Antenna Assembly and Electronic Apparatus

An antenna assembly includes a first magnetic dipole antenna and a first electric dipole antenna, where a radiator of the first electric dipole antenna and a radiator of the first magnetic dipole antenna are connected to a first feed point, and the radiator of the first magnetic dipole antenna is perpendicular to the radiator of the first electric dipole antenna. The radiator of the first electric dipole antenna has a second feed point, and on the radiator of the first electric dipole antenna, the first feed point is connected to the second feed point.

This application claims priority to Chinese Patent Application No. 202011412536.6, filed with the China National Intellectual Property Administration on Dec. 4, 2020 and entitled “ANTENNA ASSEMBLY AND ELECTRONIC APPARATUS”, which is incorporated herein by reference in its entirety.

TECHNICAL FIELD

This application relates to the field of antenna technologies, and in particular, to an antenna assembly and an electronic apparatus.

BACKGROUND

In a current product, for example, a wireless router, to improve wireless fidelity (wireless fidelity, Wi-Fi) performance, two electric dipole antennas are cross-placed to form a dual-band Wi-Fi antenna, as shown inFIG.1toFIG.3. Horizontal coverage may be ensured by using complementarity. However, to improve antenna isolation, two curves in a corresponding antenna directivity diagram are perpendicular to each other, resulting in a poor degree of imbalance at a plurality of frequency points. The degree of imbalance refers to a maximum difference between two curves corresponding to two dipoles in the antenna directivity diagram, a larger difference indicates a poorer antenna imbalance degree, and a smaller difference indicates a better antenna imbalance degree. InFIG.2, a difference between a frequency point1and a frequency point2is 7.7 dB, that is, the two antennas inFIG.1have a poor imbalance degree, and the poor imbalance degree causes poor antenna performance, for example, a low throughput rate in some scenarios.

SUMMARY

The technical solutions of this application provide an antenna assembly and an electronic apparatus, to improve an imbalance degree while improving isolation, thereby improving antenna performance.

According to a first aspect, a technical solution of this application provides an antenna assembly, including:a first magnetic dipole antenna; anda first electric dipole antenna, where a radiator of the first electric dipole antenna and a radiator of the first magnetic dipole antenna are welded to a first feed point, and the radiator of the first magnetic dipole antenna is perpendicular to the radiator of the first electric dipole antenna; andthe radiator of the first electric dipole antenna has a second feed point, and on the radiator of the first electric dipole antenna, the first feed point is connected to the second feed point.

In a possible implementation, the first feed point includes a first end and a second end, and the second feed point includes a first end and a second end; andthe radiator of the first electric dipole antenna includes a first radiation patch, and the first radiation patch includes:a first stub, where the first stub has the first end of the first feed point;a second stub, where the second stub has the second end of the first feed point;a third stub, where the third stub has the first end of the second feed point;a fourth stub, where the fourth stub has the second end of the second feed point;a balun structure, where the balun structure is connected to the second stub, the third stub, and the fourth stub; anda shorted stub, where the first stub is connected to the balun structure by using the shorted stub.

In a possible implementation, the third stub includes a first strip portion and a second strip portion that are perpendicular to each other, one tail end of the first strip portion is the first end of the second feed point, and the other tail end of the first strip portion is connected to a tail end of the second strip portion;the fourth stub includes a third strip portion, a fourth strip portion, and a fifth strip portion, the third strip portion and the first strip portion are in a same straight line, a tail end, of the third strip portion, that is close to the first strip portion is the second end of the second feed point, a tail end, of the third strip portion, that is away from the first strip portion is connected to a tail end of the fourth strip portion, both the fourth strip portion and the fifth strip portion are perpendicular to the third strip portion, and the third strip portion is perpendicular to the radiator of the first magnetic dipole antenna;the balun structure includes a sixth strip portion, a seventh strip portion, and an eighth strip portion that are sequentially connected end to end, one tail end of the sixth strip portion is connected to the third strip portion, the other tail end of the sixth strip portion is connected to one tail end of the seventh strip portion, the other tail end of the seventh strip portion is connected to one tail end of the eighth strip portion, the other tail end of the eighth strip portion is connected to the second end of the second feed point, the sixth strip portion and the eighth strip portion are perpendicular to the first strip portion, and the seventh strip portion is parallel to the first strip portion;the balun structure, the second strip portion, the fourth strip portion, and the fifth strip portion are all on a same side as the first strip portion and the third strip portion;the fifth strip portion and the balun structure are located between the second strip portion and the fourth strip portion, and the fifth strip portion is located between the fourth strip portion and the balun structure; anda joint between the seventh strip portion and the eighth strip portion is connected to the first stub by using the shorted stub.

