The present application relates to the technical field of antennas, and more specifically, to an antenna system.
Antennas are widely used in mobile terminals such as mobile phones. The main reasons for the coupling between antennas include space wave coupling, surface wave coupling and common ground current coupling, etc. The currently proposed decoupling solutions for many mobile phone terminal MIMO (Multi Input Multi Output) antennas, such as polarization decoupling, introduction of an EBG (electromagnetic band gap) structure, ground plane slotting, addition of decoupling branches to ground plane, etc., have shortcomings such as the too large decoupling structure, the complex structure and only decoupling of a single frequency point, and thus cannot be imported into real mobile phones. In addition, the common ground current leads to multi-band mutual coupling and affects the antenna performance.
The technical problem to be solved by the present invention is to provide an antenna system in order to overcome the defect of multi-band mutual coupling caused by a common ground current in antennas in the prior art.
The present invention solves the foregoing technical problem through the following technical solutions:
The present invention provides an antenna system, comprising an antenna unit and a metal cavity corresponding to the antenna unit. The metal cavity is grounded and provided with an opening connected with the outside.
In an embodiment, the area covered by the metal cavity is larger than or equal to the area corresponding to the antenna unit.
In an embodiment, the antenna system further comprises a substrate. The antenna unit is arranged on one surface of the substrate, and the metal cavity is arranged on the other surface of the substrate.
In an embodiment, the antenna unit is arranged in a predetermined layout area of the substrate. The predetermined layout area is close to a side edge of the substrate.
In an embodiment, the predetermined layout area is close to two adjacent side edges of the substrate.
In an embodiment, the two adjacent side edges of the substrate are perpendicular to each other.
In an embodiment, the metal cavity comprises a first metal wall, a second metal wall and a third metal wall. The first metal wall, the second metal wall and the third metal wall are connected in pairs to form a cover-like structure. The cover-like structure and the substrate surround a cavity space.
In an embodiment, the predetermined layout area is a rectangle, and the predetermined layout area comprises a first edge and a second edge. The first edge and the second edge are adjacent and perpendicular to each other. The first metal wall is vertically connected with the substrate, the second metal wall is vertically connected with the substrate, and the first metal wall is vertically connected with the second metal wall. A connection portion between the first metal wall and the substrate corresponds to the first edge, and a connection portion between the second metal wall and the substrate corresponds to the second edge. The opening faces the outside of the substrate.
In an embodiment, the third metal wall is a rectangle, and the third metal wall is vertically connected with the first metal wall and the second metal wall, respectively.
In an embodiment, a distance between the third metal wall and the substrate is 3-6 mm.
In an embodiment, the substrate is provided with a ground plane. The ground plane covers an area of the back surface of the substrate which is not surrounded by the metal cavity.
In an embodiment, the number of the antenna units is 2, and the number of the metal cavities is 2.
In an embodiment, the two antenna units are symmetrically arranged, and the two metal cavities are symmetrically arranged.
In an embodiment, the antenna unit is an IFA (inverted-F antenna) antenna unit.
In an embodiment, the frequency band corresponding to the antenna unit covers the sub-6G (a communication frequency band) N1/N41 frequency bands.
The positive effect of the present invention lies in that the present invention solves the problem of multi-band mutual coupling caused by a common ground current by using the cavity filter structure with a small size.
The present application will be further illustrated through Examples below. However, the present application is not intended to be limited to the scope of the
The present Example provides an antenna system. The antenna system is applicable to a mobile terminal such as a mobile phone. With reference to
During specific implementation, the antenna system further comprises a substrate 13. The antenna unit 11 is arranged on a front surface 131 of the substrate 13, and the metal cavity 12 is arranged on a back surface 132 of the substrate 13. The substrate 13 is made of insulating material such as epoxy resin.
The antenna unit 11 is arranged in a predetermined layout area 133 of the substrate 13. The predetermined layout area 133 and the metal cavity 12 are correspondingly arranged in the same corner area of the substrate 13, i.e., the corner area formed by a first side edge 134 and a second side edge 135 of the substrate 13.
