DIRECTIONAL COUPLER ARRANGEMENT
20220238979 · 2022-07-28
Inventors
Cpc classification
H01P5/18
ELECTRICITY
International classification
Abstract
A directional coupler arrangement, comprising: a directional coupler comprising a direct path and a first coupled port and a second coupled port; a compensation arrangement configured to provide a coupling between signals of the first coupled port and of the second coupled port; wherein the compensation arrangement is configured to improve a directivity when compared to a directivity of the directional coupler by the coupling.
Claims
1. An apparatus comprising: a directional coupler comprising: a first coupled port; a second coupled port; a direct path between two ports; and a compensation circuit configured to provide a coupling between signals of the first coupled port and of the second coupled port, wherein the compensation circuit is configured to improve a directivity of the directional coupler with respect to the direct path as compared to a directivity of the directional coupler by the coupling.
2. The apparatus according to claim 1, wherein the compensation circuit comprises: a respective coupling network provided at the first and the second coupled port; and one of an added transmission network provided between each of the respective coupling networks, or a switch which is configured to alternatively couple to the first and the second coupled port.
3. The apparatus according to claim 2, wherein each of the respective coupling networks comprises: a circuit comprising any one of power dividers, an additional directional coupler or a power splitter, which comprises passive or active elements, wherein the directivity of the directional coupler is improved by adjusting a circuit configuration or values of the passive or active elements.
4. The apparatus according to claim 2, wherein the added transmission network comprises a transmission line, and wherein the directivity of the directional coupler is improved by adjusting a length of the transmission line.
5. The apparatus according to claim 2, wherein the added transmission network comprises a lumped element, and wherein the directivity of the directional coupler is improved by adjusting a value of the lumped element.
6. The apparatus directional coupler arrangement according to claim 2, wherein the switch comprises: a first switch port connected to the first coupled port and a second switch port connected to the second coupled port and a third switch port, and wherein a state in which the switch connects the first switch port with the third switch port, a cross-talk from the second switch port to the first switch port, or a crosstalk from the second switch port to the third switch port contributes to an increase of the directivity of the directional coupler; and wherein a state in which the switch connects the second switch port with the third switch port, a cross-talk from the first switch port to the second switch port, or a crosstalk from the first switch port to the third switch port contributes to an increase of the directivity of the directional coupler.
7. The apparatus according to claim 6, wherein an S-matrix of the switch is adapted to at least partially compensate a no-ideal directivity of the directional coupler.
8. The apparatus according to claim 2, wherein the switch comprises: a first switch port connected to the first coupled port, a second switch port connected to the second coupled port and a third switch port, and wherein the switch is configured to alternatively couple one of the first or second coupled ports with an evaluation device and another one of the first or second coupled ports with a termination.
9. The apparatus according to claim 6 wherein the switch comprises at least one single pole double throw through switch, SPDT.
10. A method for operating a directional coupler circuit, comprising: providing a directional coupler: comprising a direct path; a first coupled port; and a second coupled port; providing a coupling between signals of the first coupled port and of the second coupled port using a compensation circuit, and wherein the compensation circuit is configured to improve a directivity by the direct path when compared to a directivity of the directional coupler by the coupling.
11. The method according to claim 10, wherein the compensation circuit comprises: coupling networks respectively provided at the first and the second coupled port, and at least one of an added transmission network provided between the coupling networks, or an switch which is configured to alternatively couple the first and the second coupled port.
12. The method according to claim 11, wherein the coupling networks comprise: a circuit comprising any one of power dividers, an additional directional coupler or a power splitter, which comprises passive or active elements, and further comprising adjusting a circuit configuration or values of the passive or active elements to improve the directivity of the directional coupler.
13. The method according to claim 11, wherein the added transmission network comprises a transmission line, and further comprising adjusting a length of the transmission line to improve the directivity of the directional coupler.
14. The method according to claim 11, wherein the added transmission network comprises a lumped element, and wherein the method further comprises adjusting value of the lumped element to improve the directivity of the directional coupler.
15. The method according to claim 11, wherein the switch comprises: a first switch port connected to the first coupled port, a second switch port connected to the second coupled port and a third switch port, and further comprising: utilizing, in a state in which the switch connects the first switch port with the third switch port, a cross-talk from the second switch port to the first switch port, or a crosstalk from the second switch port to the third switch port, wherein the crosstalk contributes to an increase of a directivity of the directional coupler and; utilizing, in a state in which the switch connects the second switch port with the third switch port, a cross-talk from the first switch port to the second switch port, or a crosstalk from the first switch port to the third switch port, wherein the crosstalk contributes to an increase of a directivity of the directional coupler.
16. The method according to claim 15, further comprising adapting an S-matrix of the optimized switch to at least partially compensate a directivity of the directional coupler that is non-ideal.
17. The method according to claim 11, wherein the switch comprises: a first switch port connected to the first coupled port, a second switch port connected to the second coupled port and a third switch port, and further comprising to alternatively coupling one of the coupled ports with an evaluation device and another one of the coupled ports with a termination.
18. An apparatus comprising: a directional coupler comprising: a first coupled port; a second coupled port; and a direct path between a first port and a second port; and a compensation circuit configured to provide a coupling between signals of the first coupled port and of the second coupled port, wherein the compensation circuit is configured to improve a directivity of the directional coupler via the direct path as compared to a directivity of the directional coupler by the coupling.
