Not applicable.
Not applicable.
Antennas that can adapt in a varying electromagnetic environment have drawn great attention in the growing era of 5G-network, CubeSats, and any other communication system that requires multiple established links. This antenna type has the beneficial ability to instantaneously alter its operating behavior (radiation pattern, frequency, polarization, space) to adjust in new electromagnetic behaviors.
In the case of an array antenna that requires pattern and space diversity for the signal to noise ratio and multipath effects improvement; the pattern and space traits are controlled. These are usually reconfigurable either by means of multiple expensive systems (transceivers) at each individual antenna element port, or by means of single to multiple port switch. In the first case, the issue appears at many expensive components needed for proper operation, while the second case can enable only one RF-port (antenna) at a time.
In one embodiment, the present invention provides a cost-effective solution where the array antenna system has a single RF-port with individually controlled radiating elements. This is achieved with a reconfigurable matching network, used to create a multiport enabled switch that connects to each antenna.
In other embodiment, the present invention provides a reconfigurable matching network to tune an RF circuit at different input impedances. The network can be 1 to N (N=1, 2, 3 . . . ) port with an independent number of ports activated (N, N−1, N−2 . . . ), sharing equally, at any instance, the supplied power. The network remains balanced during the ports' activation due to the reconfigurable tuning stubs and the stack topology design with uniform sections.
In other embodiment, the present invention provides a cube antenna with circular polarization. The embodiment exploits the switch to cover the Φ-plane in four 90°-degree sectors with sixteen alternative patterns provided by four reconfigurable ports, 2N (N=4).
In other embodiment, the present invention provides an array antenna system having a single RF-port with individually controlled radiating elements which is achieved with a reconfigurable matching network, used to create a multiport enabled switch that connects to each antenna.
In other embodiment, the present invention provides a system, method, and device comprising a reconfigurable matching network to tune an RF circuit at different input impedances.
In other embodiment, the present invention provides a system, method, and device wherein the network remains balanced during the ports' activation due to the reconfigurable tuning stubs and the stack topology design with uniform sections.
In other embodiment, the present invention provides a system, method, and device wherein a cube antenna with circular polarization exploits the switch to cover the Φ-plane in four 90°-degree sectors with sixteen alternative patterns provided by four reconfigurable ports, 2N (N=4).
In other embodiment, the present invention provides a system, method, and device comprising a reconfigurable tuning network used to create an independent-port RF switch that maintains good input matching during the alternative ports' activation.
In other embodiment, the present invention provides a system, method, and device wherein the tuning network has stack topology that allows symmetrical surface currents resulting in balanced matching for all the possible switching combinations.
In other embodiment, the present invention provides a system, method, and device wherein matching is achieved using stubs, where the reconfigurable stubs/reactance to match a variety of input impedances.
In other embodiment, the present invention provides a system, method, and device wherein each of the loads is reconfigurable by extending themselves using more active elements and stubs.
In other embodiment, the present invention provides a system, method, and device wherein the active elements can be any RF switch type, preferably of the type that introduces the least electromagnetic turbulence during the installation.
In other embodiment, the present invention provides a reconfigurable tuning networks wherein the signal is transmitted through a via, which may be copper, to the bottom switching port system, which may be uniform in construction.
In other embodiment, the present invention provides a reconfigurable tuning network wherein the system consists of uniform arms, each incorporating an RF switch to activate or deactivate the port that the signal is desired to reach.
In other embodiment, the present invention provides a reconfigurable tuning network having a reconfigurable independent active-port switch that can be used to form single RF-port array antennas, able to activate and deactivate radiating elements.
In other embodiment, the present invention provides a reconfigurable tuning network having a reconfigurable independent active-port switch that can be used to form single RF-port array antennas, able to activate and deactivate radiating elements and the active and passive components can be implemented at the output ports of the suggested 1 to N RF switch, forming a phased array antenna without the necessary implementation of transceivers to control individually each radiating element.
In the drawings, which are not necessarily drawn to scale, like numerals may describe substantially similar components throughout the several views. Like numerals having different letter suffixes may represent different instances of substantially similar components. The drawings generally illustrate, by way of example, but not by way of limitation, a detailed description of certain embodiments discussed in the present document.
Detailed embodiments of the present invention are disclosed herein; however, it is to be understood that the disclosed embodiments are merely exemplary of the invention, which may be embodied in various forms. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a representative basis for teaching one skilled in the art to variously employ the present invention in virtually any appropriately detailed method, structure, or system. Further, the terms and phrases used herein are not intended to be limiting, but rather to provide an understandable description of the invention.
