The disclosure relates to an antenna technology, and in particular, to a multi-polarized antenna apparatus, a communication apparatus, and a steering adjustment method thereof.
Electromagnetic waves emitted by an antenna may form an electric field and a magnetic field, and a direction of the electric field is an antenna polarized direction. The electromagnetic waves that may be received and/or emitted by antennae with different polarization characteristics may be different because of different antenna polarized directions. However, if an antenna polarized direction is different from a direction where an electromagnetic wave is received, polarization loss may be caused. In recent years, antenna designs capable of forming electromagnetic waves in multiple electric field directions have been proposed in the industry and by researchers. For controlling designated directions of antenna beams in the elevation and the azimuth, a plurality of antenna elements may be combined in part of designs. However, such designs may greatly enlarge the arrangement area of an antenna structure and further make it inapplicable to an electronic device with a compact design.
In view of this, embodiments of the disclosure provide an antenna apparatus, a communication apparatus, and a steering adjustment method thereof. The area of an antenna structure may be reduced, and a relatively good antenna effect may be achieved.
An antenna apparatus of the embodiments of the disclosure includes an antenna structure. The antenna structure includes an antenna unit. The antenna unit includes i feeding ports, where i is a positive integer larger than 2. A vector of each feeding port is controlled independently.
A communication apparatus of the embodiments of the disclosure includes the aforementioned antenna apparatus and a controller. The controller is electrically connected to the antenna apparatus. The controller is configured to execute the following steps: the vectors of the feeding ports are set according to a designated direction, and the designated direction corresponds to beam directionality of the antenna structure.
According to another aspect, a steering adjustment method of the embodiments of the disclosure is applied to an antenna structure. The steering adjustment method includes the following steps: providing an antenna unit in the antenna structure, wherein each antenna unit includes i feeding ports and i is a positive integer larger than 2; determining a designated direction, wherein the designated direction corresponds to beam directionality of the antenna structure; and setting vectors of the feeding ports of the antenna unit according to the designated direction, wherein the vector of each feeding port of the antenna unit is controlled independently.
Based on the above, according to the antenna apparatus, the communication apparatus and the steering adjustment method thereof of the embodiments of the disclosure, a multi-polarized antenna unit capable of controlling a feeding signal vector independently/separately is provided. One or more antenna units form an antenna array structure, and for such an antenna structure, vector configurations corresponding to different polarized directions may be set individually to form beams facing the designated direction. Compared with the conventional art, the embodiments of the disclosure have the advantages that the antenna size is relatively small but a similar or better effect may be achieved.
In order to make the aforementioned advantages of the disclosure comprehensible, embodiments accompanied with figures are described in detail below.
The antenna apparatus 110 includes an antenna structure 111. The antenna structure 111 includes one or more antenna units 112. Each antenna unit 112 at least includes a radiation portion (not shown in the figure) and feeding ports f1 to fi. It is to be noted that a shape or type of the radiation portion is not limited in the embodiment of the disclosure and it may be designed according to a practical requirement to support any communication system (for example, a wireless local area network (WLAN) and various wireless wide area networks (WWAN) (for example, 4th-generation, 5th-generation or next-generation mobile communication)) and support any one or more frequency bands.
It is to be noted that each antenna unit 112 in the embodiment of the disclosure includes more than two feeding ports f1 to fi (namely i is a positive integer larger than 2).
The feeding signals α and γ of the feeding ports f1 and f3 and the feeding signals β and δ of the feeding ports f2 and f4 are configured to form beams in two polarized directions that are mutually orthogonal respectively. For example,
In the embodiment of the disclosure, different antenna designs may also be proposed for other directions, besides the 0-degree and 90-degree polarized directions.
For further improving the antenna efficiency, the antenna structure 111-1 of the first embodiment may be further extended.
Referring to both
It is to be noted that the embodiment of the disclosure is not limited to the polarized directions D1 to D4 shown in
Referring to
The controller 150 is electrically connected to the antenna apparatus 110 and the adjustment circuit 130. The controller 150 may be a central processing unit (CPU), or another programmable microprocessor for a general purpose or a special purpose, a digital signal processor (DSP), a programmable controller, an ASIC or another similar component or a combination of the components. In the embodiment of the disclosure, the controller 150 is used for executing all operations of the communication apparatus 100 and may load and execute various software programs/modules, documents and data.
For conveniently understanding an operating flow of the embodiment of the disclosure, a running flow of the communication apparatus 100 in the embodiment of the disclosure will be described with a plurality of embodiments in detail. The method of the embodiment of the disclosure will be described below in combination with each element and module of the communication apparatus 100 in
Then, the controller 150 sets vectors of the feeding ports f1 to fi of the antenna unit 112 in the antenna apparatus 110 according to the designated direction (S630). In the embodiment of the disclosure, the vectors of the feeding ports f1 to fi of the antenna unit 112 may be controlled independently/separately. Independent control refers to that a vector configuration of any one of the feeding ports f1 to fi may be adjusted individually according to the requirement regardless of the vectors of the other feeding ports f1 to fi. In addition, there is no linear relationship between adjustment over the vectors of any one of the feeding ports f1 to fi and another of the feeding ports f1 to fi. For example, a phase difference between the feeding ports f1 and f3 is a variable value; or, only the vector of the feeding port f2 is adjusted. Moreover, by use of the antenna structures 111-1 to 111-6 (at least including the 1×1 antenna unit 112) shown in
In an embodiment, orientations of the beams formed by the antenna structure 111 form corresponding relationships with the vector configurations of the feeding ports f1 to fi. The controller 150 may record different assumed directions corresponding to the vector configurations of the feeding ports f1 to fi of the antenna unit 112 in advance. The corresponding relationships may be obtained by experience or other references. Then, the controller 150 determines the vector configuration corresponding to at least one assumed direction according to the designated direction selected in S710. For example, when the designated direction is equal to a certain assumed direction, the controller 150 may set the vectors of the feeding ports f1 to fi according to the vector configurations of the feeding ports f1 to fi corresponding to the assumed direction in the corresponding relationships. Or, when the designated direction is between two assumed directions, the controller 150 may set the vectors of the feeding ports f1 to fi according to the vector configurations corresponding to the two assumed directions in the corresponding relationships.
