Beem-Steering Apparatus for an Antenna Array
Beam-steering for a 2-dimensional array of an arbitrary number of radiating elements around both possible axes may be accomplished using a limited number of control components. By selectively coupling signal lines to different feed ports of the antenna array's feed network, it is possible to steer the main beam.
The current disclosure relates to steerable antenna arrays, and in particular to an apparatus for beam-steering an antenna array.
BACKGROUNDAntenna arrays are used to provide an antenna that has a main beam or lobe that can be steered. The steering of the main beam allows the antenna to transmit in a preferential direction, namely the direction of the main beam, or provide increased reception sensitivity to signals received from the direction of the main beam. Antenna arrays generally comprise a plurality of individual radiating elements, which may also be referred to as array elements, whose transmission or reception is phase-shifted relative to other radiating elements. Circuitry for beam-steering, or controlling the transmission/reception direction of the main beam, may comprise individual phase-shifters and/or delay units for each of the individual radiating elements. As the target frequency range of an antenna increases, the ideal spacing of radiating elements in the array decreases. The reduced spacing between radiating elements may increase the complexity in implementing the beam-steering circuitry and feed network used to connect to the radiating elements. Further, the beam-steering circuitry may require a relatively large number phase-shifters and/or delay units, especially when it is required to steer the beam in 2 dimensions, which may increase the cost and complexity.
Additional, alternative, and/or improved beam-steering of an antenna array is desirable.
Embodiments are described herein with reference to the appended drawings, in which:
In accordance with the present disclosure there is provided an apparatus for beam-steering an antenna array comprising: a plurality of feed ports for coupling to respective phase-mode ports of an antenna array's feed network; a main port coupled to a transceiver; a phase-mode feed port selector for selectively coupling first and second signal lines to respective ones of the plurality of feed ports; and a signal processing circuit for processing signals between the first and second signal lines and the main port, the processing allowing independent scanning of a main beam of the antenna array in both a radial direction and a circumferential direction relative to an array axis perpendicular to a plane of the antenna array.
In a further embodiment of the apparatus for beam-steering, the phase-mode feed selector selectively couples the first signal line to a feed port associated with an nth phase-mode port of the antenna array's feed network and the second signal line to a feed port associated with an nth+1 or nth−1 phase-mode port of the antenna array's feed network.
In a further embodiment of the apparatus for beam-steering, wherein the signal processing circuit comprises: a first hybrid splitter/combiner; a first variable phase shifter connected between the first signal line and the first hybrid splitter/combiner; a second hybrid splitter/combiner coupled to the second signal line and the first hybrid splitter/combiner; a third hybrid splitter/combiner coupled to the second hybrid splitter/combiner; and a pair of variable phase shifters connected between the second hybrid splitter/combiner and the third hybrid splitter/combiner.
In a further embodiment of the apparatus for beam-steering, the pair of variable phase shifters and the first variable phase shifter are independently controllable.
In a further embodiment of the apparatus for beam-steering, the first, second and third phase shifters are controlled over a range of −π to +π radians
In a further embodiment of the apparatus for beam-steering, the phase-mode feed selector further couples a third signal line to a respective one of the plurality of feed ports through a fourth phase shifter controlled in opposition to the first phase shifter to the first hybrid splitter/combiner.
In a further embodiment of the apparatus for beam-steering, a steered main beam is described by: M=k[Pn+/−1 cos Ø−Pnejθ sin Ø] where: k is a constant; Pn is provided by the first signal line; Pn+/−1 is provided by the second signal line; Ø is provided by a radial control signal for controlling the pair of variable phase shifter; and θ is provided by a circumferential control signal for controlling the third variable phase shifter.
In a further embodiment of the apparatus for beam-steering, a total number of hybrid splitter/combiners and variable phase shifters is independent of a number of antenna elements in the antenna array.
In a further embodiment, the apparatus for beam-steering further comprises a cascaded input coupled to a cascaded main port of a cascaded circuitry for processing signals of the 0th phase mode, the −1st phase mode and the +1st phase mode, wherein the a phase-mode feed port selector can selectively couple the cascaded input to the second line.
In accordance with the present disclosure there is further provided a steerable antenna array system comprising: an antenna array feed network comprising a plurality of radiating elements arranged in a circular planar array and a plurality of phase-mode ports each associated with a different phase-mode of the antenna array; and an apparatus for beam-steering an antenna array comprising: a plurality of feed ports for coupling to respective phase-mode ports of the antenna array's feed network; a main port coupled to a transceiver; a phase-mode feed port selector for selectively coupling first and second signal lines to respective ones of the plurality of feed ports; and a signal processing circuit for processing signals between the first and second signal lines and the main port, the processing allowing independent scanning of a main beam of the antenna array in both a radial direction and a circumferential direction relative to an array axis perpendicular to a plane of the antenna array.
