This non-provisional application claims priority under 35 U.S.C. § 119(a) to Patent Application No. 202011019561.8 filed in China, P.R.C. on Sep. 25, 2020, the entire contents of which are hereby incorporated by reference.
The present disclosure relates to an antenna system, and in particular, to an antenna system that uses a decoupling effect of a ground wire to achieve isolation.
With the advancement of wireless communication technology, the demand for data transmission has also increased. To transmit a huge amount of data, a wireless communications system uses antenna system architecture of a multi-input multi-output (MIMO) system to realize wireless data transmission. In the MIMO system, two or more antenna architectures transmit different signals. However, when antenna isolation is relatively poor, antennas interfere with each other, resulting in signal loss and reducing the system transmission rate.
According to the conventional antenna design, a distance between two antennas needs to be at least greater than a specific distance to prevent mutual interference between the antennas and to achieve good antenna isolation. However, current electronic devices are oriented to miniaturization. For example, a mobile communication handheld device and a wearable device have reduced the size of electronic devices based on good user experience, thereby limiting a space where antennas can be installed. When two installed antennas cannot maintain at least a certain distance, consequently, the antenna isolation is relatively poor, and mutual interference occurs between the antennas, thereby reducing the transmission quality.
In some embodiments, an antenna system includes a ground plane, a first antenna unit, a second antenna unit, a first ground unit and a second ground unit. The ground plane includes a first side and a second side. The first antenna unit is connected to the first side, where the first antenna unit is configured to receive and transmit a first high-frequency signal and a first low-frequency signal. The second antenna unit is connected to the second side, where the second antenna unit is configured to receive and transmit a second high-frequency signal and a second low-frequency signal. A closed end of the first ground unit is connected to the first side, and another closed end of the first ground unit is connected to the second side, to jointly form a first closed loop with the ground plane, and a physical length of the first ground unit matches the first high-frequency signal and the second high-frequency signal to provide grounding of the first high-frequency signal and the second high-frequency signal. The second ground unit forms a second closed loop, where the second ground unit is connected to the first ground unit, and a physical length of the second ground unit is greater than the physical length of the first ground unit. A sum of the physical length of the second ground unit and the physical length of the first ground unit matches the first low-frequency signal and the second low-frequency signal, and the second ground unit and the first ground unit jointly provide the grounding of the first low-frequency signal and the second low-frequency signal.
In some embodiments, an antenna system includes a ground plane, a first antenna unit, a second antenna unit, a first ground unit and a second ground unit. The ground plane includes a first side and a second side. The first antenna unit is connected to the first side, where the first antenna unit is configured to receive and transmit a first high-frequency signal and a first low-frequency signal. The second antenna unit is connected to the second side, where the second antenna unit is configured to receive and transmit a second high-frequency signal and a second low-frequency signal. A closed end of the first ground unit is connected to the first side, and another closed end of the first ground unit is connected to the second side, to jointly form a closed loop of the first ground unit with the ground plane, and a physical length of the first ground unit matches the first high-frequency signal and the second high-frequency signal to provide grounding of the first high-frequency signal and the second high-frequency signal. The second ground unit forms a closed loop of the second ground unit, where the second ground unit is connected to the first ground unit, and a physical length of the second ground unit is less than the physical length of the first ground unit. A sum of the physical length of the second ground unit and the physical length of the first ground unit matches the first low-frequency signal and the second low-frequency signal, and the second ground unit and the first ground unit jointly provide the grounding of the first low-frequency signal and the second low-frequency signal.
Referring to
The first ground unit 41 includes two closed ends E1 and E2. The closed end E1 is connected to the first side S1, and the closed end E2 is connected to the second side S2. Therefore, the first ground unit 41, the first side S1, and the second side S2 jointly form a closed loop (hereinafter referred to as a first closed loop). The second ground unit 42 is connected to the first ground unit 41. A physical length of the second ground unit 42 is greater than a physical length of the first ground unit 41. The second ground unit 42 alone forms another closed loop (hereinafter referred to as a second closed loop). The first ground unit 41 and the second ground unit 42 can further provide grounding of the first antenna unit 1 and the second antenna unit 2.