In a possible implementation, the first radiation patch further includes a fifth stub located between the eighth strip portion and the second strip portion, and the fifth stub is connected to the eighth strip portion.

In a possible implementation, the radiator of the first electric dipole antenna further includes a second radiation patch parallel to the first radiation patch, and the second radiation patch includes:a ninth stub, where the ninth stub is opposite to a part of the first stub, and the ninth stub is connected to the first end of the first feed point; anda tenth stub, where the tenth stub is opposite to parts of the sixth strip portion and the third strip portion, and the tenth stub is arranged floating in the air; anda first dielectric layer is arranged between the first radiation patch and the second radiation patch.

In a possible implementation, the radiator of the first magnetic dipole antenna includes a third radiation patch and a fourth radiation patch that are parallel to each other, and a second dielectric layer is arranged between the third radiation patch and the fourth radiation patch; andthe third radiation patch is welded to the first end of the first feed point of the first stub, and the fourth radiation patch is welded to the second end of the first feed point of the first stub.

In a possible implementation, the third radiation patch includes a first straight line extension portion, one tail end of the first straight line extension portion is connected to a first arc extension portion, the other tail end of the first straight line extension portion is connected to a second arc extension portion, the first arc extension portion and the second arc extension portion are respectively located on two opposite sides of a center of the first straight line extension portion, and a middle part of the first straight line extension portion is welded to the first end of the first feed point of the first stub:the fourth radiation patch includes a second straight line extension portion, one tail end of the second straight line extension portion is connected to a third arc extension portion, the other tail end of the second straight line extension portion is connected to a fourth arc extension portion, the third arc extension portion and the fourth arc extension portion are respectively located on two opposite sides of a center of the second straight line extension portion, and a middle part of the second straight line extension portion is welded to the second end of the first feed point of the second stub;an extension direction of the first straight line extension portion is parallel to an extension direction of the second straight line extension portion; andin a direction perpendicular to a plane on which the third radiation patch is located, an orthographic projection of the first arc extension portion extends from a first point to a second point, an orthographic projection of the third arc extension portion extends from the first point to a third point, the second point and the third point are respectively located on two opposite sides of the first straight line extension portion, an orthographic projection of the second arc extension portion extends from a fourth point to a fifth point, an orthographic projection of the fourth arc extension portion extends from the fourth point to a sixth point, the fifth point and the sixth point are respectively located on the two opposite sides of the first straight line extension portion, and the orthographic projections of the first arc extension portion, the second arc extension portion, the third arc extension portion, and the fourth arc extension portion form at least a part of an edge of a first circle.

In a possible implementation, the antenna assembly further includes: a second electric dipole antenna, where the radiator of the first electric dipole antenna is perpendicular to a radiator of the second electric dipole antenna.

In a possible implementation, the antenna assembly further includes: a second magnetic dipole antenna, where a radiator of the second magnetic dipole antenna is parallel to the radiator of the first magnetic dipole antenna.

