Resonator And Filter With Resonator
20170317662 · 2017-11-02
Assignee
Inventors
Cpc classification
H03H3/007
ELECTRICITY
H03H9/24
ELECTRICITY
International classification
H03H9/24
ELECTRICITY
Abstract
A resonator, in particular a high-frequency resonator, includes a resonator housing with a resonator space formed therein and a container with a cavity in which a liquid crystal is accommodated, wherein the container is at least partially arranged in the resonator space and includes an electrode configuration for generating an electric control field for controlling the permittivity of the liquid crystal.
Claims
1. A resonator comprising: a resonator housing, in which a resonator space is formed; a container with a cavity, in which a liquid crystal is accommodated, wherein the container is at least partially arranged in the resonator space, wherein the container comprises an electrode configuration for generating an electric control field in order to control the permittivity of the liquid crystal.
2. The resonator of claim 1, wherein the container is formed in a rod-shaped manner and is provided in the resonator housing such that the container protrudes into the resonator space from a wall of the resonator housing, which wall delimits the resonator space.
3. The resonator of claim 2, wherein the cavity extends in longitudinal direction of the container.
4. The resonator of claim 1, wherein the cavity is formed like a circular cylinder.
5. The resonator of claim 1, wherein the electrode configuration comprises multiple control electrodes which extend in longitudinal direction of the container, which control electrodes are arranged around the cavity and around a longitudinal axis of the container.
6. The resonator according to claim 5, wherein the multiple control electrodes comprise four control electrodes.
7. The resonator according to claim 5, wherein the multiple control electrodes are arranged equidistantly around the cavity and around a longitudinal axis of the container.
8. The resonator of claim 5, wherein the electrodes are arranged on an outer circumference of the container.
9. The resonator of claim 6, wherein the electrodes are printed onto the outer circumference.
10. The resonator of claim 5, wherein the electrodes are formed integrally in the container.
11. The resonator according to claim 10, wherein the electrodes are adjacent to or integrated into an inner wall of the container.
12. The resonator of claim 1, wherein the container is made of a dielectric material.
13. The resonator of claim 1, wherein the electrode configuration is formed such that signals in the resonator which can inject into the electrode configuration are not lead out of the resonator housing.
14. The resonator of claim 13, wherein the electrode configuration comprises electrodes with a cross section that changes along their direction of extension.
15. The resonator of claim 1, wherein the cavity of the container is fluidically connected with a compensation device arranged outside the resonator housing.
16. The resonator of claim 15, wherein the container extends through the resonator housing.
17. A filter, wherein the filter comprises: a multitude of resonators; wherein at least one of the multitude of resonators is a high-frequency resonator and comprises: a resonator housing, in which a resonator space is formed; and a container with a cavity, in which a liquid crystal is accommodated, wherein the container is at least partially arranged in the resonator space, wherein the container comprises an electrode configuration for generating an electric control field to control the permittivity of the liquid crystal.
18. A method for manufacturing a resonator, wherein the resonator comprises: a resonator housing, in which a resonator space is formed; and a container with a cavity, in which a liquid crystal is accommodated, wherein the container is at least partially arranged in the resonator space, wherein the container comprises an electrode configuration for generating an electric control field in order to control the permittivity of the liquid crystal; the method comprising: providing a resonator housing with a resonator space; providing a container with a liquid crystal and an electrode configuration for generating an electric control field in order to control the permittivity of the liquid crystal; inserting the container into the resonator housing or mounting the container to the resonator housing such that a part of the container protrudes into the resonator space so that an electrically controllable dielectric is provided in the resonator space.
19. The method of claim 18, wherein providing the container comprises providing electrodes at the container.
20. The method of claim 19, wherein providing electrodes comprises applying the electrodes onto an outer circumference of the container.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028]
[0029]
[0030]
DETAILED DESCRIPTION
[0031] In the following, an exemplary embodiment is described with reference to the drawings. Thereby, it is to be noted that identical or similar elements in the drawings are indicated with same reference signs.
[0032]
[0033] The resonator 2 shown in
[0034] In accordance with the present exemplary embodiment and in order to adjust the resonance frequency of the resonator 2, the resonator 2 comprises an electrically adjustable dielectric 7, which in the described case is provided in the shape of a container 8 in which a liquid crystal 10 is accommodated. In the shown exemplary embodiment, the container 8 is rod-shaped. In other words, the container 8 is shaped in a manner of a straight circular cylinder. Furthermore, the container 8 is made of a dielectric material.