Specifically, the first antenna unit 1 can receive and transmit a high-frequency signal (hereinafter referred to as a first high-frequency signal), and the first antenna unit 1 can receive and transmit a low-frequency signal (hereinafter referred to as a first low-frequency signal). There is a first coupling distance G1 between the first antenna unit 1 and the ground units 41 and 42. Based on the first high-frequency signal, the physical length of the first ground unit 41 matches the first high-frequency signal, that is, the first closed loop matches the first high-frequency signal. In other words, the physical length of the first ground unit 41 is substantially ¼ of the wavelength of the first high-frequency signal. Compared to original grounding of the first antenna unit 1, the first ground unit 41 can further provide grounding of the first high-frequency signal. In addition, based on the first low-frequency signal, a sum of the physical length of the first ground unit 41 and the physical length of the second ground unit 42 matches the first low-frequency signal, that is, the first closed loop and the second closed loop jointly match the first low-frequency signal. In other words, the sum of the physical length of the first ground unit 41 and the physical length of the second ground unit 42 is substantially ¼ of the wavelength of the first low-frequency signal. The first ground unit 41 and the second ground unit 42 can jointly further provide grounding of the first low-frequency signal.
The second antenna unit 2 can receive and transmit a high-frequency signal (hereinafter referred to as a second high-frequency signal), and the second antenna unit 2 can receive and transmit a low-frequency signal (hereinafter referred to as a second low-frequency signal). There is a second coupling distance G2 between the second antenna unit 2 and the ground units 41 and 42. Based on the second high-frequency signal, the physical length of the first ground unit 41 matches the second high-frequency signal, that is, the first closed loop matches the second high-frequency signal. In other words, the physical length of the first ground unit 41 is substantially ¼ of the wavelength of the second high-frequency signal. Compared to original grounding of the second antenna unit 2, the first ground unit 41 can further provide grounding of the second high-frequency signal. In addition, based on the second low-frequency signal, a sum of the physical length of the first ground unit 41 and the physical length of the second ground unit 42 also matches the second low-frequency signal, that is, the first closed loop and the second closed loop also jointly match the second low-frequency signal. In other words, the sum of the physical length of the first ground unit 41 and the physical length of the second ground unit 42 is substantially ¼ of the wavelength of the second low-frequency signal. The first ground unit 41 and the second ground unit 42 can jointly further provide grounding of the second low-frequency signal.
In another embodiment, referring to
There is a third coupling distance G3 between the first antenna unit 1 and the ground units 51 and 52. Based on the first high-frequency signal, the physical length of the first ground unit 51 matches the first high-frequency signal, that is, the first closed loop matches the first high-frequency signal. In other words, the physical length of the first ground unit 51 is substantially ¼ of the wavelength of the first high-frequency signal. Compared to original grounding of the first antenna unit 1, the first ground unit 51 can further provide grounding of the first high-frequency signal. In addition, based on the first low-frequency signal, a sum of the physical length of the first ground unit 51 and the physical length of the second ground unit 52 matches the first low-frequency signal, that is, the first closed loop and the second closed loop jointly match the first low-frequency signal. In other words, the sum of the physical length of the first ground unit 51 and the physical length of the second ground unit 52 is substantially ¼ of the wavelength of the first low-frequency signal. The first ground unit 51 and the second ground unit 52 can jointly further provide grounding of the first low-frequency signal.