In a possible implementation, the radiator of the first magnetic dipole antenna includes a third radiation patch and a fourth radiation patch that are parallel to each other, a second dielectric layer is arranged between the third radiation patch and the fourth radiation patch, and in a direction perpendicular to a plane on which the third radiation patch is located, orthographic projections of edges of the third radiation patch and the fourth radiation patch form at least a part of an edge of a first circle; andthe radiator of the second magnetic dipole antenna includes a fifth radiation patch and a sixth radiation patch that are parallel to each other, a third dielectric layer is arranged between the fifth radiation patch and the sixth radiation patch, both the fifth radiation patch and the sixth radiation patch include arc extension portions, in a direction perpendicular to the fifth radiation patch, orthographic projections of the arc extension portions of the fifth radiation patch and the sixth radiation patch form at least a part of an edge of a second circle, and a diameter of the second circle is less than a diameter of the first circle.

In a possible implementation, the radiator of the second magnetic dipole antenna has a third feed point, and the third feed point is located in a middle part of the second circle; andthe radiator of the first electric dipole antenna includes a first radiation patch and a second radiation patch parallel to the first radiation patch, a first dielectric layer is arranged between the first radiation patch and the second radiation patch, the second radiation patch includes a welding portion, the welding portion extends from the first feed point to the third feed point, and the second magnetic dipole antenna and the welding portion are welded to the third feed point.

According to a second aspect, a technical solution of this application provides an electronic apparatus, including the foregoing antenna assembly.

According to the antenna assembly and an electronic apparatus in embodiments of this application, the magnetic dipole antenna and the electric dipole antenna are vertically crossed, and radiators of the two antennas are welded at the first feed point in a welding manner, to form a co-ground design. In addition, the first feed point and the second feed point are connected, so that an imbalance degree is improved while isolation is improved, so that antenna performance is improved.

DESCRIPTION OF EMBODIMENTS

Terms used in embodiments of this application are only used to explain specific embodiments of this application, but are not intended to limit this application.

As shown inFIG.4toFIG.11, an embodiment of this application provides an antenna assembly, including: a first magnetic dipole antenna11; and a first electric dipole antenna21, where a radiator of the first electric dipole antenna21and a radiator of the first magnetic dipole antenna11are welded to a first feed point A1, the radiator of the first magnetic dipole antenna11and the radiator of the first electric dipole antenna21are radiators in a shape of plate, and the radiator of the first magnetic dipole antenna11is perpendicular to the radiator of the first electric dipole antenna21; and the radiator of the first electric dipole antenna21has a second feed point A2, and on the radiator of the first electric dipole antenna21, the first feed point A1is connected to the second feed point A2.

Specifically, the first magnetic dipole antenna11forms a ring current in a horizontal direction, similar to a magnetic current ring. The radiator of the first magnetic dipole antenna11and the radiator of the first electric dipole antenna21are integrated in a welding manner. In this way, the radiator of the first magnetic dipole antenna11and the radiator of the first electric dipole antenna21are fixed and electrically connected, that is, a co-ground design of the two antennas is implemented. The co-ground design may enable the two antennas to have a small clearance, and connect the first feed point A1to the second feed point A2, thereby ensuring a better balance between the two antennas. In addition, the radiator of the first magnetic dipole antenna11is perpendicular to the radiator of the first electric dipole antenna21, that is, a characteristic that antenna polarizations are perpendicular to each other is utilized, so that antenna performance is improved.

According to the antenna assembly in this embodiment of this application, the magnetic dipole antenna and the electric dipole antenna are vertically crossed, and radiators of the two antennas are welded at the first feed point in a welding manner, to form a co-ground design. In addition, the first feed point and the second feed point are connected, so that an imbalance degree is improved while isolation is improved, so that antenna performance is improved.

In a possible implementation, as shown inFIG.4toFIG.7, the first feed point A1includes a first end F and a second end G, and the second feed point A2includes a first end F and a second end G; and the radiator of the first electric dipole antenna21includes a first radiation patch31, and the first radiation patch31includes: a first stub41, where the first stub41has the first end F of the first feed point A1; a second stub42, where the second stub42has the second end G of the first feed point A1; a third stub43, where the third stub43has the first end F of the second feed point A2; a fourth stub44, where the fourth stub44has the second end G of the second feed point A2; a balun structure5, where the balun structure5is connected to the second stub42, the third stub43, and the fourth stub44; and a shorted stub6, where the first stub41is connected to the balun structure5by using the shorted stub6.

