Multipath switching system having adjustable phase shift array
09634389 ยท 2017-04-25
Assignee
Inventors
- Ming-Chien Tseng (Zhubei, TW)
- Ming-Hung Cheng (New Taipei, TW)
- Hsin-Piao Lin (Taoyuan, TW)
- Ching-Jen Chang (New Taipei, TW)
Cpc classification
International classification
Abstract
A multipath switching system comprising of an adjustable phase shift array includes, an adjustable phase shift array module and a control module. The adjustable phase shift array module receives a radio-frequency (RF) signal, and includes at least one RF switch, at least one coupler and at least one phase shifter. The at least one RF switch, the at least one coupler and the at least one phase shifter form a number of transmission paths. The transmission paths respectively produce the processed transmission RF signals corresponding to different phase shifts to an antenna array. The control module controls the at least one RF switch and the at least one phase shifter of the adjustable phase shift array module, so that the antenna array radiates a wireless signal whose direction is corresponding to a predetermined angle in space polar coordinates.
Claims
1. A multipath switching system comprising of an adjustable phase shift array, comprising: an adjustable phase shift array module, for receiving a radio-frequency (RF) signal, comprising at least one RF switch, at least one coupler and at least two phase shifters; the at least one RF switch, the at least one coupler and the at least two phase shifters forming at least two transmission paths, the transmission paths respectively receiving the RF signal, and respectively outputting a plurality of processed RF signals corresponding to different phase shifts to an antenna array; and a control module, for controlling the at least one RF switch and the at least two phase shifters of the adjustable phase shift array module, so that the antenna array radiates a wireless signal whose direction is corresponding to a predetermined angle in space polar coordinates, wherein as for a plurality of antennas of the antenna array, a phase shift between every two adjacent antennas is selected among a plurality of candidate phase differences selected by the control module; and the adjustable phase shift array module comprises three RF switches, three couplers and six phase shifters; the three RF switches comprise first to third RF switches, the three couplers comprise first to third couplers, and the six phase shifters comprise first to sixth phase shifters; the antenna array comprises four antennas; inputs of the first coupler are connected in series to the first RF switch, the first phase shifter and the second phase shifter are respectively connected to two outputs of the first coupler, the second RF switch is connected to the first phase shifter and inputs of the second coupler, the third RF switch is connected to the second phase shifter and inputs of the third coupler, the third phase shifter and the fourth phase shifter are respectively connected to two outputs of the second coupler, and the fifth phase shifter and the sixth phase shifter are respectively connected to two outputs of the third coupler.
2. The multipath switching system according to claim 1, wherein the control module selects-one from a plurality of candidate phase differences, and controls the RF switches and the phase shifters according to the selected one of the candidate phase differences between every adjacent two of the antennas, so that the antenna array radiates the wireless signal whose direction is corresponding to the predetermined angle in space polar coordinates.
3. The multipath switching system according to claim 1, wherein the first and second phase shifters produce four different phase shifts selectively, and the third to sixth phase shifts produce two different phase shifts, respectively.
4. The multipath switching system according to claim 3, wherein the first and second phase shifter respectively comprise three phase shift units connected in series, the third to sixth phase shifters respectively comprise one phase shift unit, and each of the phase shift units comprise a microstrip line and a switch element.
5. The multipath switching system according to claim 1, wherein each of the at least one phase shifter selectively provides a plurality of different phase shifts.
6. The multipath switching system according to claim 1, wherein each of the at least one phase shifter comprises at least one microstrip line and at least one switch element.
7. The multipath switching system according to claim 1, wherein the at least one phase shifter is a parallelly connected type phase shifter.
8. The multipath switching system according to claim 1, wherein the at least one phase shifter is a serially connected type phase shifter.
9. The multipath switching system according to claim 1, wherein the at least one phase shifter is a serially-parallelly connected type phase shifter.
10. The multipath switching system according to claim 1, wherein each of the at least one coupler has a first input, a second input, a first output and a second output; when a signal is inputted at the first input, a signal phase difference between the first output and the first input is 90 degrees, and the signal phase difference between the second output and the first input is 180 degrees; and when the signal is inputted at the second input, the signal phase difference between the first output and the second input is 180 degrees, and the signal phase difference between the second output and the second input is 90 degrees.
