The present disclosure relates to a technology of a communication system, and more particularly, to a communication system with passive antenna subsets.
Active antenna arrays are often used in the wireless communication devices such as communication systems. If one active antenna array includes a coverage area of 120 degrees, it takes 3 sets of active antenna arrays to cover a coverage area of 360 degrees. However, the power consumption and the cost of the active antenna arrays are high. Therefore, how to decrease the power consumption and the cost of the communication system while maintaining the coverage area of the communication system is needed.
The disclosure provides a communication system. The communication system includes an active antenna set and a passive antenna set. The active antenna set includes at least one active antenna array, the at least one active antenna array is configured to transmit a first signal through at least one active beam group, and the at least one active beam group covers a first coverage area with a first coverage angle. The passive antenna set includes at least one passive antenna subset, the at least one passive antenna subset is configured to transmit a second signal through at least one passive beam group, and the at least one passive beam group covers a second coverage area with a second coverage angle. The first coverage area and the second coverage area do not overlap.
The disclosure provides a communication system. The communication system includes several passive antenna subsets. Each of the passive antenna subsets is configured to transmit a first signal through a passive beam group, in which the passive beam group covers an area with a coverage angle.
These and other features, aspects, and advantages of the present disclosure will become better understood with reference to the following description and appended claims.
It is to be understood that both the foregoing general description and the following detailed description are by examples, and are intended to provide further explanation of the disclosure as claimed.
The disclosure can be more fully understood by reading the following detailed description of the embodiment, with reference made to the accompanying drawings as follows:
Reference will now be made in detail to the present embodiments of the disclosure, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
Reference is made to
As illustrated in
As illustrated in
In some embodiments, the active antenna arrays 130a to 130c lines on the same X-Y plane, and the passive antenna subsets 150a to 150h lies on the same X-Y plane.
Each of the active antenna arrays 130a to 130c lies on an antenna panel, similarly, each of the passive antenna subsets 150a to 150h lies on an antenna panel. Different active antenna arrays 130a to 130c or different passive antenna subsets 150a to 150h lies on different antenna panels.
Moreover, the active antenna arrays 130a to 130c and the passive antenna subsets 150a to 150h lies perpendicular to the XY plane.
The active antenna arrays 130a to 130c face different directions from each other, and the passive antenna subsets face different directions from each other.
In some embodiments, each of the active antenna arrays 130a to 130c includes a coverage area with coverage angle being 120 degrees, and each of the passive antenna subsets 150a to 150h includes a coverage area with coverage angle being 45 degrees. However, the degrees of the coverage area are for illustrative purposes only, and the embodiments of the present disclosure are not limited thereto.
It should be noted that, in
In some embodiments, the passive antenna subsets and the active antenna arrays included in the communication system 100 can be operated selectively. For example, in one embodiment, the active antenna array 130a, the passive antenna subset 150a and the passive antenna subset 150b are operated while the others are not operated.
Reference is made to
The active antenna array 230a includes an active beam group 2B1, and the active beam group 2B1 includes active beams 2B11 to 2B1n. The active beam group 2B1 covers an area 2A1 with an angle of 120 degrees. The active antenna array 230a transmits signals through the active beam group 2B1.
The passive antenna subset 250a includes a passive beam group 2B2, and the passive beam group 2B2 includes passive beams 2B21 to 2B2n. The passive beam group 2B2 covers an area 2A2 with an angle of 45 degrees. Similarly, the passive antenna subset 250b includes a passive beam group 2B3, and the passive beam group 2B3 includes passive beams 2B31 to 2B3n. The passive beam group 2B3 covers an area 2A3 with an angle of 45 degrees. The passive antenna subset 250a transmits signals through the passive beam group 2B2, and the passive antenna subset 250b transmits signals through the passive beam group 2B3.
As illustrated in
The active antenna array 230a includes a normal N21 on the XY plane, the passive antenna subset 250a includes a normal N22 on the XY plane, and the passive antenna subset 250b includes a normal N23 on the XY plane. When the active antenna array 230a lies next to the passive antenna subset 250a, a configuration angle θ21 between the active antenna array 230a and the passive antenna subset 250a is equal to half of the coverage angle of the passive antenna subset 250a plus half of the coverage angle of the active antenna array 230a. Similarly, when the active antenna array 230a lies next to the passive antenna subset 250b, a configuration angle θ22 between the active antenna array 230a and the passive antenna subset 250b is equal to half of the coverage angle of the passive antenna subset 250b plus half of the coverage angle of the active antenna array 230a.
Reference is made to
The active antenna array 330a includes an active beam group 3B1, and the active beam group 3B1 includes active beams 3B11 to 3B1n. The active beam group 3B1 covers an area 3A1 with an angle of 120 degrees. The active antenna array 330a transmits signals through the active beam group 3B1.