Specifically, the antenna in this embodiment of this application may be fed by using, for example, a coaxial cable or a transmission line in another form. The transmission line includes a signal cable and a ground cable, the signal cable is connected to one of the first end F and the second end G, and the ground cable is connected to the other of the first end F and the second end G. By using the balun structure5and the shorted stub6, the first feed point A1and the second feed point A2may be connected to each other, the first magnetic dipole antenna11and the first electric dipole antenna21may be grounded together, and antenna directivity coefficients of the two antennas are reduced and antenna isolation is improved. In addition, the single first stub41is added to a tail end of the balun structure5of the first electric dipole antenna21, so that horizontal radiation is enhanced. The first stub41may be configured to implement radiation of a 5G frequency band, and the shorted stub6between the first stub41and the balun structure5may be configured to ensure that a length of a current path between the first feed point A1and the second feed point A2is about ¼ wavelength. In this way, when the first feed point A1feeds power, a current of the second feed point A2is small, so that isolation between the two antennas in the 5G part is improved. Based on simulation analysis, an antenna structure in which the shorted stub6is not arranged and an antenna structure in which the shorted stub6is arranged are compared. After the shorted stub6is added, isolation between the two antennas in the 5G part is improved by about 5 dB.

In a possible implementation, as shown inFIG.4toFIG.7, the third stub43includes a first strip portion71and a second strip portion72that are perpendicular to each other, one tail end of the first strip portion71is the first end F of the second feed point A2, and the other tail end of the first strip portion71is connected to a tail end of the second strip portion72. The fourth stub44includes a third strip portion73, a fourth strip portion74, and a fifth strip portion75, the third strip portion73and the first strip portion71are in a same straight line, a tail end, of the third strip portion73, that is close to the first strip portion71is the second end G of the second feed point A2, a tail end, of the third strip portion73, that is away from the first strip portion71is connected to a tail end of the fourth strip portion74, both the fourth strip portion74and the fifth strip portion75are perpendicular to the third strip portion73, and the third strip portion73is perpendicular to the radiator of the first magnetic dipole antenna11; and the balun structure5includes a sixth strip portion76, a seventh strip portion77, and an eighth strip portion78that are sequentially connected end to end, one tail end of the sixth strip portion76is connected to the third strip portion73, the other tail end of the sixth strip portion76is connected to one tail end of the seventh strip portion77, the other tail end of the seventh strip portion77is connected to one tail end of the eighth strip portion78, the other tail end of the eighth strip portion78is connected to the second end G of the second feed point A2, the sixth strip portion76and the eighth strip portion78are perpendicular to the first strip portion71, and the seventh strip portion77is parallel to the first strip portion71; the balun structure5, the second strip portion72, the fourth strip portion74, and the fifth strip portion75are all on a same side as the first strip portion71and the third strip portion73; the fifth strip portion75and the balun structure5are located between the second strip portion72and the fourth strip portion74, and the fifth strip portion75is located between the fourth strip portion74and the balun structure5; and a joint between the seventh strip portion77and the eighth strip portion78is connected to the first stub4by using the shorted stub6.

In a possible implementation, as shown inFIG.4toFIG.7, the first radiation patch31further includes a fifth stub45located between the eighth strip portion78and the second strip portion72, and the fifth stub45is connected to the eighth strip portion78. The fifth stub45is configured to implement capacitive loading to adjust impedance.

