This application claims the priority of Chinese patent application No. 201710525437.0, filed Jun. 30, 2017, which is incorporated by reference in its entirety.
This disclosure relates generally to technical field of antennas. More specifically, this disclosure relates to a wide band antenna element with a reflecting cavity and an antenna system.
Fifth generation (5G) technology faces the human information society after 2020. The predictable features of 5G technology, such as high data rate, low latency, mass devices connection and low power consumption, will play a very important role in the future society, even though the related technologies are not finalized. As the key component of 5G terminal device, 5G terminal antenna will play an active and important role in promoting the development of the new generation mobile communication system and 5G mobile terminals.
Different from the omnidirectional radiation pattern of 4G mobile terminals, 5G mobile terminals need an antenna array that operates at millimeter wave band to realize beam forming function, but the antenna array at mobile terminals is different from the one of the base station. In base station, several 5G base station antenna demos have been demonstrated due to the less restrictions on antenna size and the support of the relatively mature phased array technology. But in mobile terminals, the coexistence of the 5G antenna and the existing 2G/3G/4G/GPS/WIFI/BT antennas is quite challenging due to the narrow antenna space and complicated metal environment of mobile terminals.
This disclosure relates generally to an antenna and antenna system applied in metal back cover of 5G mobile terminals, which aims to realize the coexistence of 5G antenna and the existing second generation (2G), third generation (3G), fourth generation (4G), global positioning system (GPS), WiFi, and Bluetooth (BT) antennas.
In order to realize the above purpose, this disclosure provides an antenna system applied in the metal back cover of the 5G mobile terminal, which includes a metal back cover, a feeder line, and at least one antenna element. The metal back cover includes a bottom case and a metal frame. The antenna element is composed of a feed screw, a pillar, an insulating sleeve, and a reflecting cavity. The reflecting cavity is formed by an inner concave of an outer side of the metal frame. The reflecting cavity includes a first wall and a second wall distributed from bottom to top. The first wall is a part of the bottom case. The first wall, the pillar, the second wall, and the feeder line are arranged orderly and are connected with the feed screw. The pillar and the feed screw are connected by screw thread. The feed screw is connected with the second wall through an insulating sleeve. The pillar is a good conductor and an under surface of the pillar contacts with the first wall.
The 5G antenna in this disclosure is located at a side of a mobile terminal, which does not occupy a position of the traditional antennas, so it can coexist with the 2G/3G/4G/GPS/WIFI/BT antennas. The reflecting cavity can change the radiation direction of the 5G antenna, so that the electromagnetic radiation that human suffers can be reduced. For example, it is quite necessary to reduce the radiation on the front of the 5G mobile terminal when the user is on the phone. In addition, if the reflecting cavity is fed directly by the feed screw, the bandwidth of the antenna will be quite narrow due to the big impedance difference between the feed screw and the reflecting cavity. The pillar in the reflecting cavity forms a gradual transition structure between the feed screw and the first wall of the cavity, which can properly improve the impedance bandwidth of the antenna element.
Further, the feed screw includes a screw head and a screw column, and the screw head is located at one end of the feed screw that is close to the first wall. Further, the shape of the reflecting cavity is a cuboid, and the antenna's operating wavelength is λ (λ, is the wavelength of 28 Gigahertz (GHz) in free space), and the length, width, and height of the reflecting cavity are ½λ˜λ, 1/10λ˜½λ, and ⅛λ˜½λ, respectively. The radiation of unnecessary directions of the 5G antenna can be reduced, which includes the above mentioned reflecting cavity. Further, the shape of the pillar is a combination of a cuboid and a semicolumn. The length, width, and height of the pillar are 3/16λ˜⅜λ, ⅛λ˜¼λ, and 1/15λ˜⅛λ, respectively. The length of the cuboid equals to the diameter of the semicolumn, and a long side of the pillar parallels to the broadside of the reflecting cavity.
Further, the ratio of the reflecting cavity's length to the pillar's length is 12:5. The ratio of the reflecting cavity's width to the pillar's width is 11:5. The ratio of the reflecting cavity's height to the pillar's height is 3:2. The long side of the pillar parallels to the broadside of the reflecting cavity.
Further, the reflecting cavity can be filled with low loss materials whose permittivity is larger than 1 and its dielectric loss is less than 0.02, such as, for example, plastic. The reflecting cavity can be filled with different materials or filled partially, and the filling method can be used for nano injection molding. The detail filling methods and materials can be selected according to the beam scanning range of the antenna. When the reflecting cavity is filled with plastic materials, the distance between elements can be reduced therefore the scanning angle can be increased. The bandwidth of the antenna will be reduced, the coupling between elements will be increased, and the radiation efficiency of the antenna will be decreased. If it is necessary, the reflecting cavity can be filled with air.
