structure 11 and the second structure 12 are arranged, the widths of the first structure 11 and the second structure 12 may be equal or approximately equal, and this is not particularly limited herein. Also, the first structure 11 and the second structure 12 are parallel to each other in the first direction. However, in this embodiment of the present application, the first structure 11 and the second structure 12 may alternatively be approximately parallel to each other. For example, the first structure 11 and the second structure 12 may each form a specific angle with the first direction, such as 2°, 5°, or another different angle.

[0026] Continuing to refer to FIG. 2, the balun structure 10 further includes a feed point 60 and a ground point 70. The feed point 60 is configured to be connected to an antenna front-end component of an electronic device, the front-end component including common antenna components such as a phase shifter and a power divider. Continuing to refer to FIG. 2, the feed point 60 is disposed on the first structure 11, and the feed point 60 is located at the end of the balun structure 10 having a U-shaped opening. To facilitate the placement of the feed point 60, a first protrusion 14 is disposed at the end of the first structure 11 away from the third structure 13, and the feed point 60 is located on the first protrusion 14. The ground point 70 is disposed on the second structure 12, and the ground point 70 is located at the end of the balun structure having a U-shaped opening. To facilitate placement of the grounding point 70, a second protrusion 15 is located at the end of the second structure 12 away from the third structure 13, and the grounding point 70 is located on the second protrusion 15.

[0027] 2 , when the balun structure 10 is deployed, the current path length from the ground point 70 of the balun structure 10 to the feed point 60 is ½ of a wavelength corresponding to the operating band of the antenna. The current path length from the ground point 70 of the balun structure 10 to the feed point 60 is the current path length from the feed point 60 to the third structure 13, or the current path length from the ground point 70 to the third structure 13. In this embodiment of the present application, the current path length from the ground point 70 of the balun structure 10 to the feed point 60 being ½ of a wavelength corresponding to the operating band of the antenna indicates that the current path length from the ground point 70 of the balun structure 10 to the feed point 60 is equal to or approximately equal to ½ of a wavelength corresponding to the operating band of the antenna. That is, the definition of this embodiment of the present application can be satisfied when the current path length from the ground point 70 of the balun structure 10 to the feed point 60 is close to ½ of a wavelength corresponding to the operating band of the antenna.

[0028] Please refer to FIG. 1. The radiator provided in this embodiment of the present application includes two parts: a first branch 20 and a second branch 30. The first branch 20 and the second branch 30 function as two branches of a dipole antenna. Therefore, the first branch 20 and the second branch 30 are arranged as a substantially symmetrical structure. As shown in FIG. 1, the first branch 20 and the second branch 30 are arranged on two sides of the balun structure 10, with the first branch 20 connected to the end of the first structure 11 and the second branch 30 connected to the end of the second structure 12. Below, the first branch 20 and the second branch 30 will be described separately.

[0029] FIG. 3 shows the structure of the first branch 20. The first branch 20 shown in FIG. 3 has an inverted L-shaped structure. For ease of explanation, the first branch 20 is divided into a first portion 21 and a second portion 22. The first portion 21 and the second portion 22 are integrally formed. The length direction of the first portion 21 is in the second direction, and the first portion 21 has a third end c spaced apart from the second portion 22. The length direction of the second portion 22 is in the first direction, and the second portion 22 has a fourth end d spaced apart from the first portion 21. See FIG. 3. The width D1 of the first branch 20 is in the range of 1 to 4 mm. For example, the width D1 of the first branch 20 may be 1 mm, 2 mm, 3 mm, 4 mm, or a different width. The current path length of the first branch 20 is 1 / 4 of the wavelength corresponding to the operating band of the antenna, or 0.15 to 0.35 times the wavelength, e.g., 0.15, 0.2, 0.25, 0.3, or 0.35 times the wavelength. As shown in FIG. 3, the current path length L1 of the first branch 20 is equal to the sum of the length L2 of the first portion 21 and the length L3 of the second portion 22, i.e., L1 = L2 + L3. When connected to the balun structure 10, the third end c of the first portion 21 is connected to the first end a of the first structure 11, and the second portion 22 is parallel or nearly parallel to the first structure 11. See FIGS. 1 and 3. The first branch 20 has a first slot 40 between the second portion 22 and the first structure 11. The width H1 of the first slot 40 is in the range of 0.5 to 4 mm so that a stable first horizontal radiation electric field can be formed between the first branch 20 and the first structure 11. For example, the width H1 of the first slot 40 may be 0.5 mm, 1 mm, 1.5 mm, 2 mm, 2.5 mm, 3 mm, 3.5 mm, 4 mm, or another different width.