In a possible implementation, as shown inFIG.4toFIG.7, the radiator of the first electric dipole antenna21further includes a second radiation patch32parallel to the first radiation patch31, and the second radiation patch32includes: a ninth stub49, where the ninth stub49is opposite to a part of the first stub41, and the ninth stub49is connected to the first end F of the first feed point A1; a tenth stub410, where the tenth stub410is opposite to parts of the sixth strip portion76and the third strip portion73, and the tenth stub410is arranged floating in the air, that is, the tenth stub410is not electrically connected to another radiator; and a first dielectric layer301is arranged between the first radiation patch31and the second radiation patch32.

Specifically, a first insertion groove310may be arranged on the first dielectric layer301. An extension direction of the first insertion groove310may be perpendicular to the first strip portion71, and the first insertion groove310extends inward from an edge of a side, of the first dielectric layer301, that is away from the first strip portion71, and extends through the first feed point A to a position close to the second stub42. The first insertion groove310is located between the first end F and the second end G that are of the first feed point A, so that the first magnetic dipole antenna11is inserted and respectively welded at the first end F and the second end G that are of the first feed point A.

In a possible implementation, as shown inFIG.4andFIG.8toFIG.11, the radiator of the first magnetic dipole antenna11includes a third radiation patch33and a fourth radiation patch34that are parallel to each other, and a second dielectric layer320is arranged between the third radiation patch33and the fourth radiation patch34. The third radiation patch33is welded to the first end F of the first feed point A1of the first stub41, and the fourth radiation patch34is welded to the second end G of the first feed point A1of the first stub41.

In a possible implementation, as shown inFIG.4andFIG.8toFIG.11, the third radiation patch33includes a first straight line extension portion81, one tail end of the first straight line extension portion81is connected to a first arc extension portion91, the other tail end of the first straight line extension portion81is connected to a second arc extension portion92, the first arc extension portion91and the second arc extension portion92are respectively located on two opposite sides of a center of the first straight line extension portion81, and a middle part of the first straight line extension portion81is welded to the first end F of the first feed point A1of the first stub41, in addition, the ninth stub49may be welded to the middle part of the first straight line extension portion81, so that the ninth stub49is connected to the first end F of the first feed point A1by using the first straight line extension portion81; the fourth radiation patch34includes a second straight line extension portion82, one tail end of the second straight line extension portion82is connected to a third arc extension portion93, the other tail end of the second straight line extension portion82is connected to a fourth arc extension portion94, the third arc extension portion93and the fourth arc extension portion94are respectively located on two opposite sides of a center of the second straight line extension portion82, and a middle part of the second straight line extension portion82is welded to the second end G of the first feed point A1of the second stub42; an extension direction of the first straight line extension portion81is parallel to an extension direction of the second straight line extension portion82; and in a direction perpendicular to a plane on which the third radiation patch33is located, an orthographic projection of the first arc extension portion91extends from a first point B1to a second point B2, an orthographic projection of the third arc extension portion93extends from the first point B1to a third point B3, the second point B2and the third point B3are respectively located on two opposite sides of the first straight line extension portion81, an orthographic projection of the second arc extension portion92extends from a fourth point B4to a fifth point B5, an orthographic projection of the fourth arc extension portion94extends from the fourth point B4to a sixth point B6, the fifth point B5and the sixth point B6are respectively located on the two opposite sides of the first straight line extension portion81, and the orthographic projections of the first arc extension portion91, the second arc extension portion92, the third arc extension portion93, and the fourth arc extension portion94form at least a part of an edge of a first circle.

Specifically, the third point B3and the fifth point B5may overlap, or may be spaced by a distance of one end, and the extension direction of the first straight line extension portion81may be perpendicular to the first strip portion71. A second insertion groove320may be arranged on the second dielectric layer302, and an extension direction of the second insertion groove320may be perpendicular to the extension direction of the first straight line extension portion81. The second insertion groove320extends inward from an edge of the second dielectric layer302to the middle part of the first straight line extension portion81and the second straight line extension portion82. The first magnetic dipole antenna11and the first electric dipole antenna21may be inserted into each other through the first insertion groove310and the second insertion groove320. After insertion, the first end F of the first feed point A1of the first stub41of the first electric dipole antenna21is adjacent to the middle part of the first straight line extension portion81of the first magnetic dipole antenna11, so that the two are welded together. After the insertion, the second end G of the first feed point A1of the second stub42of the first electric dipole antenna21is adjacent to the middle part of the second straight line extension portion82of the first magnetic dipole antenna11, so that the two are welded together.

