The present disclosure relates to the field of antenna technologies, and in particular, to an antenna system and a mobile terminal.
In wireless communication devices, there is always a device that radiates electromagnetic energy into space and receives electromagnetic energy from space, and this device is an antenna. The role of the antenna is to transmit a digital or analog signal modulated onto a radio frequency (RF) frequency to a spatial wireless channel, or to receive a digital or analog signal modulated onto a RF frequency from a spatial wireless channel.
The existing wireless communication devices have more and more requirements on antenna operating bands, such that an increasingly complex internal antenna design is required. However, the existing wireless communication devices, such as mobile phones, are becoming thinner, making the available space for the antenna smaller and smaller, which is difficult for the antenna to cover sufficient bands.
Therefore, it is necessary to provide a novel antenna system to solve the above problems.
Many aspects of the exemplary embodiment can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present disclosure. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
The present disclosure will be further illustrated with reference to the accompanying drawings and the embodiments.
Referring to
Referring to
The antenna system 100 further includes a first antenna unit 2, a second antenna unit 3, a third antenna unit 4, a fourth antenna unit 5, a fifth antenna unit 6, a sixth antenna unit 7 and a seventh antenna unit 8, which are arranged to correspond to the periphery of the non-metallic housing 1 and are spaced apart from each other. By properly selecting antenna types and operating bands of the above seven antenna units, the antenna system 100 can cover multiple bands. Moreover, the structure of each antenna unit can be designed to be simpler so as to reduce design cost.
The first antenna unit 2 is provided correspondingly to the top edge portion 10. Specifically, the first antenna unit 2 is a 3.3-3.6 GHz-4×4 MIMO antenna and has coverage bands of 790-960 MHz, 1710-2690 MHz and 3.3-3.6 GHz. The return loss and antenna efficiency in the coverage bands of the first antenna unit 2 are illustrated in
The second antenna unit 3 is provided correspondingly to the top position and spaced apart from the first antenna unit. Specifically, the second antenna unit 3 is a WIFI-2×2 MIMO antenna, and has coverage bands of 1550-1620 MHz, 2400-2500 MHz and 5.15-5.85 GHz. The return loss and antenna efficiency in the coverage bands of the second antenna unit 3 are illustrated in
The third antenna unit 4 is provided correspondingly to the bottom position. Specifically, the third antenna unit 4 is a main antenna, and has coverage bands of 790-960 MHz and 1710-2690 MHz. The return loss and antenna efficiency in the coverage bands of the third antenna unit 4 are illustrated in
The fourth antenna unit 5 is provided correspondingly to the first long side edge portion and close to the second antenna unit. Specifically, the fourth antenna unit 5 is a 3.3-3.6 GHz-4×4 MIMO antenna, and has a coverage band of 3.3-3.6 GHz. The return loss and antenna efficiency in the coverage band of fourth antenna unit 5 are illustrated in
The fifth antenna unit 6 is provided correspondingly to the first long side edge portion and close to the third antenna unit. Specifically, the fifth antenna unit 6 is a 3.3-3.6 GHz-4×4 MIMO antenna, and has a coverage band of 3.3-3.6 GHz. The return loss and antenna efficiency in the coverage band of fifth antenna unit 6 are illustrated in
The sixth antenna unit 7 is provided correspondingly to the second long side edge portion and close to the first antenna unit. Specifically, the sixth antenna unit 7 is a WIFI-2×2 MIMO antenna, and has coverage bands of 2400-2500 MHz and 5.15-5.85 GHz. The return loss and antenna efficiency in the coverage bands of sixth antenna unit 7 are illustrated in
The seventh antenna unit 8 is provided correspondingly to the second long side edge portion and close to the third antenna unit. Specifically, the seventh antenna unit 8 is a 3.3-3.6 GHz-4×4 MIMO antenna, and has a coverage band of 3.3-3.6 GHz. The return loss and antenna efficiency in the coverage band of seventh antenna unit 8 are illustrated in
It can be seen that, the first antenna unit 2, the fourth antenna unit 5, the fifth antenna unit 6, and the seventh antenna unit 8 that are included in the antenna system 10 provided by the present disclosure are all 3.3-3.6 GHz-4×4 MIMO antennas, and each of them covers a band of 3.5 G (3.3-3.6 GHz). The average antenna efficiency of each antenna unit is shown in Table 1 below. Reference can be made to
The second antenna unit 3 and the sixth antenna unit 7 that are included in the antenna system 10 provided by the present disclosure are both WIFI-2×2 MIMO antennas, and each of them covers bands of WIFI 2.4 G (2.4-2.5 GHz) and WIFI 5 G (5.15-5.85 GHz). Moreover, the second antenna unit 3 includes a GPS band, and the average antenna efficiency of each antenna unit is shown in Table 2 below. Reference can be made to
The first antenna unit 2 and the third antenna unit 4 that are included in the antenna system 10 provided by the present disclosure both cover bands of (790-960 MHz, 1710-2690 MHz). The first antenna unit 2 is a diversity antenna. The third antenna unit 4 is a main antenna. 2G, 3G and 4G mobile communications can be achieved by providing the second antenna unit 2 and the third antenna unit 4. The average antenna efficiency of each antenna unit is shown in Table 3 below. Reference can be made to
In summary, the antenna system 100 provided by the present disclosure, by separately providing 7 antenna units, achieves that each antenna unit covers fewer bands, thereby reducing the design difficulty and cost of each antenna unit. However, by integrating multiple antenna units, it can be achieved that the antenna system covers multiple bands simply by designing operating bands and the number of the multiple antenna units as needed.
The present disclosure also provides a mobile terminal (not shown), and the mobile terminal includes the antenna system 100 described above.
Compared with the related art, the antenna system provided by the present disclosure, by providing seven antenna units on the periphery of the non-metallic housing, achieves 3.3-3.6 GHz-4×4 MIMO, WIFI-2×2 MIMO, GPS, and 2G, 3G and 4G mobile communications.
What has been described above is only an embodiment of the present disclosure, and it should be noted herein that one ordinary person skilled in the art can make improvements without departing from the inventive concept of the present disclosure, but these are all within the scope of the present disclosure.
Number | Date | Country | Kind |
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201810880128.X | Aug 2018 | CN | national |
Number | Name | Date | Kind |
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20100127949 | Shimizu | May 2010 | A1 |
20100227646 | Ogawa | Sep 2010 | A1 |
20180316088 | Wen | Nov 2018 | A1 |
20180366812 | Kim | Dec 2018 | A1 |
20190214722 | Di Paola | Jul 2019 | A1 |
20190229413 | Jong | Jul 2019 | A1 |
20200021015 | Yun | Jan 2020 | A1 |
20200044339 | Zhu | Feb 2020 | A1 |
20200076055 | Jeon | Mar 2020 | A1 |
20200153115 | Yun | May 2020 | A1 |
Number | Date | Country | |
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20200044339 A1 | Feb 2020 | US |