In a further embodiment of the system, the phase-mode feed selector selectively couples the first signal line to a feed port associated with an nth phase-mode port of the antenna array's feed network and the second signal line to a feed port associated with an nth+1 or nth−1 phase-mode port of the antenna array's feed network.
In a further embodiment of the system, the signal processing circuit comprises: a first hybrid splitter/combiner;
a first variable phase shifter connected between the first signal line and the first hybrid splitter/combiner;
a second hybrid splitter/combiner coupled to the second signal line and the first hybrid splitter/combiner;
a third hybrid splitter/combiner coupled to the second hybrid splitter/combiner; and
a pair of variable phase shifters connected between the second hybrid splitter/combiner and the third hybrid splitter/combiner.
In a further embodiment of the system, the pair of variable phase shifters and the first variable phase shifter are independently controllable.
In a further embodiment of the system, the first, second and third phase shifters are controlled over a range of −π to +π radians
In a further embodiment of the system, the phase-mode feed selector further couples a third signal line to a respective one of the plurality of feed ports through a fourth phase shifter controlled in opposition to the first phase shifter to the first hybrid splitter/combiner.
In a further embodiment of the system, a steered main beam is described by: M=k[Pn+/−1 cos Ø−Pnejθ sin Ø] where: k is a constant; Pn is provided by the first signal line; Pn+/−1 provided by the second signal line; Ø is provided by a radial control signal for controlling the pair of variable phase shifter; and θ is provided by a circumferential control signal for controlling the third variable phase shifter.
In a further embodiment of the system, a total number of hybrid splitter/combiners and variable phase shifters is independent of a number of antenna elements in the antenna array.
In a further embodiment, the system further comprises a cascaded input coupled to a cascaded main port of a cascaded circuitry for processing signals of the 0th phase mode, the −1st phase mode and the +1st phase mode, wherein the a phase-mode feed port selector can selectively couple the cascaded input to the second line.
In accordance with the present disclosure there is further provided a method for beam-steering an antenna array comprising: receiving an indication of a steering direction of a main lobe; determining two of a plurality of phase mode ports for providing the desired steering direction; generating control signals for coupling the determined phase mode ports to respective first and second signal lines; determining first and second phase shifting values for applying to the respective signal lines to provide the steering direction, the first and second phase shifting values allowing independent scanning of a main beam of the antenna array in both a radial direction and a circumferential direction relative to an array axis perpendicular to a plane of the antenna array; generating first and second phase shifting signals according to the determined first and second phase shifting values.
In a further embodiment of the method, a steered main beam is described by: M=k[Pn+/−1 cos Ø−Pnejθ sin Ø] is a constant; Pn is provided by the first signal line; Pn+/−1 is provided by the second signal line; Ø is provided by the first phase shifting signal for controlling a pair of variable phase shifter; and θ is provided by the second phase shifting signal for controlling a further variable phase shifter.
As described further below, beam-steering for a 2-dimensional array of an arbitrary number of radiating elements around both possible axes may be accomplished using a limited number of control components. By selectively coupling signal lines to different feed ports of the antenna array's feed network, it is possible to steer the main beam. Further, by selectively coupling signal lines to higher-order phase modes of a circular antenna array's feed network it is possible to provide steering of the main beam over an extended range. As described further below, it is possible to use 3 phase-shifters in combination with 3 hybrid splitter/combiners, referred to as hybrids for brevity, through proper selection of phase-mode feed connections to the phase-mode feed network of an antenna array. Although the beam-steering techniques described herein may be used for beam-steering of antenna arrays broadly, the techniques may be well suited to large, planar circular arrays of small radiating elements for microwave and higher frequencies with radiating elements spaced approximately half a wavelength apart and requiring 2-axis control of the antenna array's main beam direction over a selectable range around the antenna array's nominal pointing direction. By using a fixed number of control components such as phase-shifters and hybrids to control an arbitrary number of radiating elements, the current beam-steering technique may reduce the difficulty of integrating the control components which do not scale appreciably with wavelength into the antenna array structure. The complexity of associated chip interconnections, as well as calibration and control processes may also be reduced due to the fixed number of control components.