As an alternative example, the metal cavity 12 comprises a first metal wall 122, a second metal wall (not shown), and a third metal wall 123. The first metal wall 122, the second metal wall and the third metal wall 123 are connected in pairs to form a cover-like structure, and the cover-like structure and the substrate 13 surround a cavity space.
In an alternative example, the predetermined layout area 133 is a rectangle, and the predetermined layout area 133 comprises a first edge 1331 and a second edge 1332. The first edge 1331 and the second edge 1332 are adjacent and perpendicular to each other. The first metal wall 122 is vertically connected with the substrate 13, the second metal wall is vertically connected with the substrate 13, and the first metal wall 122 is vertically connected with the second metal wall. A connection portion between the first metal wall 122 and the substrate 13 corresponds to the first edge 1331, and a connection portion between the second metal wall and the substrate 13 corresponds to the second edge 1332. The opening faces the outside of the substrate 13. As an alternative example, the third metal wall 123 is planar, and the third metal wall 123 is vertically connected with the first metal wall 122 and the second metal wall, respectively, i.e., the third metal wall 123 is parallel to the substrate 13. The third metal wall 123 is a rectangle, with a dimension matching with that of the predetermined layout area 133. The area covered by the metal cavity 12 is larger than or equal to the area corresponding to the antenna unit 11, thereby forming a better cavity filter function.
As an alternative example, a distance H between the third metal wall 123 and the substrate 13 is 4 mm. In other alternative examples, the distance between the third metal wall and the substrate is preferably in a range of 3 to 6 mm, more preferably 4 to 5 mm.
In the present Example, a length W of the first metal wall 122 is 16 mm. In other alternative examples, the length of the first metal wall may be reasonably set according to actual needs.
In the present Example, a length L3 of the substrate 13 is 136 mm, and a width L4 of the substrate 13 is 68.8 mm.
In another alternative example, the predetermined layout area is close to one side edge of the substrate. In other alternative examples, the position of the predetermined layout area may be reasonably set according to actual needs, and the metal cavity is arranged on the other surface of the substrate at a position corresponding to the position of the predetermined layout area.
In the present Example, the antenna unit 11 is an IFA antenna unit. The frequency band corresponding to the antenna unit 11 covers the sub-6G N1/N41 frequency bands. The antenna unit 11 adopts a microstrip line and is attached to the surface of the substrate.
In an example, the substrate 13 is provided with a ground plane, which is a metal layer. The ground plane covers an area of the back surface of the substrate 13 which is not surrounded by the metal cavity, and the ground plane is grounded. The first metal wall 122 and the second metal wall are connected with the ground plane and thus grounded.
Based on the antenna system in Example 1, the present Example provides an antenna system. With reference to
As an alternative example, the two antenna units 11 are symmetrically arranged, and the two metal cavities 12 are symmetrically arranged.
According to the analysis on current distribution of the antenna system in the metal cavity 12 at different frequencies, in the 1.9 GHz and 2.6 GHz frequency bands, the current on the metal ground behind the excited antenna is basically concentrated on the metal cavity 12. Therefore, by introducing the metal cavity, the coupling problem caused by a common ground current in the antenna unit 11 is solved, and the isolation is increased.
In another alternative example, the two antenna units are asymmetrical, and the two metal cavities are arranged corresponding to the two antenna units, respectively.
Although specific embodiments of the present application have been described above, those skilled in the art should understand that this is merely for illustration, and the protection scope of the present application is defined by the appended claims. Those skilled in the art may make various changes or modifications to these embodiments without departing from the principles and essence of the present application, and all of these changes and modifications fall within the protection scope of the present application.
Number | Date | Country | Kind |
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202010507913.8 | Jun 2020 | CN | national |
This application claims benefit under 35 U.S.C. 119, 120, 121, or 365(c), and is a National Stage entry from International Application No. PCT/CN2020/142399, filed Dec. 31, 2020, which claims priority to the benefit of Chinese Patent Application No. 202010507913.8 filed in the Chinese Intellectual Property Office on Jun. 5, 2020, the entire contents of which are incorporated herein by reference.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2020/142399 | 12/31/2020 | WO |