[0035] As is shown in
[0036] In order to arrange the electrically adjustable dielectric 7 in the manner described above, the resonator housing 4 comprises an opening 28 in its inner wall 14, in which opening the electrically adjustable dielectric 7, in particular the container 8, is inserted and affixed such that the leading end of the electrically adjustable dielectric 7 protrudes from the inner wall 14 and into the interior space 6 of the resonator 2. Thereby, the opening 28 is of a form which is shaped to correspond to the form of the outer circumference of the electrically adjustable dielectric 7 or of the container 8. In the shown embodiment, the opening 28 is shaped like a circular cylinder, wherein the axis of extension of the opening 28 and the axis of extension of the container 8 are oriented in parallel to the bottom surface 30 and substantially perpendicular to the axes of extension of the apertures 32, 34. Furthermore, opening 28 is arranged at a predetermined distance from the bottom surface 30, whereby the container 8 is spaced apart from the bottom surface 30 in the arrangement shown in
[0037] As is further shown in
[0038] In order to provide the electric control field mentioned above, the electrically controllable dielectric 7 comprises an electrode structure 12. The electrode structure 12 comprises a number of electrodes which are arranged such that they may generate a suitable electric field in the interior of the container 8. For this purpose, four electrodes 18, 20, 22, 24 are provided in the container 8, more precisely, around the cavity 26, in accordance with the present exemplary embodiment. Even though four electrodes are described with reference to the present exemplary embodiment, another suitable number of electrodes may be used alternatively in order to generate the electric control field.
[0039] In the sectional view of
[0040] In the exemplary embodiment shown in
[0041] Even though this is not shown in
[0042] An advantage of the arrangement lies in the fact that the electrodes are firmly connected with the container 8 and, hence, an integral assembly is provided which may be manufactured as a distinct element and be installed in the resonator housing. In this manner, no distinct mounting steps for providing the electrodes are required. Hence, the container 8 including the liquid crystal 10 and the electrodes may be inserted into the resonator housing 4 through a corresponding opening.
[0043]
[0044]
[0045]
[0046] In the exemplary embodiment shown in
[0047] In total, an improved electrically controllable dielectric and an improved resonator are thus provided, which resonator is particularly suitable for high-frequency applications in outer space. For example, the here provided resonator may be used as high-frequency resonator in an Imux-filter. An electric control field may be generated in the interior of the resonator in the described manner. Thereby, the direction dependency of the dielectric constant of the liquid crystal may be utilized as to control, for example, the center frequency of a high-frequency resonator or of a high-frequency filter consisting of such resonators.
[0048] With the structure according to the description, a resonator or a filter with such resonators is provided having significantly improved high-frequency characteristics which have significantly lower high-frequency losses and, hence, also a lower variation of the insertion loss within the filter passband. Furthermore, manufacturing and mounting is improved as, for example, mounting of an electrode configuration on inner walls of the resonator housing is omitted, wherein the electrode configuration is provided, for example, in the form of an electrode structure applied over resistance layers on LTCC. In accordance with the description, the electrode configuration required for generating the electric control field is applied directly onto the container of the dielectric, in which container the liquid crystal is inserted within the cavity resonator. Thus, usage of LTCC structures at the bottom and the lid of the cavity resonator may be omitted. For example, this enables manufacturing the bottom and a lateral surrounding wall of the cavity resonator of an integral piece. Furthermore, the elements that delimit the resonator space may be made of metal so that these may be simply mounted together, for example screwed together. Thereby, typical adjusting screws may be provided at the resonator housing and at the lid in addition to mounting screws. More precisely, one or more adjusting screws may be provided in the lid and/or in the resonator housing, which adjusting screws protrude into the resonator space or into aperture openings. These adjusting screws serve for changing the electromagnetic field for compensating fabrication tolerances. Mounting these adjusting screws at the lid is advantageous as they are better accessible thereby. Hence, one advantage is that as a result of the electrode structure, no electrodes are provided at the resonator housing, for example in the lid, whereby arranging the adjusting screws in this region is possible.
[0049] While at least one exemplary embodiment of the present invention(s) is disclosed herein, it should be understood that modifications, substitutions and alternatives may be apparent to one of ordinary skill in the art and can be made without departing from the scope of this disclosure. This disclosure is intended to cover any adaptations or variations of the exemplary embodiment(s). In addition, in this disclosure, the terms “comprise” or “comprising” do not exclude other elements or steps, the terms “a” or “one” do not exclude a plural number, and the term “or” means either or both. Furthermore, characteristics or steps which have been described may also be used in combination with other characteristics or steps and in any order unless the disclosure or context suggests otherwise. This disclosure hereby incorporates by reference the complete disclosure of any patent or application from which it claims benefit or priority.