19. The apparatus according to claim 18, wherein the compensation circuit comprises: a respective coupling network provided at each of the first and the second coupled port; and one of an added transmission network provided between each of the respective coupling networks, or a switch configured to alternatively couple to the first and the second coupled port.
20. The apparatus according to claim 19, wherein a coupling network comprises: a circuit comprising any one of power dividers, an additional directional coupler or a power splitter, which comprises passive or active elements, and wherein the directivity of the directional coupler is improved by adjusting a circuit configuration or values of the passive or active elements.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0038] Embodiments according to the invention will subsequently be described taking reference to the enclosed figures in which:
[0039]
[0040]
[0041]
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[0044]
[0045]
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DETAILED DESCRIPTION OF THE EMBODIMENTS
[0050]
[0051] As indicated in
[0052]
[0053] Each of the added coupling networks 212, 214 comprise a circuit of a three-port network, e.g., power dividers or additional directional coupler (high directivity is not required) or power splitter. In addition, the coupling network comprises passive (lumped or distributed) components or active components or combination of the passive and active components. The directivity of the directional coupler is improved by adjusting the circuit configuration or values of the circuit components or both of the circuit configuration and the values of the circuit components depended on the coefficients of the directional coupler. That is, the directivity in a predetermined frequency sub-band is improved by changing the circuit configuration (to add/omit circuit component/element), i.e. mechanically tune, and/or changing the element/component values, i.e. electrically tune, dependent on the coefficients of the directional coupler.
[0054] The added transmission network could be a single transmission line or a lamped element (capacitor or inductor) in the simplest case. More in general, the added transmission network could be a two-port network with specified scattering matrix to be determined in conjunction with the ones of the directional coupler and coupling network.
[0055]
[0056]
[0057]
[0058] In detail, the switch 310 is configured such that, in state in which the switch connects the first switch port P2D with the third switch port P3″, a cross-talk from the second switch port P3D to the first switch port P2D, or a crosstalk from the second switch port P3D to the third switch port P3″ contributes to an increase of a directivity of the directional coupler arrangement, e.g. in that a cross talk signal coupled via an open path of the switch at least partially compensates a parasitic signal component, e.g. present at the first coupled port P3, originating from a non-ideal directivity of the directional coupler at the third switch port P3″. In addition, or alternatively, the switch 310 is configured such that, in state in which the switch connects the second switch port P3D with the third switch port P3″, a cross-talk from the first switch port P2D to the second switch port P3D, or a crosstalk from the first switch port P2D to the third switch port P3″ contributes to an increase of a directivity of the directional coupler arrangement, e.g. in that a cross talk signal coupled via an open path of the switch at least partially compensates a parasitic signal component, e.g. present at the second coupled port P4, originating from a non-ideal directivity of the directional coupler at the third switch port P3″. That is, the switch, SPDT, of this embodiment has one common RF port and two selectable RF ports, and the SPDT is designed to properly and simultaneously operate.
[0059]
[0060] The switch 410 is configured to alternatively couple one of the coupled ports P3, P4 with an evaluation device, e.g. a receiver Rx and another one of the coupled ports P3, P4 with a termination, e.g. a matched impedance Rm. In case a generator is connected to the port P1 (P2), a load to the port P2 (P1) and a receiver RX to the third switch port P3″, with the optimized switch, i.e., the SPDT, in position to connect the first switch port P2D and the third switch port P3″, the receiver 412, i.e., Rx receives a signal proportional to the one delivered to (reflected from) the load, and the second switch port P3D is coupled with the termination 414, i.e., Rm. In case a generator is connected to the port P1 (P2), a load to the port P2 (P1) and the receiver Rx to P3″, with the optimized switch, i.e., the SPDT, in position to connect the second switch port P3D to the third switch port P3″, the receiver Rx receives a signal proportional to the one reflected from (delivered to) the load, and the first switch port P2D is coupled with the termination Rm. That is, the first and second coupled ports P3, P4 are closed on a matched impedance for any position of the switch, i.e., the switch is alternatively couple one of the coupled ports with an evaluation device (Rx) 412 and another one of the coupled ports with a termination (Rm) 414. The optimized switch 410 is also designed in combination with the known scattering matrix of the directional coupler, i.e., the scattering parameter s.sub.23 with the proper amplitude und phase in the same manner as the optimized switch 310 of
[0061] As already mentioned above, the SPDT must be absorptive, i.e., the first and second coupled ports P3 and P4 have to see a matched impedance independently from the selected port to the third switch port P3″ (P3 or P4). There are many ways to realize or implement the required absorptive SPDT, and another example is shown in
[0062] As indicated in
[0063] As mentioned above, there are many possible arrangements of the optimized switch and the implementation arrangements of the optimized switch are not limited above mentioned examples.
[0064]
[0065]
Implementation Alternatives
[0066] Although some aspects have been described in the context of an apparatus, it is clear that these aspects also represent a description of the corresponding method, where a block or device corresponds to a method step or a feature of a method step. Analogously, aspects described in the context of a method step also represent a description of a corresponding block or item or feature of a corresponding apparatus.