The following describes an effect of the foregoing antenna assembly structure through a simulation result. As shown inFIG.12toFIG.17,FIG.12is a schematic diagram of current simulation of the first magnetic dipole antenna inFIG.4toFIG.11at 2.45 GHz,FIG.13is a schematic diagram of current simulation of the first electric dipole antenna inFIG.4toFIG.11at 5 GHz,FIG.14is a schematic diagram of current simulation of the first magnetic dipole antenna inFIG.4toFIG.11at 5.6 GHz,FIG.15is a schematic diagram of current simulation of the first electric dipole antenna inFIG.4toFIG.11at 2.45 GHz,FIG.16is a schematic diagram of current simulation of the first electric dipole antenna inFIG.4toFIG.11at 5.5 GHz. andFIG.17is a schematic diagram of current simulation of the first electric dipole antenna inFIG.4toFIG.11at 6 GHz. InFIG.12toFIG.17, an arrow indicates a current direction, and a symbol “x” indicates a reverse point of the current, that is, the current is reversed at “x”. According to the schematic diagrams of current simulation, it can be learned that most current of the first magnetic dipole antenna flows in a horizontal direction, and most current the first electric dipole antenna flows in a vertical direction, that is, vertical polarization of the two antennas is ensured. As shown inFIG.18toFIG.21,FIG.18is a directivity diagram of a first magnetic dipole inFIG.4toFIG.11at 2.45 GHz,FIG.19is a directivity diagram of a first magnetic dipole inFIG.4toFIG.11at 5 GHz,FIG.20is a directivity diagram of a first electric dipole inFIG.4toFIG.11at 2.45 GHz, andFIG.21is a directivity diagram of a first electric dipole inFIG.4toFIG.11at 5 GHz; As shown inFIG.22andFIG.23,FIG.22is a combined directivity diagram of the antenna assembly inFIG.4toFIG.11at 2.4 GHz, andFIG.23is a schematic diagram of an S parameter curve of the antenna assembly inFIG.4toFIG.11. InFIG.22, a solid line and a dotted line are directivity diagram curves of the two antennas. Frequency1and frequency2are the positions with the maximum distance between the two curves. The difference between the two curves is an imbalance degree of the antenna, which is 3.6 dB. In addition, from the directivity diagram curve of the same antenna inFIG.22, it can be learned that out-of-roundness of the antenna on a horizontal plane is good, and the out-of-roundness refers to a difference between a maximum value and a minimum value in a horizontal plane direction of the antenna. It can be learned fromFIG.23that the two antennas can cover 2.4 GHz and 5 GHz dual-band resonance, to implement dual-band coverage.

In a possible implementation, as shown inFIG.24toFIG.26, the antenna assembly further includes: a second electric dipole antenna22, where the radiator of the first electric dipole antenna21is perpendicular to a radiator of the second electric dipole antenna22. For example, two electric dipole antennas may be placed in a cross manner, and any two of the three antennas are perpendicular to each other when the two electric dipole antennas are placed in a cross manner with the magnetic dipole antenna, to implement high isolation among the three antennas. A specific structure of the first electric dipole antenna21may be similar to that in the foregoing embodiment, and a specific structure of the first magnetic dipole antenna11may be similar to that in the foregoing embodiment, and details are not described herein again. For example, the first electric dipole antenna21inFIG.25has a first welding point C1and a second welding point C2, and the first electric dipole antenna21is welded to the first magnetic dipole antenna11at the first welding point C1and the second welding point C2. One of the first welding point C1and the second welding point C2is the first feed point, and the first electric dipole antenna21and the first magnetic dipole antenna11may form a co-ground structure through welding. The second electric dipole antenna22inFIG.26has a third welding point C3and a fourth welding point C4, and the second electric dipole antenna22is welded to the first magnetic dipole antenna11at the third welding point C3and the fourth welding point C4. One of the third welding point C3and the fourth welding point C4is a feed point, and the second electric dipole antenna22and the first magnetic dipole antenna11may form a co-ground structure through welding.