The passive antenna subset 350a includes a passive beam group 3B2, and the passive beam group 3B2 includes passive beams 3B21 to 3B2n. The passive beam group 3B2 covers an area 3A2 with an angle of 45 degrees. The other passive antenna subsets 350b to 350d are similar to the passive antenna subset 350a and will not be described in detail here. The passive antenna subsets 350a to 350d transmit signals through the passive beam group 3B2 to 3B5.
As illustrated in
The active antenna array 330a includes a normal N31 on the XY plane, the passive antenna subset 350b includes a normal N32 on the XY plane, and the passive antenna subset 350a includes a normal N33 on the XY plane. When the active antenna array 330a lies next to the passive antenna subset 350b, a configuration angle θ31 between the active antenna array 330a and the passive antenna subset 350b is equal to half of the coverage angle of the passive antenna subset 350b plus half of the coverage angle of the active antenna array 330a.
Similarly, when the passive antenna subset 350b lies next to the passive antenna subset 350a, a configuration angle θ32 between the passive antenna subset 350b and the passive antenna subset 350a is equal to half of the coverage angle of the passive antenna subset 350b plus half of the coverage angle of the passive antenna subset 350a.
The number of the passive antenna subsets and the number of the active antenna arrays are not limited to the numbers as illustrated in
According to
According to
By adjusting the number of the active antenna arrays and the number of the passive antenna subsets, the coverage angle of the communication system can be adjusted.
Reference is made to
It should be noted that, in
In some embodiments, the passive antenna subsets 450a to 450h in the communication system 400 can be operated selectively. For example, in one embodiment, the passive antenna subset 450a and the passive antenna subset 450b are operated while the others are not operated.
Reference is made to
Each of the passive antenna subsets 450a to 450h includes one of the passive beam groups 5B1 to 5B8, and each of the passive beam groups 5B1 to 5B8 covers an area with an angle of 45 degrees. Each of the passive antenna subsets 450a to 450h transmits signals through one of the passive beam groups 5B1 to 5B8 in correspondence.
For example, the passive antenna subset 450a includes a passive beam group 5B1, and the passive beam group 5B1 includes several passive beams. The passive beam group 5B1 covers an area 5A1 with an angle of 45 degrees. The other passive antenna subsets 450b to 450h are similar to the passive antenna subset 450a and will not be described in detail here.
As illustrated in
The passive antenna subset 450a includes a normal N51 on the XY plane, and the passive antenna subset 450b includes a normal N52 on the XY plane. When the passive antenna subset 450a lies next to the passive antenna subset 450b, a configuration angle θ51 between the passive antenna subset 450a and the passive antenna subset 450b is equal to half of the coverage angle of the passive antenna subset 450a plus half of the coverage angle of the passive antenna subset 450b.
The number of the passive antenna subsets 450b to 450h as illustrated in
In
Reference is made to
Reference is made to
In the connection relationship, the base station 610 couples to the adapter board 620, and the adapter board 620 couples to the passive antenna subsets 650a to 650h.
The control circuit 612 couples to the active antenna set 630 and the passive antenna subsets 650a to 650h. The passive antenna subsets 650a to 650h form a passive antenna set.
The control circuit 612 controls the generation of the passive beams of the passive antenna set and the generation of the active beams of the active antenna set 630 by transmitting control signals to the active antenna set 630 and the passive antenna set.
Reference is made to
The adapter board 720 receives control signals, vertically polarized signals VS, and horizontally polarized signals HS from the base station 110, and the adapter board 720 transmits the control signals, vertically polarized signals VS, and horizontally polarized signals HS to the passive antenna subsets 750a to 750h, so as to control the generation of the passive beams of the passive antenna subsets 750a to 750h.
Reference is made to
The active antenna array 830 covers an area A81 with 120 degrees, the passive antenna subset 850a covers an area A82 with 45 degrees, and the passive antenna subset 850b covers an area A83 with 45 degrees.
The active antenna array 830 can only serve one user equipment (UE) within the area A81 of 120 degrees of coverage at a time. If there are three user equipment, for example, user equipment UE81 to UE83 as illustrated in
References are made to
In the example of
In some embodiments, the control circuit (for example, the control circuit 612 as illustrated in
In some other embodiments, the control circuit (for example, the control circuit 612 as illustrated in
In the example of
In some embodiments, the control circuit (for example, the control circuit 612 as illustrated in
In some other embodiments, the control circuit (for example, the control circuit 612 as illustrated in
Reference is made back to
Reference is made to
As illustrated in
Reference is made to
As illustrated in
Notably, although this embodiment adopts a configuration in which a quantity of the multiple antenna elements ANT is 16 and the quantity of each row of the multiple antenna elements ANT is 8, to achieve requirement that a beam width is 11 degrees and antenna gain of a main beam needs to be more than or equal to 15 dB, the quantity of the multiple antenna elements ANT and the quantity of each row can also be adjusted according to other requirements of beamwidth and antenna gain.
