This application claims the priority of Chinese patent application CN 201910951453.5, entitled “Antenna, Method for Supplying Power to Antenna, Single-Feeding-Based Method for Combining Antennas, and Terminal” and filed on Oct. 8, 2019, the entirety of which is incorporated herein by reference.
The present disclosure relates to (but not limited to) the field of 5G, communications and antennas.
5G has come to an end of a standard setting phase, and various large-scale operators are actively deploying 5G devices. There is no doubt that 5G brings about a brand new experience to users, has a transmission rate ten times faster than 4G, and has new requirements for an antenna system. In 5G communication, the key to a high rate is the millimeter wave and beamforming technology. However, a traditional antenna cannot meet this requirement, obviously. The deployment of a 5G network determines that a terminal product needs to support both 4G communication and 5G communication during a transition period, which means a low-frequency antenna, such as a 2G/3G/4G antenna and a sub-6G antenna (i.e. operating below 6 GHz), and a 5G millimeter wave array antenna are both present in one terminal product.
With respect to the problem of coexistence of a low-frequency antenna and a high-frequency antenna, there are mainly two common solutions: first, a 5G array antenna and a low-frequency antenna are located in different clearance areas of a terminal product, which means a larger clearance area that is detrimental to the miniaturization of a terminal; and second, the 5G array antenna and the low-frequency antenna are located in the same clearance area, and respectively use different feeding systems, which means two sets of antenna systems that limit choices of a circuit solution. An existing solution requires the low-frequency antenna and the high-frequency antenna to occupy a larger clearance area, or to use different feeding systems, which limits the diversification of a terminal hardware solution, and is not applicable to a small terminal.
According to one embodiment of the present disclosure, an antenna is provided, comprising: a low-frequency antenna, which comprises an antenna having a working band lower than 6 GHz; a high-frequency antenna, which comprises an array antenna that works at a millimeter wave band; and a filter. The low-frequency antenna and the high-frequency antenna are fed by the same feeding point. The filter is arranged between the low-frequency antenna and the high-frequency antenna and isolates the low-frequency antenna and the high-frequency antenna.
According to one embodiment of the present disclosure, a method for supplying power to an antenna is provided, the method comprising: when a low-frequency antenna works, a filter filters out an interference signal from a high-frequency antenna, and meanwhile the power is supplied to the low-frequency antenna; and when the high-frequency antenna works, the filter prevents the power supply to the low-frequency antenna.
According to one embodiment of the present disclosure, a single-feeding-based method for combining antennas is provided, the method comprising: realizing the combination of a low-frequency antenna and a high-frequency antenna on the basis of a single feeding point by using a filter.
According to one embodiment of the present disclosure, a terminal is provided, comprising the antenna of the present disclosure.
The accompanying drawings described herein are intended to provide a further understanding of the present disclosure, which constitute a part of the present application. The illustrative embodiments of the present disclosure and the description thereof are for explaining the present disclosure and do not constitute an improper limitation of the present disclosure. In the accompanying drawings:
The embodiments of the present disclosure provide an antenna, a method for supplying power to an antenna, a single-feeding-based method for combining antennas, and a terminal. According to an embodiment of the present disclosure, an antenna is provided.
The low-frequency antenna comprises an antenna having a working band lower than 6 GHz. As shown in
The filter is arranged between the low-frequency antenna and the high-frequency antenna and isolates the low-frequency antenna and the high-frequency antenna. As shown in
The high-frequency antenna comprises an array antenna that works at a millimeter wave band. The low-frequency antenna and the high-frequency antenna are fed by the same feeding point 12. As shown in
According to an embodiment of the present disclosure, the low-frequency antenna comprises an antenna having a working band lower than 6 GHz.
In addition to the bending triangular patch antenna as shown in
A wide band can be realized by adjusting a folded dipole element according to a working band, and a folded dipole unit structure can compensate for a mutual coupling effect, thereby improving the bandwidth and radiation performance of an antenna. An echo loss bandwidth of −5 dB obtained through simulation and a test is approximately greater than 40% (1.7-2.69 GHz).
According to an embodiment of the present disclosure, the filter comprises a low-pass filter for isolating the low-frequency antenna and the high-frequency antenna.
The low-pass filter allows the power supply to the low-frequency antenna (e.g. a triangular bending antenna) at a low band, and when the high-frequency antenna works, the low-pass filter serves as an open circuit so as to prevent the power supply to the low-frequency antenna, thereby realizing that two antenna systems can separately work in the case of a single feeding point. The specific structure of a resonance unit of the low-pass filter is as shown in
According to an embodiment of the present disclosure, the high-frequency antenna comprises an array antenna that works at a millimeter wave band, comprising a millimeter wave array antenna, a slot array antenna, and an array formed by patch antennas or other types of antennas.
According to an embodiment of the present disclosure, an antenna system merely comprises one feeding point. As shown in
According to one embodiment of the present disclosure, a method for supplying power to an antenna on the basis of the above-mentioned antenna is provided.
At step S101, a low-frequency antenna works.
At step S102, a filter filters out an interference signal from a high-frequency antenna.
At step S103, power is supplied to the low-frequency antenna.
At step S201, a high-frequency antenna works.
At step S202, the filter prevents the power supply to the low-frequency antenna.
According to one embodiment of the present disclosure, a method for realizing the single-feeding-based combination of a high-frequency antenna and a low-frequency antenna on the basis of the above-mentioned antenna is provided, the method comprising: realizing the combination of a low-frequency antenna and a high-frequency antenna on the basis of a single feeding point and using a filter.
According to one embodiment of the present disclosure, a terminal is provided, comprising the above-mentioned antenna.
According to the antenna, the method for supplying power to an antenna, the single-feeding-based method for combining antennas, and the terminal provided by the embodiments of the present disclosure, a filter is arranged between the low-frequency antenna and the high-frequency antenna and isolates the low-frequency antenna and the high-frequency antenna, so as to realize the coexistence of the low-frequency antenna and the high-frequency antenna in the same clearance area by a single feeding point. A smaller space is occupied as much as possible in order to meet a requirement for a small terminal size, alleviating the defect of an existing technique.
The foregoing description is merely illustrative of the preferred embodiments of the present disclosure and is not intended to limit the present disclosure, and various changes and modifications in the present disclosure may be made by those skilled in the art. Within the spirit and principle of the present disclosure, any modifications, equivalent replacements, improvements, etc., shall be comprised within the protection scope of the present disclosure.
Number | Date | Country | Kind |
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201910951453.5 | Oct 2019 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2020/118375 | 9/28/2020 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2021/068784 | 4/15/2021 | WO | A |
Number | Name | Date | Kind |
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20110198398 | Itay | Aug 2011 | A1 |
Number | Date | Country |
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110165399 | Aug 2019 | CN |
Entry |
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Author: Single-Port Feeding Dual-Frequency Antenna and Electronic Device, Date: May 29, 2019; p. 1-24 (Year: 2019). |
International search report of PCT Patent Application No. PCT/CN2020/118375 dated Dec. 30, 2020. |
Japan Patent Office, Third Office Action dated Dec. 5, 2023 for application No. JP2021-566353. |
Nishimura Yoshini: “Design a 1.2 GHz low-pass filter using free tools”, Design Wave Magazine Apr. 2008, Year: 2008, pp. 107-108. |
Number | Date | Country | |
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20220190490 A1 | Jun 2022 | US |