Distributed Control System for Beam Steering Applications
20230061805 · 2023-03-02
Inventors
Cpc classification
H01Q21/28
ELECTRICITY
H01Q19/005
ELECTRICITY
H01Q9/0421
ELECTRICITY
H01Q3/2611
ELECTRICITY
H01Q3/44
ELECTRICITY
H01Q3/2629
ELECTRICITY
International classification
H01Q1/52
ELECTRICITY
H01Q13/08
ELECTRICITY
H01Q19/00
ELECTRICITY
H01Q13/20
ELECTRICITY
Abstract
A technique is described where the switch and/or tunable control circuit for use with an active multi-mode antenna is positioned remote from the antenna structure itself for integration into host communication systems. Electrical delay and impedance characteristics are compensated for in the design and configuration of transmission lines or parasitic elements as the active multi-mode antenna structure is positioned in optimal locations such that significant electrical delay is introduced between the RF front-end circuit and multi-mode antenna. This technique can be implemented in designs where it is convenient to locate switches in a front-end module (FEM) and the FEM is located in vicinity to the transceiver.
Claims
1-18. (canceled)
19. An antenna system, comprising: a ground plane; a first multi-mode antenna, comprising: a first radiating element spaced apart from the ground plane and defining a first antenna volume therebetween; and a first parasitic element spaced apart from the ground plane, the first parasitic element positioned outside of the first antenna volume and adjacent to the first radiating element; and a second multi-mode antenna, comprising: a second radiating element spaced apart from the ground plane and defining a second antenna volume therebetween; and a second parasitic element spaced apart from the ground plane, the second parasitic element positioned outside of the second antenna volume and adjacent to the second radiating element.
20. The antenna system of claim 19, wherein: the first multi-mode antenna further comprises a first active tuning circuit, the first active tuning circuit configured to vary a reactance associated with the first parasitic element; and the second multi-mode antenna further comprises a second active tuning circuit, the second active tuning circuit configured to vary a reactance associated with the second parasitic element.
21. The antenna system of claim 20, wherein the first active tuning circuit is configured to configure the first multi-mode antenna in one of the plurality of modes.
22. The antenna system of claim 20, wherein the second active tuning circuit is configured to configure the second multi-mode antenna in one of the plurality of modes.
23. The antenna system of claim 19, wherein: the first active tuning circuit is integrated with a first front-end module; the second active tuning circuit is integrated with a second front-end module; the first front-end module and the second front-end module being associated with a communication system.
24. The antenna system of claim 23, further comprising: a first switch disposed within the first front-end module and coupled to the first parasitic element; and a second switch disposed within the second front-end module and coupled to the second parasitic element.
25. The antenna system of claim 24, wherein: the first switch is configured to generate a radiation mode of a plurality of radiation modes of the first multi-mode antenna, and the second switch is configured to generate a radiation mode of a plurality of radiation modes of the second multi-mode antenna.
26. The antenna system of claim 23, further comprising: a transceiver coupled to the first front-end module and the second front-end module; a baseband processor coupled to the transceiver; a control line coupling the first front-end module to the second front-end module; and an algorithm stored in a microprocessor of the first front-end module, wherein the algorithm is configured to control the first multi-mode antenna and the second multi-mode antenna.
27. The antenna system of claim 23, further comprising: a transceiver coupled to the first front-end module and the second front-end module; a baseband processor coupled to the transceiver; a first control line coupling the baseband processor to the first front-end module; a second control line coupling the baseband processor to the second front-end module; and an algorithm stored in the baseband processor, wherein the algorithm is configured to control the first multi-mode antenna and the second multi-mode antenna.
28. The antenna system of claim 19, wherein the first multi-mode antenna further comprises a conductor positioned above the ground plane and adjacent to the first parasitic element.
29. The antenna system of claim 28, wherein the conductor is coupled between the first parasitic element and the first active tuning circuit.
30. The antenna system of claim 19, wherein the first multi-mode antenna is configurable in a plurality of modes, each of the plurality of modes having a distinct radiation pattern.
31. The antenna system of claim 19, wherein the second multi-mode antenna is configurable in a plurality of modes, each of the plurality of modes having a distinct radiation pattern.
32. The antenna system of claim 19, wherein the first radiating element comprises: a vertical portion disposed on the ground plane; and a horizontal portion extending from the vertical portion.
33. The antenna system of claim 19, wherein the second radiating element comprises: a vertical portion disposed on the ground plane; and a horizontal portion extending from the vertical portion.
34. The antenna system of claim 19, further comprising: a first transmission line coupled between the first radiating element and the first active tuning circuit; and a second transmission line coupled between the second radiating element and the second active tuning circuit.
35. The antenna system of claim 34, wherein: the first transmission line comprises a coaxial transmission line, a microstrip transmission line, a stripline transmission line, a co-planar waveguide, or a parallel wire transmission line; and the second transmission line comprises a coaxial transmission line, a microstrip transmission line, a stripline transmission line, a co-planar waveguide, or a parallel wire transmission line.