For example, Table (1) presents corresponding relationships in the 0/90-degree polarized direction in the antenna structure 111-1 of the first embodiment (the feeding ports f1 and f3 are controlled).
Based on the determined designated direction, the controller 150 may adjust phases of the feeding signals α and γ of the antenna unit 112-1 and accordingly adjust the directions of the antenna beams in the elevation. For example, the antenna beams are toward the top and the bottom.
In addition, beam directions in a plurality of directions may be formed only by controlling the vectors of the feeding ports f1 and f3 in a single polarized direction (adjustment over the vectors of the feeding ports f2 and f4 in another polarized direction is disabled/avoided/stopped).
Table (2) presents corresponding relationships in the 0/90-degree polarized direction in the antenna structure 111-1 of the first embodiment (the feeding ports f2 and f4 are controlled).
Based on the determined designated direction, the controller 150 may adjust phases of the feeding signals β and δ of the antenna unit 112-1 and accordingly adjust the directions of the antenna beams in the azimuth. For example, the antenna beams are toward the left and the right.
In addition, beam directions in a plurality of directions may be formed only by controlling the vectors of the feeding ports f2 and f4 in a single polarized direction (adjustment over the vectors of the feeding ports f1 and f3 in another polarized direction is disabled/avoided/stopped).
Table (3) and Table (4) present corresponding relationships in the 0-degree and 90-degree polarized directions in the antenna structure 111-3 of the third embodiment (the feeding ports f1 and f3 are controlled for Table (3) and the feeding ports f2 and f4 are controlled for Table (4)).
It can be seen that, according to the embodiment of the disclosure, an antenna array design with 1×1 or 2×1 antenna units 112 may be combined with such a setting that the feeding ports are controlled independently to implement steering of the beams in the elevation and the azimuth. Compared with the prior art where a design with at least 2×2 antenna elements is adopted, the embodiment of the disclosure has the advantage that the size of the antenna array may be reduced obviously.
It is to be noted that phase configurations of the feeding ports f1 to fi are not limited to the settings in Table (1) and Table (2) and there may be other changes in other embodiments. The adjustment circuits 130-1 and 130-2 implementing Table (1) and Table (2) are not limited to circuit architectures shown in
By parity of reasoning, the antenna structures 111-4 and 111-6 shown in
Table (5) and Table (6) present corresponding relationships for the antenna structure 111-6 of the sixth embodiment (the feeding ports f1 and f3 are controlled for Table (5) and the feeding ports f2 and f4 are controlled for Table (6)).
Based on the above, according to the antenna apparatus, the communication apparatus and the steering adjustment method thereof of the embodiments of the disclosure, an antenna array consisting of multi-polarized antenna units is provided, and the vector of each feeding port may be controlled separately. Accordingly, not only may the antenna efficiency (for example, isolation, correlation coefficient or gain) be maintained and even improved, but also the directions of the formed beams in different directions in the elevation and the azimuth may be achieved. Compared with the prior art, the antenna size may be reduced for application to miniature devices.
Although the disclosure is described with reference to the above embodiments, the embodiments are not intended to limit the disclosure. A person of ordinary skill in the art may make variations and modifications without departing from the spirit and scope of the disclosure. Therefore, the protection scope of the disclosure should be subject to the appended claims.
Number | Date | Country | Kind |
---|---|---|---|
108129736 | Aug 2019 | TW | national |
This application claims the priority benefits of U.S. provisional application Ser. No. 62/807,712, filed on Feb. 19, 2019, and Taiwan application serial no. 108129736, filed on Aug. 21, 2019. The entirety of each of the above-mentioned patent applications is hereby incorporated by reference herein and made a part of this specification.
Number | Name | Date | Kind |
---|---|---|---|
4947178 | Shafai | Aug 1990 | A |
5959578 | Kreutel, Jr. | Sep 1999 | A |
6650291 | West et al. | Nov 2003 | B1 |
10075219 | Lipworth | Sep 2018 | B1 |
20070151924 | Mir | Jul 2007 | A1 |
20120319900 | Johansson | Dec 2012 | A1 |
20150116158 | Alrabadi | Apr 2015 | A1 |
20170365924 | Topak | Dec 2017 | A1 |
20180048064 | Boutayeb et al. | Feb 2018 | A1 |
20180175500 | Thorebäck | Jun 2018 | A1 |
20180269579 | Bartone | Sep 2018 | A1 |
Number | Date | Country |
---|---|---|
205595456 | Sep 2016 | CN |
106816694 | Jun 2017 | CN |
201145677 | Dec 2011 | TW |
201409834 | Mar 2014 | TW |
2018103856 | Jun 2018 | WO |
Entry |
---|
Office Action of China Counterpart Application, dated Aug. 13, 2021, pp. 1-11. |
“Office Action of Taiwan Counterpart Application”, dated Apr. 10, 2020, p. 1-p. 7. |
“Office Action of China Counterpart Application”, dated Jan. 15, 2021, pp. 1-10. |
Number | Date | Country | |
---|---|---|---|
20200266537 A1 | Aug 2020 | US |
Number | Date | Country | |
---|---|---|---|
62807712 | Feb 2019 | US |