Antenna terminal with power supply and single feed combination
11949167 ยท 2024-04-02
Assignee
Inventors
Cpc classification
International classification
H01Q21/30
ELECTRICITY
H01Q5/00
ELECTRICITY
Abstract
Provided in the present disclosure are an antenna, an antenna power supply method, a single-feeding-based method for combining antennas, and a terminal. The antenna comprises: a low-frequency antenna, a high-frequency antenna, and a filter. The filter is provided between the low-frequency antenna and the high-frequency antenna and isolates the low-frequency antenna and the high-frequency antenna. The low-frequency antenna and the high-frequency antenna use the same feeding point for feeding.
Claims
1. A antenna, comprising: a low-frequency antenna, comprising an antenna having a working band lower than 6 GHz; a high-frequency antenna, comprising an array antenna that works at a millimeter wave band, wherein the low-frequency antenna and the high-frequency antenna are fed by the same feeding point; and a low-pass filter arranged between the low-frequency antenna and the high-frequency antenna for isolating the low-frequency antenna and the high-frequency antenna, wherein the low-pass filter comprises at least one open circuit, and in a case where power supply comprises both high-frequency signals and low-frequency signals 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.
2. The antenna of claim 1, wherein the array antenna comprises at least one of the following: a millimeter wave array antenna; a slot array antenna with a slot length of a half-wavelength of a working band; and an array formed by patch antennas or other types of antennas.
3. The antenna of claim 1, wherein the antenna merely comprises one feeding point.
4. A method for supplying power to the antenna of claim 1, the method comprising: when the low-frequency antenna works, the low-pass filter filters out an interference signal from the high-frequency antenna, and meanwhile the power is supplied to the low-frequency antenna; and in a case where power supply comprises both high-frequency signals and low-frequency signals and when the high-frequency antenna works, the low-pass filter prevents the power supply to the low-frequency antenna.
5. A terminal, comprising the antenna of claim 1.
6. The method of claim 4, wherein the array antenna comprises at least one of the following: a millimeter wave array antenna; a slot array antenna with a slot length of a half-wavelength of a working band; and an array formed by patch antennas or other types of antennas.
7. The method of claim 4, wherein the antenna merely comprises one feeding point.
8. The terminal of claim 5, wherein the array antenna comprises at least one of the following: a millimeter wave array antenna; a slot array antenna with a slot length of a half-wavelength of a working band; and an array formed by patch antennas or other types of antennas.
9. The terminal of claim 5, wherein the antenna merely comprises one feeding point.
10. The antenna of claim 1, wherein the low-pass filter is an asymmetric low-pass filter formed by a compact microstrip resonance unit.
11. The antenna of claim 1, wherein the low-frequency antenna comprises at least one of the following: a bending triangular patch antenna; a doublet antenna; and a Franklin monopole antenna.
12. The antenna of claim 1, wherein the low-frequency antenna a compact antenna formed by four planar folded dipole antennas as radiation elements of a square array and a microstrip feeding structure.
13. The antenna of claim 3, wherein the feeding point is at a distance of 0.05 wavelength from a short slot edge of a slot array antenna as the high-frequency antenna.
14. The terminal of claim 5, wherein the low-pass filter is an asymmetric low-pass filter formed by a compact microstrip resonance unit.
15. The terminal of claim 5, wherein the low-frequency antenna comprises at least one of the following: a bending triangular patch antenna; a doublet antenna; and a Franklin monopole antenna.
16. The terminal of claim 5, wherein the low-frequency antenna a compact antenna formed by four planar folded dipole antennas as radiation elements of a square array and a microstrip feeding structure.
17. The terminal of claim 9, wherein the feeding point is at a distance of 0.05 wavelength from a short slot edge of a slot array antenna as the high-frequency antenna.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) 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:
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(18) 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.
(19) The low-frequency antenna comprises an antenna having a working band lower than 6 GHz. As shown in
(20) 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
(21) 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
(22) According to an embodiment of the present disclosure, the low-frequency antenna comprises an antenna having a working band lower than 6 GHz.
(23) In addition to the bending triangular patch antenna as shown in
(24) 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).
(25) 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.
(26) 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
(27) 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.
(28) According to an embodiment of the present disclosure, an antenna system merely comprises one feeding point. As shown in
(29) 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.
(30) At step S101, a low-frequency antenna works.
(31) At step S102, a filter filters out an interference signal from a high-frequency antenna.
(32) At step S103, power is supplied to the low-frequency antenna.
(33) At step S201, a high-frequency antenna works.
(34) At step S202, the filter prevents the power supply to the low-frequency antenna.
(35) 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.
(36) According to one embodiment of the present disclosure, a terminal is provided, comprising the above-mentioned antenna.
(37) 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.
(38) 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.