Returning to
The beam steering component 120 further includes a phase-mode feed selection component 126 that allows signal lines of the signal processing to be selectively coupled to the different phase-mode feed ports 108 of the antenna array and feed network 102. The phase-mode feed selection component 126 allows selection of one or more phase-modes to use for the transmission/reception. As depicted in
As described above, the phase-mode feed selection allows coupling respective signal lines to one or more of the phase-mode feed ports 110, which results in combining of the radiation patterns of the particular phase modes. The phase-mode feed selection may be viewed as selecting a possible range of tilt, or radial steering, of the main beam. The independent control provided by the signal processing provides further tilt, or radial, steering within the selected range as well as steering the beam circumferentially about the array's radiation axis.
As can be seen from
The antenna array and feed network 802 comprises a plurality of individual radiating elements 804 arranged circumferentially in a radiating plane. Each of the radiating elements 804 is coupled to a feed network, depicted schematically as a star 806, having a number of phase-mode feed probes coupled to phase-mode feed ports 808a, 808b, 808c, 808d, 808e (referred to collectively as phase-mode feed. Each of the different phase-mode feed ports 808 is associated with a different phase-mode of the antenna array. The antenna array and feed network 802 is depicted as having 4 phase-mode feed ports 804a, 804b, 804c, 804e however, it is possible to have additional phase-mode feed ports, depicted as port 804d in order to allow transmission and reception of different order phase modes. The feed network 806 depicted in
When transmitting, one or more of the phase-mode feed ports 808 are driven with appropriate signals from the beam steering apparatus 810 in order to generate the desired radiation pattern. When receiving, the beam steering apparatus 810 receives signals from one or more of the phase-mode feed ports 808.
The beam-steering apparatus 810 comprises a phase-mode feed selector 812 for selectively coupling a first signal line 816a and a second signal line 816b (referred to collectively as signal lines 816) to respective ones of the plurality of feed ports 808 of the antenna array's feed network. Each of the signal lines 816 can be selectively coupled, for example by switching circuitry 812, to a particular phase-mode feed port of the beam steering apparatus, which in turn may be coupled to corresponding phase-mode feed ports of the antenna array and feed network 802. The signal lines 816 provide the input to processing circuitry 820 of the beam steering apparatus 810 for receiving signals and provide the output from the processing circuitry 820 of the beam steering apparatus 810 for transmitting signals. The switching circuitry 812, may be provided with respective switches 814a, 814b that are controlled by respective control signals ‘S1’ 818a and ‘S2’ 818b. The switching circuitry 812 may be controlled in order to couple the first signal line 816a to a particular phase-mode feed port and to couple the second signal line 816b to another phase-mode feed port that is one phase mode higher or lower than the phase-mode coupled to the first signal line. For example, the first signal line 816a may be connected to the 2nd order phase mode feed port and the second signal line 816b may be connected to the 1st order phase mode feed port.
The signal processing circuitry 820 comprises a number of components including a plurality of hybrid splitter/combiners 824, 826, 828 and a plurality of variable phase shifters 830a, 830b, 836. Each of the hybrid splitter/combiners 824, 826, 828 is a bi-directional 4-port component. The ports of the hybrid splitter/combiners may function as inputs or outputs depending upon whether receiving or transmitting and how the hybrids are connected. Each of the hybrids has 4 ports that may be labelled as ‘A,’ ‘B,’ ‘C,’ ‘D’ with the relationship between the ports' signals given by:
As depicted in
As depicted in
Turning to the third hybrid 828, the ‘C’ port of the third hybrid may be used as a second auxiliary signal ‘A2’ 840b. The ‘A’ port of the third hybrid may be terminated as depicted schematically by connection 842. The ‘B’ port of the third hybrid 828 is coupled to the first signal line 816a through a third variable phase shifter 836. The phase shift provided by the variable phase shifter 836, depicted as θ 838, controls the circumferential direction of the main beam.
The transmission or reception direction of the main beam may be controlled by selecting which phase mode feed ports will be connected to the beam-steering apparatus. The selection determines which phase mode radiation patterns will be combined, and so determines a possible radial, or tilt, range for the main beam. The radial angle of the main beam may be further steered by varying the phase shift provided by the pair of variable phase shifters 830a, 830b through the φ control signal 834. The circumferential direction of the main beam may be steered by varying the phase shift provided by the θ signal 838. The phase shifters may be varied over a range of −π to +π radians. For reception, the signal M 822 provided to the receiver is described by:
M=k[Pn+/−1 cos Ø−Pnejθ sin Ø] (2)
-
- k is a constant;
- Pn is provided by the first signal line 816a;
- Pn+/−1 is provided by the second signal line 816b;
- Ø is provided by the radial control signal 834; and
- η is provided by the circumferential control signal 838.