[0030] FIG. 4 shows the structure of the second branch 30. The second branch 30 shown in FIG. 4 has an inverted L-shaped structure. For ease of explanation, the second branch 30 is divided into a third portion 31 and a fourth portion 32. The third portion 31 and the fourth portion 32 are integrally formed. The length direction of the third portion 31 is in the second direction, and the third portion 31 has a third end e separated from the fourth portion 32. The length direction of the fourth portion 32 is in the first direction, and the fourth portion 32 has a fourth end f separated from the third portion 31. See FIG. 4. The width D2 of the second branch 30 is in the range of 1 to 4 mm. For example, the width D2 of the second branch 30 may be 1 mm, 2 mm, 3 mm, 4 mm, or a different width. The current path length of the second branch 30 is 1 / 4 of the wavelength corresponding to the antenna's operating band, or 0.15 to 0.35 times the wavelength, e.g., 0.15, 0.2, 0.25, 0.3, or 0.35 times the wavelength. As shown in FIG. 4, the current path length L4 of the second branch 30 is equal to the sum of the length L5 of the third portion 31 and the length L6 of the fourth portion 32, i.e., L4 = L5 + L6. When connected to the balun structure 10, the third end e of the third portion 31 is connected to the second end b of the second structure 12, and the fourth portion 32 is parallel or nearly parallel to the second structure 12. A second slot 50 is present between the fourth portion 32 and the second structure 12. The width H2 of the second slot 50 is in the range of 0.5 to 4 mm so that a stable second horizontal radiation electric field can be formed between the second branch 30 and the second structure 12. For example, the width H2 of the second slot 50 may be 0.5 mm, 1 mm, 1.5 mm, 2 mm, 2.5 mm, 3 mm, 3.5 mm, 4 mm, or another different width.

[0031] When the first branch 20 and the second branch 30 are specifically arranged, it should be understood that the first branch 20 and the second branch 30 may be exactly the same or substantially the same. For example, in the structure shown in FIG. 3, the first branch 20 and the second branch 30 are symmetric structures. Therefore, the structures of the first branch 20 and the second branch 30 satisfy D1 = D2, L1 = L4, L2 = L5, and L3 = L6. When the first branch 20 is substantially equal to the second branch 30, both the first branch 20 and the second branch 30 are L-shaped, and only the sizes are different. For example, when L3 and L6 are not the same, L3 > L6 or L3 < L6. Regarding the widths of the first slot 40 and the second slot 50, the first slot 40 and the second slot 50 may have equal widths or substantially equal widths to ensure that a stable electric field can be formed between the structures located on the two sides of the slot (between the first structure 11 and the second part 22, and between the fourth part 32 and the second structure 12).

[0032] In the above-mentioned structure, the antenna has two modes: the dipole mode and the slot mode. The dipole mode is implemented using the first part 21 and the third part 31 in the two radiating branches of the antenna and the third structure 13 in the balun structure 10. The slot mode is implemented using the second part 22 in the radiating branch, the first structure 11, and the first slot 40 between them, and the fourth part 32 in the radiating branch, the second structure 12, and the second slot 50 between them. To facilitate the understanding of the two modes of the antenna provided in this embodiment of the present application, the antenna provided in this embodiment of the present application will be described below with reference to the current figure of the antenna.

[0033] FIG. 5 is a schematic diagram of currents generated when an antenna operates at 2.4 G according to an embodiment of the present application. From the current diagram shown in FIG. 5, it can be seen that the current includes currents in a first direction and currents in a second direction. In FIG. 5, currents flowing in the first direction are indicated by dashed arrows, and currents flowing in the second direction are indicated by solid arrows. From FIG. 5, it can be seen that the current flowing in the first direction includes four parts: current I1 flowing through the second portion 22, current I2 flowing through the first structure 11, current I3 flowing through the second structure 12, and current I4 flowing through the fourth portion 32. Current I1 and current I2 are present on two sides of the first slot 40, respectively. Current I3 and current I4 are present on two sides of the second slot 50, respectively. Current I1 and current I2 form a first horizontal radiation field within the first slot 40. The first horizontal radiation field points from the first branch 20 to the balun structure 10. The currents I3 and I4 form a second horizontal radiation field in the second slot 50. The second horizontal radiation field points from the balun structure 10 to the second branch 30. In this way, a slot mode is generated between the branch and the balun structure 10, and a corresponding compensation is performed on the coverage of the antenna in the horizontal plane (parallel to the plane for placing the antenna or the plane on which the antenna is located) to ensure that the antenna pattern circularity of the antenna is about 8 dB in the horizontal plane.