There is a fourth coupling distance G4 between the second antenna unit 2 and the ground units 51 and 52. Based on the second high-frequency signal, the physical length of the first ground unit 51 matches the second high-frequency signal, that is, the first closed loop also matches the second high-frequency signal. In other words, the physical length of the first ground unit 51 is substantially ¼ of the wavelength of the second high-frequency signal. Compared to original grounding of the second antenna unit 2, the first ground unit 51 can further provide grounding of the second high-frequency signal. In addition, based on the second low-frequency signal, a sum of the physical length of the first ground unit 51 and the physical length of the second ground unit 52 also matches the second low-frequency signal, that is, the first closed loop and the second closed loop also jointly match the second low-frequency signal. In other words, the sum of the physical length of the first ground unit 51 and the physical length of the second ground unit 52 is substantially ¼ of the wavelength of the second low-frequency signal. The first ground unit 51 and the second ground unit 52 can jointly further provide grounding of the second low-frequency signal.
Based on this, when a feed signal excites the antenna units 1 and 2 respectively, by configuration of the first ground unit 41, 51, and the second ground unit 42, 52, the first ground unit 41, 51, and the second ground unit 42, 52 can further provide grounding of the antenna units 1 and 2 when receiving and transmitting high-frequency and low-frequency signals, so that a distance between the first antenna unit 1 and the second antenna unit 2 is relatively small without mutual interference, and the antenna system has good antenna isolation, thereby maintaining good transmission quality of the antenna system.
In some embodiments, as shown in
In some embodiments, as shown in
In some embodiments, referring to
In some embodiments, referring to
In some embodiments, refer to
In some embodiments, the first ground unit 41, 51, and the second ground unit 42, 52 may be in any geometric shape. When space for an antenna system in an electronic device is limited, widths of the first ground unit 41, 51, and the second ground unit 42, 52 may be increased partially to shorten a length of the closed loop of the first ground unit 41, 51 (that is, to shorten a length between the closed end E1 and the closed end E2 of the first ground unit 41, 51), and a length of the closed loop of the second ground unit 42, 52. Specifically, for example, the first ground unit 41, 51, and the second ground unit 42, 52 shown in
In some embodiments, the antenna system may be printed on a printed circuit board (PCB). The first antenna unit 1, the second antenna unit 2, the first ground unit 41, 51, and the second ground unit 42, 52 may be metal traces on the printed circuit board. The first antenna unit 1, the second antenna unit 2, the first ground unit 41, 51, and the second ground unit 42, 52 may be made of conductive materials (silver, copper, aluminum, iron, or alloys thereof). The ground plane 3 may be a common ground plane applied to a metal casing of the electronic device of the antenna system or each electronic component of the electronic device. In some embodiments, the first antenna unit 1 and the second antenna unit 2 may be designed as planar inverted-F antennas (PIFA).
To sum up, according to an embodiment of the antenna system of the present disclosure, two antenna units are not limited to the size of the electronic device during configuration. When the two antennas cannot maintain at least a certain distance due to a relatively small size of the electronic device, the antenna system can provide grounding of high-frequency or low-frequency signals according to the grounding units, so that the antenna units maintain good antenna isolation when receiving and transmitting high-frequency or low-frequency signals, and mutual interference between antenna units due to a close distance can be avoided, thereby enhancing good transmission quality of the antenna system. In addition, as the electronic device maintains a relatively small size, the manufacturing cost of the electronic device is reduced.
Although the present disclosure has been described in considerable detail with reference to certain preferred embodiments thereof, the disclosure is not for limiting the scope of the disclosure. Persons having ordinary skill in the art may make various modifications and changes without departing from the scope and spirit of the disclosure. Therefore, the scope of the appended claims should not be limited to the description of the preferred embodiments described above.
Number | Date | Country | Kind |
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202011019561.8 | Sep 2020 | CN | national |
Number | Name | Date | Kind |
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9008728 | Abdul-Gaffoor | Apr 2015 | B2 |
10164330 | Wu | Dec 2018 | B2 |
10916851 | Wei | Feb 2021 | B2 |
11011837 | Wu | May 2021 | B2 |
Number | Date | Country | |
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20220102853 A1 | Mar 2022 | US |