36. The antenna system of 34, wherein: the first transmission line comprises a single conductive trace; and the second transmission line comprises a single conductive trace or a plurality of traces.
37. The antenna system of claim 19, wherein: the first parasitic element is configured to provide electromagnetic coupling between the first radiating element and the first parasitic element; and the second parasitic element is configured to provide electromagnetic coupling between the second radiating element and the second parasitic element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0035] An antenna system and related technique is described where a switch and/or tunable control circuit for a multi-mode antenna system is positioned remote from the antenna structure and integrated into a host communication system. Electrical delay and impedance characteristics are compensated for in the design and configuration of transmission lines or parasitic elements as the multi-mode antenna structure is positioned remote from the RF front-end circuit and transceiver. This technique can be implemented in designs where it is required to locate switches in a front-end module (FEM) for size or cost considerations and the FEM is located at a distance from the multi-mode antenna. This technique will allow for integration of the switch function into another RFIC such as the FEM found in most radios.
[0036] In one embodiment of the present invention, a multi-mode antenna is positioned on the circuit board of a host communication device with the switch used to alter the reactive loading on the coupled parasitic element associated with the multi-mode antenna located at a distance from the parasitic element. A transmission line is used to connect the switch to the parasitic element and the characteristic impedance of the transmission line is adjusted to optimize the correlation coefficient between modes generated by the multi-mode antenna, the frequency bandwidth of the multi-mode antenna, and/or the return loss of the various modes generated by the multi-mode antenna. The transmission line used to connect the switch to the parasitic element can take the form of a coaxial transmission line, a microstrip transmission line, a co-planar transmission line, a stripline structure, or a parallel wire configuration.
[0037] In another embodiment of the present invention, the switch used to alter the reactive loading on the coupled parasitic element associated with the multi-mode antenna located at a distance from the parasitic element is connected to the parasitic element using a control line etched or fabricated into the circuit board of the host communication device. This control line can be a control line typically used for GPIO (general purpose input output), SPI (serial peripheral interface), MIPI (mobile industry processor interface), or other types of digital control interfaces. A single conductive trace is used for the connection between switch and parasitic element, with the trace connected to the end of the parasitic element closest to the ground layer of the circuit board. An impedance transformer or matching circuit can be implemented at the switch/control line junction or at the control line/parasitic element junction, with this transformer or matching circuit used to optimize the operation of the mode generation of the multi-mode antenna.
[0038] In another embodiment of the present invention, the switched used as part of the multi-mode antenna is located within a front-end module (FEM) of a communication system. Locating the switch in the FEM provides cost and size reduction benefits when compared to the switch being located at the parasitic element of the multi-mode antenna. In addition, area or volume savings are realized since traces for power and control signals to the switch are no longer required to be etched into the host circuit board at the multi-mode antenna. Embedding the switch into an existing RFIC such as a FEM provides substantial cost savings and coincides with the trend in the communications industry to develop and implement “systems on a chip” where higher orders of integration occur to reduce the component count in a system.
[0039] In yet another embodiment of the present invention, two or more multi-mode antennas can be integrated into a communication system for MIMO capability where these two or more antennas transmit and receive signals. For these situations where multiple multi-mode antennas are integrated into a single communication device all of the switches required to implement the multi-mode antenna technique can be integrated in the FEMs to optimize the radio system layout. The multiple FEMs can be located in proximity to the single multi-port transceiver to reduce transmission line length between the transceiver and FEMs, which will reduce losses and electrical delay. The multiple multi-mode antennas can be positioned in locations to optimize isolation and correlation in the antenna system without regards to routing control and power signals to switches located at the multi-mode antennas.
[0040] In another embodiment of the present invention, a multi-mode antenna can be configured where an antenna element is positioned in close proximity to a first parasitic element. A second parasitic element is positioned in proximity to the first parasitic element with this second parasitic element coupled to a switch. This switch is used to generate the various modes of the multi-mode antenna by changing the reactive loading on the second parasitic element which couples to the first parasitic element, and where the first parasitic element couples to the antenna element. This configuration provides a method of coupling a switch positioned at a distance to an antenna element and parasitic element pair to form a multi-mode antenna capable of generating multiple modes. The coupling mechanism between the pair of parasitic elements can be controlled by the spacing and orientation between parasitic elements. The two parasitic elements can be positioned parallel to each other or the second parasitic element can be positioned such that it is non-parallel to the first parasitic element. As previously described the switch can be connected to the second parasitic element using a control line or transmission line to further extend the distance between the multi-mode antenna and switch. The switch can be integrated within the FEM or transceiver to simplify the design and layout of the radio system.
[0041] In another embodiment of the present invention, a multi-mode antenna connected to a FEM will have a plurality of parasitic elements coupled to the multi-mode antenna, with each parasitic element connected to a switch within the FEM to provide a capability to alter the radiation mode of the multi-mode antenna.
[0042] Now turning to the drawings,
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