[0034] Please refer to Figure 5. The current flowing in the second direction includes three parts: current I5 flowing in the first portion 21, current I6 flowing in the third structure 13, and current I7 flowing in the third portion 31. From Figure 5, it can be seen that current I5, current I6, and current I7 all flow in the second direction and have the same flow direction. Currents I5, I6, and I7 form the current flow direction of the antenna in dipole mode and form a directional pattern mainly in the vertical plane (a plane perpendicular to the horizontal plane).

[0035] FIG. 6 is a schematic diagram of the current generated when the antenna operates in 5G. The circles indicate that the current has an opposite flow direction at this point. A horizontal electric field may also be generated in the first slot between the first portion of the balun structure 10 and the first branch 20. A horizontal electric field may also be generated in the second slot between the second portion of the balun structure 10 and the second branch 30. In this way, a slot mode is generated between the branches and the balun structure 10, and corresponding compensation is performed on the antenna's coverage in the horizontal plane (parallel to the plane for placing the antenna or the plane on which the antenna is located) to ensure that the antenna's antenna pattern circularity is approximately 8 dB in the horizontal plane.

[0036] 5 and 6, it can be seen that the antenna provided in this embodiment of the present application can have good antenna pattern circularity on the horizontal and vertical planes. In order to demonstrate the effect of the antenna provided in this embodiment of the present application, a specific example will be used below to provide a comparison with antennas in the prior art.

[0037] FIG. 7 shows the structure of an antenna according to an embodiment of the present application. In addition to the antenna 100 provided in the previous embodiment of the present application, the antenna structure shown in FIG. 7 further includes a cable 200 connected to the antenna 100. FIG. 8 shows a dipole antenna 300 in the prior art. The antenna 300 only includes two symmetrical radiators 301 and a feeder configured to feed the radiators. Simulations are performed for the two antennas shown in FIGS. 7 and 8. FIG. 9 shows the 3D directivity pattern of the antenna 100 provided in this embodiment of the present application. FIG. 10 shows the 3D directivity pattern of the antenna 300 shown in FIG. 8. "Directivity sum" refers to the directivity coefficient of the antenna. From FIG. 9, it can be seen that the 3D directivity pattern of the antenna 100 provided in this embodiment of the present application is a dipole-like directivity pattern, with relatively low directivity and a relatively large minimum gain. From FIG. 10, it can be seen that the 3D directional pattern of the antenna 300 shown in FIG. 8 is a dipole-like directional pattern, with a relatively clear concave point and asymmetrical shape. From a comparison between FIG. 9 and FIG. 10, it can be seen that the 3D directional pattern of the antenna provided in this embodiment of the present application is clearly superior to the 3D directional pattern of the antenna in FIG. 8. A comparison is made between FIG. 11 and FIG. 12. FIG. 11 shows the circularity of the antenna pattern on the horizontal plane of the antenna provided in this embodiment of the present application. FIG. 12 shows the circularity of the antenna pattern on the horizontal plane of the antenna 300 shown in FIG. 8. "Gain vs. angle" is a comparison between gain and angle. From FIG. 11, it can be seen that in the directional pattern on the horizontal plane of the antenna provided in this embodiment of the present application, the concave area on the horizontal plane of the antenna provided in this embodiment of the present application is relatively small, and the directional pattern over the entire horizontal plane is nearly circular. From Figure 12, it can be seen that there is an apparent concave area and an apparent sharpness defect at the 25° position in the diagram of the antenna pattern circularity on the horizontal plane of the antenna shown in Figure 8. This reduces the radiation performance of the antenna on the horizontal plane. From a comparison between Figures 11 and 12, it can be seen that the antenna provided in this embodiment of the present application improves the antenna pattern circularity of the antenna on the horizontal plane and improves the antenna performance. A comparison is made between Figures 13 and 14.FIG. 13 is a standing wave diagram of the antenna provided in this embodiment of the present application. FIG. 14 is a standing wave diagram of the antenna shown in FIG. 8. "|S11| vs. frequency" indicates echo loss vs. frequency. In FIGS. 13 and 14, the horizontal axis is frequency and the vertical axis is echo loss. From FIG. 13, it can be seen that the standing wave of the antenna provided in this embodiment of the present application can cover all frequencies in 2.4G and 5G. From FIG. 14, it can be seen that the standing wave of the antenna in the prior art has a relatively large number of resonant frequencies and cannot cover all frequencies in 2.4G and 5G Wi-Fi. Comparing FIG. 13 and FIG. 14, it can be seen that the antenna provided in this embodiment of the present application has good performance in the 2.4G and 5G Wi-Fi bands.