Furthermore, the substrate S includes a first surface S1 and a second surface S2 corresponding to each other. The ground layer G is disposed between the first surface S1 and the second surface S2. In some embodiments, the substrate S can be a printed circuit board (PCB) made of an insulating material, where material of the substrate S can be Teflon (PTFE) or epoxy resin (FR4) and other materials commonly used to manufacture PCBs. In some embodiments, the ground layer G can be made of a metal material such as copper foil.
Furthermore, the multi-branch circuit CCT is disposed on the first surface S1, where the multi-branch circuit CCT includes a signal feeding terminal and multiple signal output terminals, where the multiple feeding branches are formed between the signal feeding terminal and the multiple signal output terminals. In some embodiments, the multi-branch circuit has multiple branch nodes in multiple stages to form the multiple feeding branches between the signal feeding terminal and the multiple signal output terminals.
In some embodiments, the multiple branch nodes can be multiple unequal Wilkinson power dividers, and the multiple unequal Wilkinson power dividers are used for improving isolation between the multiple antenna elements ANT to control antenna gain of the multiple antenna elements ANT, thereby reducing side lobe interference. In some embodiments, the multiple unequal Wilkinson power dividers are further used for controlling the antenna gain of the multiple antenna elements ANT by controlling the multiple power ratios between the multiple antenna elements ANT.
Furthermore, the multiple antenna elements ANT are disposed on the second surface S2, where the multiple antenna elements are connected to the multiple signal output terminals through respective via holes VIA, and are configured for beamforming. In some embodiments, a feeding point of each antenna elements ANT can be connected to corresponding signal output terminal through the corresponding via hole VIA.
Furthermore, a length difference between path lengths of the feeding branches of two adjacent antenna elements in a horizontal direction (i.e., +x direction) is configured for controlling a beam angle θ of the multiple antenna elements (i.e., an angle between directions of a generated beam of the multiple antenna elements ANT and a normal direction of the second surface S2). In some embodiments, the antenna element ANT can be a patch antenna or other antennas applicable to an antenna array. In other words, the multiple antenna elements ANT can form one or more antenna arrays, where the antenna arrays can be patch antenna arrays.
In some embodiments, when each of the multiple antenna elements ANT is a vertically polarized patch antenna, the multiple antenna elements ANT are disposed on the second surface S2 in a horizontal mirror plane from row to row. In addition, when each of the multiple antenna elements ANT is a horizontally polarized patch antenna, the multiple antenna elements ANT are disposed on the second surface S2 in a vertical mirror plane from column to column.
In some embodiments, a phase difference between two adjacent antenna elements ANT in the horizontal direction is proportional to the length difference. In some embodiments, the beam angle θ of the multiple antenna elements ANT is proportional to the length difference. In some embodiments, an antenna distance d between geometric center positions of the adjacent two of the multiple antenna elements ANT in the horizontal direction is one-half wavelength of a center frequency of a resonant frequency band of the multiple antenna elements ANT.
The passive beam direction of the passive antenna subsets in the present disclosure can be adjusted by using the path lengths of the feeding branches in the multi-branch circuit CCT.
Generally, in an active antenna array, the signal passes through the power divider to each antenna element of the antenna array, and then passes through the phase shifter, and finally the signal is amplified by the power amplifier, and the signal is then radiated through the antenna. In a passive antenna subset, the signals of each channel passes through the phase shifter, and the signal is radiated directly by the antenna elements without being amplified by the power amplifier.
In some embodiments, the control circuit of the present disclosure may include a central processing unit (CPU), a microprocessor (MCU), a server, or other computing circuits with data access, data calculation, data storage, data transmission and reception, or similar functions, or element.
In summary, the embodiments of the present disclosure provide a communication system with passive antenna subsets. Since the construction cost of the passive antenna subsets are lower than the construction cost of the active antenna arrays, the construction cost of the communication system can be lower. Moreover, since the power consumption of the passive antenna subsets is lower than the power consumption of the active antenna arrays, the passive antenna subsets can save power. Furthermore, by constructing the communication system with the passive antenna subsets, the design of the communication system can be more flexible. For example, for directions those include no users or for directions that do not need to provide service, no antenna subsets or antenna array is needed. Last, since the passive antenna subsets has the ability to enable several beams at the same time. When serving the user equipment, beam scanning is not needed. When serving several user equipment at the same time, the stability of the link generated according to the beams can be maintained. Compared with traditional methods, the throughput is improved.
Although the present disclosure has been described in considerable detail with reference to certain embodiments thereof, other embodiments are possible. Therefore, the spirit and scope of the appended claims should not be limited to the description of the embodiments contained herein.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present disclosure without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the present disclosure cover modifications and variations of this disclosure provided they fall within the scope of the following claims.
Number | Date | Country | Kind |
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202210498484.1 | May 2022 | CN | national |
This application is a Continuation-in-part of U.S. application Ser. No. 17/929,751, filed September 6, 2022, which claims priority to Chinese Application Serial Number 202210498484.1, filed May 9, 2022, which is herein incorporated by reference in its entirety.
Number | Date | Country | |
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Parent | 17929751 | Sep 2022 | US |
Child | 18585066 | US |