11. The multipath switching system according to claim 1, wherein the control module comprises a controller and a switching array unit; the switching array unit stores control information of the at least one RF switch and the at least one phase shifter corresponding to a plurality of candidate phase differences; and the controller controls the adjustable phase shift array module according to information contents stored in the switching array unit.
12. The multipath switching system according to claim 11, wherein the switching array unit stores simplified control digital values of the at least one RF switch and the at least one phase shifter of the adjustable phase shift array module.
13. The multipath switching system according to claim 1, wherein the at least one RF switch is a combination of high-frequency microwave switches.
14. The multipath switching system according to claim 1, wherein the at least one RF switch is a single-pole double-throw (SDPT) switch, an impedance matching switch, or a switch with a terminal resistance.
15. The multipath switching system according to claim 1, wherein the at least one coupler is a branch line coupler, a ring coupler, a parallel line coupler, a microstrip line coupler or a stripline coupler.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(12) In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
DETAILED DESCRIPTION
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(14) The control module 104 controls the at least one RF switch and the at least one phase shifter of the adjustable phase shift array module 102, so that the antenna array 106 outputs a wireless signal WL corresponding to a predetermined angle in space polar coordinates.
(15) For example, the multipath switching system 100 is used in a communication system 101. The RF signal Srf1 is generated by an RF signal generation circuit 108, and is transmitted by a transmitting/receiving switch 110 switched to a transmitting mode to the adjustable phase shift array module 102. The RF signal generation circuit 108 generates the RF signal Srf1 based on a signal from a baseband digital signal processing circuit 116.
(16) When the transmitting/receiving switch 110 is switched to a receiving mode, the communication system 101 is capable of receiving and processing a wireless signal. Upon receiving a wireless signal WL, the antenna array 106 converts the received electromagnetic wireless signal WL to an RF signal Srf2. The RF signal Srf2 is processed by the adjustable phase shift array module 102 to generate an RF signal Srf1. The RF signal Srf1 is transmitted to the RF signal generation circuit 108 and the baseband digital signal processing circuit 116 via the transmitting/receiving switch 110 for subsequent baseband signal processing.
(17) For example, the control module 104 comprises a controller 112 and a switching array unit 114. The switching array unit 114 stores control information of the at least one RF switch and the at least one phase shifter corresponding to a number of candidate phase differences. The controller 112 controls the adjustable phase shift array module 102 with reference to information stored in the switching array unit 114.
(18) Further, the adjustable phase shift array module 102 may comprise a number of RF switches, a number of couplers and a number of phase shifters. The antenna array 106 comprises a number of antennas. The control module 104 selects one from a number of candidate phase differences, and controls the RF switches and the phase shifters according to the selected candidate phase difference. Accordingly, the phase difference for every two of the antennas have the selected candidate phase difference, so that the antenna array 106 outputs a wireless signal corresponding to a predetermined angle in space polar coordinates.
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(21) Each RF switch may be consisted of three switches. For example, the RF switch 202_1 comprises switches 410, 412 and 412, each of which having three end points. An input of the switch 410 receives the RF signal Srf1 or outputs the RF signal Srf1. Inputs of the switches 412 and 414 are respectively connected to two outputs of the switch 410. Outputs of the switches 412 and 414 are connected to two inputs 1 and 4 of the coupler 204_1.
(22) The couplers 204_1, 204_2 and 204_3 have an input 1 and an input 4, and an output 2 and an output 3, respectively. When the signal is inputted at the input 1, the signal phase difference between the output 2 and the input 1 is 90 degrees, and the signal phase difference between the output 3 and the input 1 is 180 degrees. When a signal is inputted at the input 4, the signal phase difference between the output 2 and the input 4 is 180 degrees, and the signal phase difference between the output 3 and the input 4 is 90 degrees.