[0038] Figure 15 shows the efficiency of the antenna provided in this embodiment of the present application. "Efficiency vs. Frequency" is the comparison of efficiency and frequency. In Figure 15, the abscissa is frequency and the ordinate is efficiency. From Figure 15, it can be seen that the antenna performance provided in this embodiment of the present application has good efficiency in 2.4G and 5G Wi-Fi.

[0039] FIG. 16 shows another antenna 400 for comparison. The antenna shown in FIG. 16 includes a balun structure 401 and two dipoles 402 connected to the balun structure 401. However, there is no slot coupling between the antenna dipole and the balun structure shown in FIG. 16. A comparison is made between the antenna shown in FIG. 7 and the antenna shown in FIG. 16. In comparison with FIG. 1, reference is made to FIGS. 9 and 17. FIG. 9 shows the 3D directional pattern of the antenna provided in this embodiment of the present application. FIG. 17 shows the 3D directional pattern of the antenna shown in FIG. 16. From FIG. 9, it can be seen that the 3D directional pattern of the antenna provided in this embodiment of the present application is a directional pattern of a dipole-like form. From FIG. 17, it can be seen that the 3D directional pattern of the antenna shown in FIG. 16 is a directional pattern of a standard dipole. From a comparison between FIG. 9 and FIG. 17, it can be seen that the 3D directional pattern of the antenna provided in this embodiment of the present application is clearly superior to the 3D directional pattern of the antenna in FIG. 16. Compare FIG. 11 with FIG. 18. FIG. 11 shows the directional pattern of the circular antenna pattern on the horizontal plane of the antenna provided in this embodiment of the present application. FIG. 18 shows the directional pattern of the circular antenna pattern on the horizontal plane of the antenna shown in FIG. 16. From FIG. 11, it can be seen that in the directional pattern of the circular antenna pattern provided in this embodiment of the present application, the concave area of ​​the antenna provided in this embodiment of the present application on the horizontal plane is relatively small, and the diagram of the circular antenna pattern over the entire horizontal plane is almost circular. From FIG. 18, it can be seen that in the diagram of the circular antenna pattern on the horizontal plane of the antenna shown in FIG. 16, there are apparent concave areas and apparent sharpness defects at 0° and 180°. This reduces the radiation performance of the antenna on the horizontal plane. From the comparison between FIG. 11 and FIG. 18, it can be seen that the antenna provided in this embodiment of the present application improves the circularity of the antenna pattern on the horizontal plane and improves antenna performance.

[0040] From the above description, it can be seen that in the antenna provided in this embodiment of the present application, a slot coupling is formed between the balun structure and the radiator, so that the antenna has two working modes: slot mode and dipole mode. The slot mode improves the radiation effect of the antenna in the horizontal direction and improves the antenna performance.

[0041] An embodiment of the present application further provides an antenna. The antenna includes a balun structure and a radiating portion. See FIGS. 1 and 2. The balun structure 10 is a U-shaped structure. The U-shaped structure includes a first structure 11, a second structure 12, and a third structure 13. The first structure 11 and the second structure 12 are disposed on two sides of the third structure 13 and are connected to two opposite ends of the third structure 13 in a one-to-one correspondence. The radiating portion includes a first branch 20 located on one side of the U-shaped structure and a second branch 30 located on the other side of the U-shaped structure. The first branch 20 has a first strip-shaped structure (second portion 22 in FIG. 3). The first strip-shaped structure and the first structure 11 are connected to each other and have a first slot 40 therebetween. The second branch 30 has a second strip-shaped structure (fourth portion 32 in FIG. 4). The second strip structure and the second structure 12 are connected to each other and have a second slot 50 therebetween. In the above technical solution, the alignment of the slot with the first branch 20 and the second branch 30 enhances both the horizontal and vertical radiation of the antenna and increases the circularity of the antenna pattern.

[0042] When the first branch 20 is specifically connected to the balun structure 10, the first branch 20 is an inverted L-shaped structure. The first branch 20 includes a first strip structure and a third strip structure (second portion 21 in FIG. 3 ) connected to the first strip structure. The first strip structure is connected to the first structure 11 using the third strip structure. The width of the first slot 40 is limited by the length of the third strip structure. The second branch 30 is an inverted L-shaped structure. The second branch 30 includes a second strip structure and a fourth strip structure (third portion 31 in FIG. 4 ) connected to the second strip structure. The second strip structure is connected to the second structure 12 using the fourth strip structure. The width of the first slot 40 is limited by the length of the fourth strip structure. A simulation of the antenna can be performed by referring to the above description.