The system 900 may operate in the same manner as the system 800 by connecting the third signal line 916 to the termination port 942. Alternatively, the first, second and third signal lines 814a, 814b, 914 may be connected to respective phase-mode feed ports of the antenna array's feed network. For example, the second signal line 814b may be connected to the zero-th order phase mode feed port (P0), the first signal line 814a may be connected to the first phase mode feed port (P1) and the third signal line 914 may be connected to the negative-first phase mode feed port (P−1). In such a connection there is no phase progression with physical angles in the steered main beam M. Since there is no phase progression in the main beam, it can be used in place of the 0-order phase-mode at an input phase-mode port of a cascaded beam-steering apparatus, such as one of the type shown in
The second beam-steerer 1010b includes a port 1042 coupled to the steered main beam 1044 of the first beam-steerer circuitry 1010a. The switching circuitry of the second beam-steerer 1010b may be selectively coupled to the steered main beam 1044. The remaining phase-mode input port of the second beam-steerer would be connected to the first or negative-first phase-mode port of the same phase-mode feed network. Cascading the steered main beam without phase progression with the beam steering circuitry of the second beam-steerer in this way allows greater range in radial steering of the main beam at the output of the second beam-steerer. As depicted, with two cascaded beam-steerers 1010a, 1010b, there are additional auxiliary ports ‘a1’ and ‘a2’ that may be used for various purposes including for example interference mitigation, direction finding and/or feedback for control of the beam steering.
The beam steering circuitry described above may be used for controlling the steering of a main beam transmitted or received by a phase mode feed antenna and feed network. The antenna array described above comprises a circular array of a number of radiating elements that are capable of transmitting and receiving in different phase modes. The beam steering circuitry could also be used in controlling the beam steering of a non-circular array. For example, the antenna array may be for example, a square of polygonal filled central array for the P0 and a polygonal peripheral ring array for the Pn and the P−n phase modes. The antenna may alternatively use a filled circular array such as a radial slot array. The filled circular array may be excited from multiple feeds to effect different phase modes. Further, the above beam steering circuitry has been described as using variable phase shifters. The phase shifting functionality may be provided as IQ modulators.
Once the two phase modes have been determined, phase shifting values required to provide the desired steering direction are determined (1108). The determination of the phase shifting values may be determined from equation (2) set forth above, where Ø and θ are the phase shifting values. Once the required phase shifting values are determined, the appropriate signals are generated (1110) for applying the phase shifting values to the phase shifters.
The above has described various functionality provided by various systems or components. The functionality may be provided as a combination of hardware, firmware and software comprising instructions stored in a memory that are executed by a processor. The executed instructions configure devices to provide at least some of the functionality described. Although specific embodiments are described herein, it will be appreciated that modifications may be made to the embodiments without departing from the scope of the current teachings. Accordingly, the scope of the appended claims should not be limited by the specific embodiments set forth, but should be given the broadest interpretation consistent with the teachings of the description as a whole.
Claims
1. An apparatus for beam-steering an antenna array comprising:
- a plurality of feed ports for coupling to respective phase-mode ports of an antenna array's feed network;
- a main port coupled to a transceiver;
- a phase-mode feed port selector for selectively coupling first and second signal lines to respective ones of the plurality of feed ports; and
- a signal processing circuit for processing signals between the first and second signal lines and the main port, the processing allowing independent scanning of a main beam of the antenna array in both a radial direction and a circumferential direction relative to an array axis perpendicular to a plane of the antenna array,
- wherein the signal processing circuit comprises: a first hybrid splitter/combiner; a first variable phase shifter connected between the first signal line and the first hybrid splitter/combiner; a second hybrid splitter/combiner coupled to the second signal line and the first hybrid splitter/combiner; a third hybrid splitter/combiner coupled to the second hybrid splitter/combiner; and a pair of variable phase shifters connected between the second hybrid splitter/combiner and the third hybrid splitter/combiner,
- wherein the phase-mode feed selector further couples a third signal line to a respective one of the plurality of feed ports through a fourth phase shifter controlled in opposition to the first phase shifter to the first hybrid splitter/combiner.
2. The apparatus of claim 1, wherein the phase-mode feed selector selectively couples the first signal line to a feed port associated with an nth phase-mode port of the antenna array's feed network and the second signal line to a feed port associated with an nth+1 or nth−1 phase-mode port of the antenna array's feed network.
3. (canceled)
4. The apparatus of claim 1, wherein the pair of variable phase shifters and the first variable phase shifter are independently controllable.