In a preferred embodiment, the present invention provides a reconfigurable tuning network 100 used to create an independent-port RF switch that maintains input matching during an alternative ports' activation, as seen in
The tuning network of the present invention has stack topology that allows symmetrical surface currents resulting in balanced matching for all the possible switching combinations. In this case, it consists of two same 0.25 mm thick substrates 120 and 121 (RT6006, εr=6.15, tan δ=0.0019) sharing a common ground plane 122. The first substrate 120 accommodates the reconfigurable matching network 130 shown in
The reconfigurable matching network 200 located on the top substrate 120 as shown in
Initially, the signal path starts at the P0 port 270 at the 50 Ohm line TL1 (210). The line extends to a 0.8 pF capacitor 250, serving as DC-block, protecting the RF source. The λg/4-line TL2 (211) serves as an inductance transformer, at 35.35 Ohm, matches the 50 Ohm line TL1 (210) to the 25 Ohm line TL3 (212). This line has the two PIN diodes 230, 231 assembled on it, and an inductor 261 of 3.8 nH, as part of the DC-bias network.
The inductors allow the proper DC-circuit formation for the diodes' activation; diodes in turn are responsible for the reconfigurable stub integration in the switching network. The length of line TL3 (212) depends on the diodes integrated position. This position relies on the changeable input impedance at the point of VIA each time a new port is activated in the bottom layer. In other words, the matching happens using stubs, where the approach is the reconfigurable stubs/reactance to match a variety of input impedances. This approach is not limited just to the specific stub shown herein, but each of the stub can be reconfigurable too, by extending themselves using more active elements (320-322) and stubs (301-303) as
Additionally, the active elements can be any RF switch type (PIN diode, RF MEMS, Varactor, etc. . . . ), preferable the ones introduce the least electromagnetic turbulence during the installation. This is the key for stable tuning performance and the realization of numerous reconfigurable stubs.
Afterwards, the signal is transmitted through via 400 which may be a copper rod of 1.5 mm radius to the bottom uniform switching port system as shown in
The transmission line TL4 (430A-430D) serves to impedance match the previous line TL3 to the next line TL5. At the end section of TL4, the reconfigurable shunt stub is implemented to serve as an enabled RF choke to allow or block the power to be distributed to the RF port. In this case, as shown for arm 410 as the exemplar, each reconfigurable shunt stub 420 is comprised of a dc line 462, an inductor 463, and a diode dpn 464. The other arms of the system are similarly configured.
The state (ON/OFF) of the diode activates or deactivates respectively the RF choke into the arm. When the diode is on, the RF choke function is active and no RF reaches the port. When the diode is off, RF reaches the port.
The RF choke may be also achieved with a series configuration by having an RF switch to connect the two transmission lines TL4 and TL5, implemented at a distance that creates a virtual open load at the OFF state of the switch.
The choice between the two configurations of implementing the RF choke, series or shunt, depends on the active element characteristics, such as insertion loss and isolation at the ON and OFF states respectively. If more ports are requested, these are included maintaining the uniform system pattern 500 as shown in
The circuitry's reconfigurable condition for proper operation is provided in Table 1, showing the necessary diodes' state, OFF or ON, in respective binary form 0 or 1. As shown, all ports can be enabled alone or in combination with other ports, by activating the associate tuning stub. For instance, if two ports are desired to be enabled, tuning stub St2 is active to set this condition.
In case one port is enabled, then it receives all the supplied power RFin from the P0 port; if more than one port is enabled, the supplied power is equally shared among them in the same phase, while maintaining input matching. The simulated (in HFSS) reflection coefficient and signal phase at each port, are depicted in
The electromagnetic balanced behavior of the system is seen in
As shown in
The switching ports described previously are now extended to the feeding port of the four planar arrays that are aligned orthogonally with each other to form the cube. Each planar array has a stack topology with the radiating elements located at the top layer 900 (a 0.5 mm thick RO3003 substrate, εr=3, tan δ=0.0013) and the feeding network 921 located at the bottom layer 920 (a 0.25 mm thick RT6006 substrate), separated by a common ground 930 to improve isolation, as seen in
The radiating elements that compose the array are rectangular truncated patches aligned sequentially and fed through VIAs (copper rods) by a sequentially rotated power divider. The divider delivers equal power in a consecutive phase difference (90° degrees at Fc=10 GHz) between the elements, as seen in
The unique performance that the reconfigurable switching system provides to an antenna application is shown in
Inexpensive and simple antennas like the present invention with independent multiple beam steering are novel designs thanks to the newly introduced mechanism they are driven by. Similarly, the reconfigurable tuning network can be used to approach different reconfigurable antenna models such as polarization diverse, frequency diverse, or a combination of other radiating characteristics.
While the foregoing written description enables one of ordinary skill to make and use what is considered presently to be the best mode thereof, those of ordinary skill will understand and appreciate the existence of variations, combinations, and equivalents of the specific embodiment, method, and examples herein. The disclosure should therefore not be limited by the above-described embodiments, methods, and examples, but by all embodiments and methods within the scope and spirit of the disclosure. In addition, to the above description, the materials attached hereto form part of the disclosure of this provisional patent application.
This application claims priority to U.S. Provisional Application No. 63/035,501, filed on 2020 Jun. 5, which is incorporated herein in its entirety.
Number | Name | Date | Kind |
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20140266962 | Dupuy | Sep 2014 | A1 |
Number | Date | Country |
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WO-2020005231 | Jan 2020 | WO |
Number | Date | Country | |
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63035501 | Jun 2020 | US |