[0043] FIG. 19 illustrates a device to which the antenna provided in this example of the present application is applied, according to one embodiment of the present application. The device may be a router, customer premises equipment (CPE), etc. Taking CPE as an example, the device includes a housing 400, a support layer 500 disposed within the housing 400, and an antenna 100 according to any of the above-described embodiments disposed on the support layer 500. The antenna 100 may be disposed horizontally, vertically, or diagonally on the CPE. The support layer 500 may be a circuit board or another structural layer having a supporting function in the CPE. In the antenna 100 provided in this example of the present application, a slot coupling is formed between the balun structure and the radiator, resulting in the antenna 100 having two operating modes: a slot mode and a dipole mode. The slot mode improves the radiation effect of the antenna 100 in the horizontal direction, improving the performance of the antenna 100.

[0044] The above description is merely a specific implementation of the present application and is not intended to limit the scope of protection of the present application. Any variations or replacements that can be easily conceived by those skilled in the art within the technical scope disclosed in the present application shall fall within the scope of protection of the present application. Therefore, the scope of protection of the present application shall be subject to the scope of protection of the claims. [Explanation of symbols]

[0045] 10 Balun structure 11 First Structure 12 Second Structure 13 Third Structure 14 First protrusion 15 Second protrusion 20 First Branch 21 First Part 22 Second Part 30 Second Branch 31 Third Part 32 Fourth Part 40 First Slot 50 Second Slot 60 Power supply point 70 Grounding point 100 Antennas 200 Cable 300 Antenna 300 dipole antenna 301 Radiator 400 Antenna, Housing 401 Balun structure 402 Dipole 500 supporters

Claims

1. An antenna, a balun structure including a first structure, a second structure, and a third structure, the first structure and the second structure being disposed on two sides of the third structure and connected to two opposite ends of the third structure in a one-to-one correspondence; a radiator including a first branch located on one side of the balun structure and a second branch located on the other side of the balun structure, the first branch comprising a first strip structure, the first strip structure and the first structure being connected to each other and having a first slot therebetween, and the second branch comprising a second strip structure, the second strip structure and the second structure being connected to each other and having a second slot therebetween; the antenna's operating bands include the 2.4 GHz Wi-Fi band and the 5 GHz Wi-Fi band; The width of each of the first slot and the second slot is in the range of 0.5 to 4 mm. antenna.

2. the first branch is an inverted L-shaped structure, and the first branch includes the first strip structure and a third strip structure connected to the first strip structure; The antenna of claim 1 , wherein the first strip structure is connected to the first structure using the third strip structure.

3. the second branch is an inverted L-shaped structure, and the second branch includes the second strip structure and a fourth strip structure connected to the second strip structure; The antenna of claim 1 , wherein the second strip structure is connected to the second structure using the fourth strip structure.

4. The antenna of claim 1 , wherein the width of each of the first branch and the second branch is in the range of 1 to 4 mm.

5. 5. The antenna of claim 4, wherein the width of the first slot is smaller than the width of the first branch, and the width of the second slot is smaller than the width of the second branch.

6. The antenna of claim 1 , wherein the balun structure further comprises a feed point and a ground point, the feed point being located on the first structure and the ground point being located on the second structure.

7. The antenna according to claim 6 , wherein one end of the first structure connected to the first branch is provided with a protrusion facing the second structure, and the feed point is located on the protrusion.

8. The antenna of claim 1 , wherein the first branch and the second branch are symmetrical.

9. a current path length of the first branch is 0.15 to 0.35 times a wavelength corresponding to the operating band of the antenna; 2. The antenna of claim 1, wherein the current path length of the second branch is between 0.15 and 0.35 times the wavelength corresponding to the operating band of the antenna.

10. 7. The antenna of claim 6, wherein a current path length from the ground point to the feed point of the balun structure is 1 / 2 of a wavelength corresponding to the operating band of the antenna.

11. An electronic device comprising an antenna according to any one of claims 1 to 10.

Citation Information

Patent Citations

  • NFC (Near Field Communication) electronic label antenna for use in access control system of parking lot

    CN204257813U

  • Coupled feeding built-in Wi-Fi antenna

    CN209104361U

  • Antenna

    JP1996250916A

  • Circularly polarized wave antenna

    JP2003309428A

  • Conformable antenna

    US20090284432A1