5. The apparatus of claim 4, wherein the first, second and third phase shifters are controlled over a range of −π to +π radians
6. (canceled)
7. The apparatus of claim 1, wherein a steered main beam is described by:
- M=k[Pn+/−1 cos Ø−Pnejθ sin Ø]
- where: k is a constant; Pn is provided by the first signal line; Pn+/−1 is provided by the second signal line; Ø is provided by a radial control signal for controlling the pair of variable phase shifter; and θ is provided by a circumferential control signal for controlling the third variable phase shifter.
8. The apparatus of claim 1, wherein a total number of hybrid splitter/combiners and variable phase shifters is independent of a number of antenna elements in the antenna array.
9. The apparatus of claim 1, further comprising a cascaded input coupled to a cascaded main port of a cascaded circuitry for processing signals of the 0th phase mode, the −1st phase mode and the +1st phase mode, wherein the a phase-mode feed port selector can selectively couple the cascaded input to the second line.
10. A steerable antenna array system comprising:
- an antenna array feed network comprising a plurality of radiating elements arranged in a circular planar array and a plurality of phase-mode ports each associated with a different phase-mode of the antenna array; and
- an apparatus for beam-steering an antenna array comprising: a plurality of feed ports for coupling to respective phase-mode ports of the antenna array's feed network; a main port coupled to a transceiver; a phase-mode feed port selector for selectively coupling first and second signal lines to respective ones of the plurality of feed ports; and a signal processing circuit for processing signals between the first and second signal lines and the main port, the processing allowing independent scanning of a main beam of the antenna array in both a radial direction and a circumferential direction relative to an array axis perpendicular to a plane of the antenna array.
- wherein the signal processing circuit comprises: a first hybrid splitter/combiner; a first variable phase shifter connected between the first signal line and the first hybrid splitter/combiner; a second hybrid splitter/combiner coupled to the second signal line and the first hybrid splitter/combiner; a third hybrid splitter/combiner coupled to the second hybrid splitter/combiner; and a pair of variable phase shifters connected between the second hybrid splitter/combiner and the third hybrid splitter/combiner,
- wherein the phase-mode feed selector further couples a third signal line to a respective one of the plurality of feed ports through a fourth phase shifter controlled in opposition to the first phase shifter to the first hybrid splitter/combiner.
11. The system of claim 10, wherein the phase-mode feed selector selectively couples the first signal line to a feed port associated with an nth phase-mode port of the antenna array's feed network and the second signal line to a feed port associated with an nth+1 or nth−1 phase-mode port of the antenna array's feed network.
12. (canceled)
13. The system of claim 10, wherein the pair of variable phase shifters and the first variable phase shifter are independently controllable.
14. The system of claim 13, wherein the first, second and third phase shifters are controlled over a range of −π to +π radians
15. (canceled)
16. The system of claim 10, wherein a steered main beam is described by:
- M=k[Pn+/−1 cos Ø−Pnejθ sin Ø]
- where: k is a constant; Pn is provided by the first signal line; Pn+/−1 is provided by the second signal line; Ø is provided by a radial control signal for controlling the pair of variable phase shifter; and θ is provided by a circumferential control signal for controlling the third variable phase shifter.
17. The system of claim 10, wherein a total number of hybrid splitter/combiners and variable phase shifters is independent of a number of antenna elements in the antenna array.
18. The system of claim 10, further comprising a cascaded input coupled to a cascaded main port of a cascaded circuitry for processing signals of the 0th phase mode, the −1st phase mode and the +1st phase mode, wherein the a phase-mode feed port selector can selectively couple the cascaded input to the second line.
19. A method for beam-steering an antenna array comprising:
- receiving an indication of a steering direction of a main lobe;
- determining two of a plurality of phase mode ports for providing the desired steering direction;
- generating control signals for coupling the determined phase mode ports to respective first and second signal lines;
- determining first and second phase shifting values for applying to the respective signal lines to provide the steering direction, the first and second phase shifting values allowing independent scanning of a main beam of the antenna array in both a radial direction and a circumferential direction relative to an array axis perpendicular to a plane of the antenna array;
- generating first and second phase shifting signals according to the determined first and second phase shifting values,
- wherein a steered main beam is described by: M=k[Pn+/−1 cos Ø−Pnejθ sin Ø] where: k is a constant; Pn is provided by the first signal line; Pn+/−1 is provided by the second signal line; Ø is provided by the first phase shifting signal for controlling a pair of variable phase shifter; and θ is provided by the second phase shifting signal for controlling a further variable phase shifter.
20. (canceled)
Type: Application
Filed: Nov 27, 2015
Publication Date: Jun 1, 2017
Inventor: Marek Klemes (Kanata)
Application Number: 14/953,222