Further, the reflecting cavity and the pillar are connected with each other and are formed by opening a slot on the metal frame through a computer numerical control (CNC) process. Further, the antenna array includes N elements, and N is a positive integer which is larger than 1. Further, the antenna system applied in the metal back cover includes at least two arrays which are arranged respectively at both long sides of the metal back cover. The antenna array does not occupy the position of the traditional antennas, so it can coexist with the 2G/3G/4G/GPS/WIFI/BT antennas. It has a wide bandwidth and a high gain, and can realize wide beam scanning angle and beam width.
Further, this disclosure provides a radio frequency (RF) frontend system with the above mentioned antenna system applied in metal back cover, which is composed of a RF transceiver, a receiving and processing circuit, a transmitting and processing circuit, a speaker, a microphone, and a main processor. Through an architecture which includes a feed screw and a reflecting cavity, this disclosure realizes that the 5G antenna is set at the side of the mobile terminal, therefore the 5G antenna can coexist with the 2G/3G/4G/GPS/WIFI/BT antennas.
Figures discussed above, and the various embodiments used to describe the principles of the invention in this patent application are by way of illustration only and should not be construed in any way to limit the scope of the invention. Drawings and embodiments are provided so that the invention will be thorough and complete and will fully convey the scope of the invention to those skilled in the art.
Description of appendix mark: 1 denotes metal back cover, 2 denotes antenna element, 31 denotes feed screw, 32 denotes pillar, 4 denotes insulating sleeve, 5 denotes reflecting cavity, 6 denotes the first wall, 7 denotes the second wall, 8 denotes main board of the 5G mobile terminal, 9 denotes feeder line, 11 denotes antenna array, 12 denotes RF transceiver, 13 denotes receiving and processing circuit, 14 denotes transmitting and processing circuit, 15 denotes speaker, 16 denotes microphone, 17 denotes main processor, 18 denotes input and output port, 19 denotes keyboard, 20 denotes screen, 21 denotes memory, 22 denotes low loss materials, 100a-100n denote antenna elements, 110a-110n denote receiving and transmitting switches, 120a-120n denote power amplifiers, 130a-130n denote low noise amplifiers, 140a-140n denote low loss switches, 150a-150n denote phase shifters, 160a-160n denote RF signals.
The implementation procedures of this embodiment can be organized as follows: the reflecting cavity and the pillar are formed by opening a slot on the metal frame through a CNC process. The feed screw passes through holes that are drilled in the first wall, the pillar, and the second wall, orderly. Then the insulating sleeve is penetrated through the hole of the second wall and is sheathed on the feed screw. The feed screw passes through the hole in a printed circuit board (PCB) and the hole on the feeder line. Then the feed screw and the feeder line are welded together. Therefore, the first wall of the reflecting cavity and the feeder line are connected by the feed screw, and the above mentioned processes and components constitute a complete feeding structure. The shape of the pillar, the filling materials of the cavity, and the filling methods can be selected according to the requirements of this embodiment.
The size of the reflecting cavity and the pillar should be set according to the operating wavelength of the antenna element, so that a wide impedance bandwidth and a good directional radiation pattern of the antenna element can be obtained. In this embodiment, through adjusting the position and size of the reflecting cavity and the pillar, the antenna element can achieve a wide impedance bandwidth and the radiation on the front of the mobile terminal can be reduced greatly.
The size of the reflecting cavity and the pillar should be set according to the operating wavelength of the antenna element, so that a wide impedance bandwidth and a good directional radiation pattern of the antenna element can be obtained. In this embodiment, several shapes and sizes of the pillar are simulated and tested based on the above mentioned size of the reflecting cavity, and the pillar that meets the above mentioned ratio can achieve the best radiation performance.
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Embodiment E describes a beam scanning pattern of two 8 antenna elements array that is integrated on the metal back cover of the 5G mobile terminal, and its scanning angle is from −51 degree to 51 degree.
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Obviously, the above embodiments of the present invention are merely for the purpose of clearly stating examples of the invention rather than the limitation of the embodiments of the present invention. As for those skilled in the art in the field, there may be other variations or variations on the basis of the foregoing instructions. There is no need to be exhaustive of all implementations. Any modifications, equivalents, substitutions and improvements made within the spirit and principles of the present invention shall be included in the scope of protection of the claims of the present invention. Several embodiments of the present innovation have been described thus far, but the present innovation is not limited to these embodiments.
Number | Date | Country | Kind |
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2017 1 0525437 | Jun 2017 | CN | national |
Number | Name | Date | Kind |
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8125394 | Chiang | Feb 2012 | B2 |
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Number | Date | Country | |
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20190006739 A1 | Jan 2019 | US |