In a possible implementation, as shown inFIG.27toFIG.31, the radiator of the first magnetic dipole antenna11includes a third radiation patch and a fourth radiation patch that are parallel to each other, a second dielectric layer is arranged between the third radiation patch and the fourth radiation patch, and in a direction perpendicular to a plane on which the third radiation patch is located, orthographic projections of edges of the third radiation patch and the fourth radiation patch form at least a part of an edge of a first circle O1. For a specific structure of the first magnetic dipole antenna11, refer to structures and related descriptions shown inFIG.8toFIG.11. The radiator of the second magnetic dipole antenna12includes a fifth radiation patch35and a sixth radiation patch36that are parallel to each other, a third dielectric layer is arranged between the fifth radiation patch35and the sixth radiation patch36, both the fifth radiation patch35and the sixth radiation patch36includes an arc extension portion, in a direction perpendicular to the fifth radiation patch35, orthographic projections of arc extension portions of the fifth radiation patch35and the sixth radiation patch36form at least a part of an edge of a second circle O2, and a diameter of the second circle O2is less than a diameter of the first circle O1.

In a possible implementation, as shown inFIG.27toFIG.31, the radiator of the second magnetic dipole antenna12has a third feed point A3, and the third feed point A3is located in a middle part of the second circle O2; and the radiator of the first electric dipole antenna21includes a first radiation patch31and a second radiation patch32parallel to the first radiation patch31, a first dielectric layer301is arranged between the first radiation patch31and the second radiation patch32, the second radiation patch32includes a welding portion, the welding portion extends from the first feed point A1to the third feed point A3, and the second magnetic dipole antenna12and the welding portion are welded to the third feed point A3. That is, the first electric dipole antenna21and the first magnetic dipole antenna11are welded to the first feed point A1to form a co-ground structure of the two, and the first electric dipole antenna21and the second magnetic dipole antenna12are welded to the third feed point A3to form a co-ground structure of the two. A specific structure of the first electric dipole antenna21may be the same as or slightly different from the structure in the foregoing embodiment. In structures shown inFIG.27toFIG.31, for example, 5G single-band vertical polarization may be implemented by using the first electric dipole antenna21to cover a horizontal plane, and 2.4G single-band horizontal polarization may be implemented by using the first magnetic dipole antenna11. 5G single-frequency horizontal polarization is implemented by using the second magnetic dipole antenna12, and the three are designed in a staggered community to achieve high isolation.

An embodiment of this application further provides an electronic device, including the antenna assembly in the foregoing embodiments. A specific structure and principle of the antenna assembly are not described again. The electronic device may be specifically a wireless router or the like.

In embodiments of this application, “at least one” means one or more, and “a plurality of” means two or more. The term “and/or” describes an association relationship between associated objects, and indicates that there may be three relationships. For example, A and/or B may indicate the following cases: There is only A, there are both A and B, and there is only B. A and B may be singular or plural. The character “/” generally indicates an “or” relationship between the associated objects. “At least one of the following items” or a similar expression indicates any combination of these items, including a single item or any combination of a plurality of items. For example, at least one of a, b, and c may indicate: a, b, c, a-b, a-c, b-c, or a-b-c, where a, b, and c may be one or more.

The foregoing descriptions are merely preferred embodiments of this application, but are not intended to limit this application. For a person skilled in the art, various modifications and variations may be made in this application. Any modification, equivalent replacement, or improvement made without departing from the spirit and principle of this application shall fall within the protection scope of this application.