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(25) As seen from
(26) It can be similarly deduced that, the antennas 208_2 and 208_4 respectively phase shifts of output wireless signals are 180+090=270 degrees and 180+0180=360 degrees. Therefore, the phase shift between every two antennas (e.g., the antennas 208_2 and 208_1) is 45 degrees.
(27) The control information of the RF switches and phase shifters can be stored in the switching array unit 114, and the controller 112 controls the adjustable phase shift array module 102 according to the information contents stored in the switching array unit 114. The control information in
(28) For example, since the digital values of the control bits 10 to 15 exist in only two patterns, 011011 and 100100, it can be simplified that only one control bit is used for replacing the control bits 10 to 15. That is, 0 and 1 of the one control bit can respectively represent the above two patterns. Similarly, the control bits 1 to 3 can also be replaced by one control bit, as shown in
(29) In the above embodiment, the phase shifters 206_1 and 206_2 respectively are a serially connected type, in which three switch elements (six switches) are connected in series as shown in
(30) The phase shifts corresponding to the microstrip lines, the number of microstrip lines, the number of switches, and connection methods of the microstrip lines and the switches may be modified according to actual needs, and are not limited to those shown in
(31) The above RF switch may be a combination of high-frequency microwave switches. The high-frequency microwave switch may be a single-pole double-throw (SPDT) switch, an impedance matching switch, or a switch with a terminal resistance. The above coupler may be a branch line coupler, a ring coupler, a parallel line coupler, a microstrip line coupler or a stripline coupler. Different couplers could be applied to produce different phase shifts and sum to different spatial angles by antenna array.
(32) The foregoing embodiment is applicable to bidirectional signal transmission. That is, although an example of an antenna transmitting wireless signals is illustrated in the foregoing embodiment, the embodiment is also suitable for situations of an antenna receiving wireless signals.
(33) Further, in the foregoing embodiment, the 12 candidate phase differences corresponding to 12 angles in space polar coordinates of the antenna 106 are given as an example, which is not a limitation to the disclosure. The number of angles in space polar coordinates (corresponding to the number of directions of beams) may be associated with 2.sup.n. When n=2, 2.sup.n=2.sup.2=4, and the candidate phase differences may be /4, /4, 3/4 and 3/4. At this point, there are 2.sup.2=4 directions which could be formed within a 180-degree range in the front of the antenna 106. When n=3, 2.sup.n=2.sup.3=8, and the candidate phase differences may be /8, /8, 3/8, 3/8, 5/8, 5/8, 7/8 and 7/8. At this point, there are 2.sup.2+2.sup.3=12 directions (corresponding to /4, /4, 3/4, 3/4, /8, /8, 3/8, 3/8, 5/8, 5/8, 7/8 and 7/8) which could be formed within a 180-degree range in the front of the antenna 106. When n=4, 2.sup.n=2.sup.4=16, and the candidate phase differences may be /16, /16, 3/16, 3/16, 5/16, 5/16, 7/16, 7/16, 9/16, 9/16, 11/16, 11/16, 13/16, 13/16, 15/16 and 15/16. At this point, there are 2.sup.2+2.sup.3+2.sup.4=28 directions which could be formed within a 180-degree range in the front of the antenna 106. That is to say, the number of angles in space polar coordinates is 2.sup.n+2.sup.n-1+2.sup.n-2 . . . .
(34) For the embodiment, 12 spatial angles of the beam in the disclosure, the arrangement of antenna array is line type which arranged by four omni-directional antennas and the distance between every two antennas is half wavelength for transmission signal.
(35) In the multipath switching system including an adjustable phase shift array according to the embodiments, different phase shift can be produced not only by different paths, but also by the same path through controlling the states of the switches. By generating the required signal phase delay for the antennas, the antenna array is enabled to produce different spatial directions and angles for the main beam. Therefore, the multipath switching system having an adjustable phase shift array according to the embodiments, featuring a simple circuit architecture, low costs and easy controlling procedures, can be effectively integrated to an existing architecture and applied to RF front end for wireless communication without changing system architecture of base station.
(36) It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments. It is intended that the specification and examples be considered as exemplary only, with a true scope of the disclosure being indicated by the following claims and their equivalents.