Plurality of resonator cavities coupled by inductive apertures which are adjusted by capacitive parts
09812751 · 2017-11-07
Assignee
Inventors
Cpc classification
H01P1/2053
ELECTRICITY
International classification
H01P1/205
ELECTRICITY
Abstract
One or more adjustable resonators (208, 209) of a compensation circuit are arranged so that adjusting the resonators nevertheless results in output of the circuit remaining substantially constant. This has been accomplished by separating resonator cavities that include the adjustable resonators by a partition wall. A coupling aperture (205) provides inductive coupling between the resonator cavities and a capacitive part (206) passes through the intermediate wall and provides a capacitive coupling between the resonator cavities. The capacitive part is conductive and electrically isolated from the partition wall. The capacitive part and the coupling aperture are dimensioned such that effects on the coupling band width of the aperture and capacitive couplings track each other so as to substantially cancel each other out, and that the coupling band width between the resonator cavities remains substantially constant.
Claims
1. An adjustable cavity resonator having a bottom, walls and a lid forming a transmission path inner conductor casing, the casing being divided into a plurality of adjustable resonator cavities, a pair of successive adjustable resonator cavities of the plurality of adjustable resonator cavities being separated by an intermediate conductive wall, the pair of successive adjustable resonator cavities including respective inner conductors, which are in electrical connection with the inner conductor casing and having a coupling aperture in the conductive intermediate wall which separates the pair of adjustable resonator cavities, the coupling aperture providing a coarse coupling between the pair of successive adjustable resonator cavities, the coupling aperture being arranged to inductively couple the pair of successive adjustable resonator cavities, characterized in that the coarse coupling has at least one capacitive part, arranged to form a capacitive coupling between the pair of successive adjustable resonator cavities, wherein the capacitive part has a first end extending into a first one of the pair of successive adjustable resonator cavities and a second end extending into a second one of the pair of successive adjustable resonator cavities, wherein the first and second ends of the capacitive part are formed of a conductive material and are galvanically isolated from the intermediate conductive wall, wherein the capacitive part is dimensioned such that as the successive pair of adjustable resonator cavities are tuned, changes in coupling band width caused by the capacitive part tend to cancel changes in the coupling band width caused by the coupling aperture.
2. The adjustable cavity resonator according to claim 1, wherein the capacitive part is characterised in that the capacitive part is an elongated plate-like piece.
3. The adjustable cavity resonator according to claim 1, wherein the first and second ends of the capacitive part are shaped to enhance coupling.
4. The adjustable cavity resonator according to claim 3, wherein the first and second ends of the capacitive part have respective surface areas that are greater than the cross-sectional area of a remainder of the capacitive part.
5. The adjustable cavity resonator according to claim 1 wherein the coupling aperture and the capacitive part are arranged to provide a change in bandwidth of 12 percent when the adjustable cavity resonators are tuned over a range between 1.9 GHz and 2.5 GHz.
6. The adjustable cavity resonator according to claim 1, wherein a magnitude of the change in coupling band width due to the capacitive part is less than an absolute value of the change in coupling band width due to the coupling aperture.
7. The adjustable cavity resonator according to claim 6, wherein the absolute value of the change in coupling band width due to the capacitive part is between 40%-60% of the change in coupling band width due to the inductive coupling of the coupling aperture.
8. The adjustable cavity resonator according to claim 1, wherein the coupling aperture and the capacitive part are arranged in the intermediate conductive wall separating the pair of successive adjustable resonator cavities.
9. The adjustable cavity resonator according to claim 1, wherein the capacitive part is fixed in position with respect to the intermediate conductive wall.
10. The adjustable cavity resonator according to claim 1 wherein the coupling aperture and the capacitive part are arranged to provide a change in bandwidth of 2 percent when the adjustable cavity resonators are tuned over a range between 2.1-GHz and 2.3 GHz.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will now be described in detail. In the description reference is made to the accompanying drawings, in which
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DETAILED DESCRIPTION OF THE INVENTION
(9) In the following description, the embodiments are exemplary only and the person skilled in the basic idea of the invention will understand that other embodiments may be structured in some other way than described in the specification. Although the description may refer to one or more embodiments, it does not mean that the description is limited to the described embodiment or feature or that the invention described would be useful only in conjunction with the illustrated embodiment. Two or more individual features of embodiments can be combined and thus provide novel embodiments of the invention.
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(12) The first resonator cavity 201 and the second resonator cavity 203 include a capacitive part 206. The capacitive part 206 has an elongated part which penetrates septum 202. The capacitive part 206 has a shape and a location relative to the partition wall that are substantially symmetrical in relation to the inner conductors 204 and 207. The capacitive part 206 is made of a conductive material. The capacitive part is arranged in such a way that the capacitive part is galvanically isolated from the partition wall. In this example, the capacitive part 206 is placed so that the capacitive part includes a first region and a second region between the inner conductors. In one example of the invention, the capacitive part 206 is plate-shaped, but other shapes are possible, for example, rods, tubes, or a combination of several forms.
(13) The capacitive part 206 forms a capacitive coupling between the resonators. Thus, for example, in the case of the coupling aperture being formed by inductive and capacitive coupling, these connections are opposite to each other. When the frequencies of the resonators are changed, inductive and capacitive coupling also change. For example, when the frequency of the resonators are moved downwardly, the two couplings are reduced. Due to the characteristics of the capacitive coupling, the capacitive coupling is reduced more quickly than the inductive coupling. Both connection changes cancel each other out, and the overall connection will remain roughly the same in spite of the frequency adjustment. Studies have shown that the best results are obtained when the coupling aperture and the capacitive part 206 are selected so that the amount of capacitive coupling is smaller than the absolute value of the inductive coupling. Absolute value of the amount of capacitive coupling is from 40% to 60% of the inductive coupling if the coupling aperture. The capacitive part is shown in
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(17) A resonator arrangement according to the present invention does not necessarily have to be rectangular as is shown in the examples, but the resonator arrangement may be, for example cylindrical or another shape. A resonator in a regular geometric shape allows for ease of the calculation of properties and evaluation as wed as ease of industrial manufacturing.
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(20) An arrangement in accordance with the present invention enables the use of adjustable resonators allows for easy adjustment of the device, since the coupling device according to the example is not affected by resonance frequency changes with respect to the changes that occur for existing cavity resonator filters.
(21) Having described the invention in accordance with certain preferred embodiments. The present invention is not limited to the solutions just described, bur the inventive idea can be applied in numerous ways within the limits of die appended claims.