The invention relates to communication technologies, especially to an antenna system and a communication terminal using such an antenna system.
With the development of mobile communication technology, cell phone, PAD and laptop etc gradually become the indispensable electronic product in life. Moreover, this type of electronic product is updated to add antenna system to make it become electronic communication product with the communication function.
5G is the focus of research and development in the industry all over the world. Its three main application highlights are: enhanced mobile broadband, large-scale machine communication, high reliability, and low delay communication. Three application highlights correspond respectively to different key indicators, wherein the user peak speed in the enhanced mobile bandwidth is 20 Gbps and the minimum user experience speed is 100 Mbps. The unique characteristics of the millimeter wave, i.e., high carrier frequency and large bandwidth are the main aspects to realize 5G ultra-high data transmission speed. Therefore, the rich bandwidth resources in the millimeter wave band provide the guarantee for high-speed transmission.
However, due to the intense space loss of electromagnetic waves in this frequency band of millimeter wave, wireless communication antenna system using millimeter wave band needs phased array architecture. The phase of each array element is distributed according to a certain rule through a phase shifter, so as to form a high gain wave beam, and the beam is scanned in a certain spatial range by changing the phase shift. However, if line-of-sight communication cannot be maintained between the transmitter and receiver of the antenna system in the millimeter wave band, the communication link is easily broken. If the bandwidth of the frequency band covered in the beam range is limited, the reliability of the antenna system shall be affected.
However, it is necessary to provide one kind new antenna system and communication terminal to solve the problem mentioned above.
Many aspects of the exemplary embodiments can be better understood with reference to the following drawings. The components in the drawing are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present disclosure.
The present disclosure hereinafter is described in detail with reference to several exemplary embodiments. To make the technical problems to be solved, technical solutions and beneficial effects of the present disclosure more apparent, the present disclosure is described in further detail together with the figure and the embodiments. It should be understood the specific embodiments described hereby is only to explain the disclosure, not intended to limit the disclosure.
Please refer to
The metal base 1 shows rectangular three-dimensional structure, such as cuboid structure. The metal base 1 includes a top surface 11, a bottom surface 12 opposite to the top surface 11 and a carinal cavity 13 depressing from the top surface 11 to the bottom surface 12.
The PCB 2 superimposed and set on the top surface 11 of the metal base 1 covers the carinal cavity 13 completely. The circuit board 2 is connected with the metal base 1 electronically. The circuit board 2 and the metal base 1 together enclose one space of the carinal cavity 13.
The circuit board 2 includes four 2*2 matrix distributed and interconnected sub-circuit boards 21.
In the embodiment, the sub-circuit board 21 is rectangular. Each of the sub-circuit boards 21 includes four conductive arms 211 connected from beginning to end and forming a rectangular ring and a first feed point end 212 and a second feed point end 213. Four conductive arm 211 encloses and forms carinal cavity 22. The first feed point end 212 and the second feed point end 213 extend vertically from the center of two opposite conductive arm 211 to the direction of the carinal cavity 22. The first feed point end 212, and the second feed point end 213 forms intervally a feed point port 23 of the subarray rectangular speaker element 10. Two ends of the feed point port 23 are connected with the first feed point end 212 and the second feed point end 213 electronically.
The setting of the sub-circuit board 21 with the first feed point end 212 and the second feed point end 213 makes the carinal cavity 22 show similar H shape. The feed signal is fed by the feed point port 23.
The phase-shifting unit 3 includes a phase-shifting chip 31 superimposed on the center of the PCB 2 and connected with four sub-circuit boards 21 electronically. In the embodiment, the phase-shifting chip 31 is a four-core phase-shifting chip. The phase-shifting chip 31 provides phase difference for all speaker elements 4 and lead reflection-mode of an antenna system 100 within the needed covering angle to ensure that horizon communication between transmitter and receiver not to be interrupted to add overall gain. Concretely, the phase-shifting chip 31 is used to make phase of all rectangular speakers of speaker element 4 to be distributed according to specific regular pattern to form the wave beam of high gain and wave beam scan within certain space range through the change of phase shifting, Lead reflection mode of antenna system in the needed covering angle to ensure that horizon communication between transmitter and receiver utilizing the antenna system 100 not to be interrupted to improve the reliability.
Preferably, the phase-shifting unit 3 also includes metal shielding part 32 covered entirely on the phase-shifting chip 31. The setting of the metal shielding part 32 can reduce and even eliminate the interference of the phase-shifting chip 31 on rectangular speaker 41 to improve the reliability of communication.
The speaker element 4 includes four rectangular speaker 41 which are distributed in the 2*2 matrix. Each rectangular speaker 41 is superimposed and fixed on one sub-circuit board 21 and forms an electronic connection. In the embodiment, the rectangular speaker 4 is millimeter wave antenna speaker.
Each one rectangular speaker 41 includes four side walls 411 connected from beginning to end and two ridges 412 opposite to the inner side of two side walls 411. The side wall 411 is superimposed and connected electronically on the conductive arm 211. Two ridges 412 are superimposed respectively and connected electronically on the first feed point end 212, and the second feed point end 213.
Preferably, a side wall 411 of each rectangular speaker 41 includes external wall 411a and inner wall 411b. The external wall 411a is vertical with the circuit board 2. The inner wall 411b expands gradually from one side closing to the circuit board 2 to one side far away from the circuit board 2 to make the cross-sectional area of one end of the wall 411 closing to the circuit board 2 larger than that of one end of that far away from the circuit board 2. Besides, in the embodiment, the external outline enclosed by inner wall 411b of the rectangular speaker 41 is square. The setting of the structure as mentioned above makes the rectangular speaker 41 form one speaker-shaped structure.
A ridge 412 is fixed in the inner wall 411b of the side wall 411. Specifically, the ridge 412 includes fixed part 4121 connected with the sub-circuit board 21 and one extension part 4122 extending from the fixed part 4121 to the extension part 4122 from the side wall 411 away from one end of the circuit board 2. The extension part 4122 expands from one end closing to fixed part 4121 to one end away from the fixed part 4121 gradually to make the cross-sectional area of one end of the extension part 4122 closing to the fixed art 4121 larger than that of one end of that away from the fixed part 4121.
Escape part 413 set on a side wall 411 of the rectangular speaker 41 escapes the metal shielding part 32. The metal shielding part 32 is bound inside the shielding part 413 and connected with the side wall 411.
The above-mentioned subarray rectangular speaker element 10 forms 2*2 millimeter wave antenna system structure phased-array.
Preferably. In the embodiment, the metal base 1 coincides with the external orthographic outline on the circuit board 2 of a speaker element 4 with external outline of a circuit board 2, which are square.
Referring to
In the antenna system of the invention, a subarray rectangular speaker element 10 also includes set embodiment of different quantity. The subarray rectangular speaker element 10 includes N pieces. N pieces subarray rectangular speaker element 10 are distributed in a matrix and interconnected electronically to form phased array antenna system structure. The metal base 1 of the N pieces of the subarray rectangular speaker element 10 is an integral forming structure. The circuit board, 2 of the N pieces of the sub-array speaker antenna element, are integral forming structure.
For example, phased-array system structure of 4*4 millimeter wave phase-array antenna system structure:
Shown as
In the embodiment, the antenna system 800 includes four subarray rectangular speaker element 80 which are distributed in a matrix and interconnected electronically to form millimeter wave phase-controlling antenna system structure of 4*4 rectangular distribution. The subarray rectangular speaker element 80 namely is the subarray rectangular speaker element 10 of the embodiment mentioned above.
Preferably, a metal base 801 of a subarray rectangular speaker element 80 is an integral structure. A circuit board 802 of four subarray rectangular speaker element 80 is an integral forming structure. Four phase-shifting unit 803 are superimposed respectively on the circuit board 802. Four speaker elements 804 are superimposed on four circuit board 802 and connected electronically. The structures of the metal base 801, the circuit board 802, the phase-shifting unit 803 and the speaker element 804 is the same as the corresponding structure of subarray rectangular speaker element of above-mentioned 2*2 rectangular-distributed millimeter waves phased-array antenna system structure.
In the embodiment, by combining that shown as
Shown as
Shown as
In the antenna system of the invention, the subarray rectangular speaker element 10 also includes another embodiment, 8*8 rectangularly distributed millimeter phased-array antenna system structure.
In the embodiment the subarray rectangular speaker element 130 includes 16 subarray rectangular speaker element 130 are distributed in a matrix and interconnected electronically and forms 8*8 rectangularly distributed millimeter wave phased array antenna system structure. The subarray rectangular speaker element 130 is namely subarray rectangular speaker element 10 in the embodiment mentioned above.
Preferably, the metal base 1301 of sixteen subarray rectangular speaker element 130 is an integral structure. The circuit board 1302 of 16 subarray rectangular speaker element 130 is an integral structure. Sixteen phase-shifting unit 1303 are super imposed on sixteen circuit boards 1302 respectively. Sixteen speaker elements 1304 are super imposed on sixteen circuit board 1302 and connected electronically. The structures of the metal base 1301, the circuit board 1302, the phase-shifting unit 1303 and the speaker element 1304 are the same as that of the corresponding structure of subarray rectangular speaker element of above-mentioned 2*2 rectangularly distributed millimeter wave phased-array antenna system structure, so do not repeat here anymore.
In the embodiment, shown as
It needs to explain that the quantity of the rectangular speaker element in the antenna system of the invention is not limited to one, four and sixteen and form a matrix arrangement for other quantity. The above-mentioned different embodiment is the different quantity of the rectangular speaker element. It is not limited to 16 matric rectangular speaker or 64 rectangular speaker element and but also forms rectangular speaker system of the phased array of larger size to reach total gain of the needed antenna system.
The invention also provides a communication terminal, which includes the above-mentioned antenna system provided by the invention.
Comparing with related technology, the antenna system in antenna system and communication terminal of the invention is designed into one or several sub-array rectangular speaker elements to form wave beam of high gain and make wave beam scan at larger space scope through phase-shifting change to ensure horizon communication between the transmitter of the antenna system and receiver not to be interrupted to make the communication signal of communication terminal using the antenna system strong, stable and have good reliability and covered range of frequency channel is wide.
It is to be understood, however, that even though numerous characteristics and advantages of the present exemplary embodiments have been set forth in the foregoing description, together with details of the structures and functions of the embodiments, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms where the appended claims are expressed.
Number | Date | Country | Kind |
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201811253306.2 | Oct 2018 | CN | national |