Claims
- 1. A microwave resonator structure comprising
- a tubular carrier structure (61) of solid dielectric material having a tube axis and defining an outer tubular surface of revolution about said axis, and an inner tubular surface of revolution about said axis;
- a first metal coating layer (13) applied to the outer surface of said tubular carrier structure;
- a second metal coating layer (14) applied on the inner surface of the tubular carrier structure,
- said first metal coating layer (13) and said second metal coating layer (14) being applied, respectively, only to the respective ones of said tubular surfaces, and said second metal coating layer being separate from said first metal coating layer,
- said first and second metal coating layers forming, in combination with the tubular carrier structure, a monolithic unit;
- a slit (15) at least one having a direction component extending in the direction aligned with respect to the axis of the tubular carrier structure, formed in one of the metal coating layers and separating the respective metal coating layer to define a slit metal coating layer;
- first and second connection means (16, 17) connected to the slit metal coating layer in regions adjacent the slit; and
- terminal means (20) connected to the metal coating layer other than said slit metal coating layer.
- 2. A resonator according to claim 1 including a core element (C) axially insertible into the tubular carrier structure for changing the resonant frequency of the resonator.
- 3. A resonator according to claim 1 wherein at least one of said metal coating layers is formed with a plurality of slits (15, 57).
- 4. A resonator according to claim 1 wherein the first metal coating layer is formed with said at least one slit.
- 5. A resonator according to claim 1 wherein the second metal coating layer (40) is formed with said at least one slit (41) and the first metal coating layer (43) is circumferentially continuous.
- 6. A resonator according to claim 1 wherein the tubular carrier structure defines axially open ends;
- and further including a shielding cover (51, 52) applied to at least one of the open ends of the tubular carrier structure.
- 7. A resonator according to claim 1 wherein the tubular carrier structure comprises barium titanate.
- 8. A resonator according to claim 1 further including a connection arrangement for the second metal coating layer (40) comprising a zone of the first coating layer which is free of metal;
- and at least one through-conductive opening in electircal communication with the second metal coating layer, said through-conductive opening being located in said zone free from metal of the first metal coating layer,
- 9. A resonator according to claim 1 wherein the at least one slit has a width which is selectable.
- 10. A microwave resonator structure comprising
- a tubular carrier structure (61) of solid dielectric material having a tube axis and defining an outer tubular surface of revolution about said axis and an inner tubular surface of revolution about said axis;
- at least two axially spaced first metal coating layers (63, 64) applied to the outer surface of said carrier structure;
- at least two second metal coating layers applied on the inner surface of said carrier structure, said at least two second metal coating layers being separate from said at least two first metal coating layers, said at least two second metal coating layers corresponding in number to said at least two first metal coating layers and being located in alignment with said at least two first coating layers and defining with the corresponding first coating layer a set of layers;
- a first and second coating layers forming, in combination with the tubular carrier structure, a monolithic unit,
- wherein one of the metal coating layers of each of the set of layers is formed with at least one slit (15) having a direction component extending in the direction aligned with respect to the axis of the tubular carrier structure and separating the respective layers to define at least two slit metal coating layers;
- first and second connection means (16, 17) connected to the at least two slit metal coating layers in regions adjacent the slits;
- and terminal means (20) connected to at least two metal coating layers other than said slit metal coating layers.
- 11. A resonator according to claim 10 including a core element (C) axially insertible into the tubular carrier structure for changing the resonant frequency of the resonantor.
- 12. A resonator according to claim 10 wherein said slit metal coating layers are formed with a plurality of slits.
- 13. A resonator according to claim 10 wherein the first metal coating layers are formed with said at least one slit.
- 14. A resonator according to claim 10 wherein the second metal coating layers (40) are formed with said at least one slit (41) and the outer metal coating layers (43) are circumferentially continuous.
- 15. A resonator according to claim 10 wherein the tubular carrier structure comprises barium titanate.
- 16. A resonator according to claim 10 further including a connection arrangement for the second metal coating layers (40) comprising zones of the first coating layers which are free of metal;
- and through-conductive opening in electrical communication with the respective second metal coating layers, said through-conductive openings being located in said zones free from metal of the first metal coating layers.
- 17. A resonator according to claim 10 wherein the first metal coating layers and the second metal coating layers are applied, respectively, only to the respective ones of said tubular surfaces.
- 18. A resonator according to claim 10 wherein the slit has a width which is selectable.
- 19. A method of tuning the resonator as claimed in claim 1 comprising selecting the width of the slits.
- 20. A method of tuning the resonator as claimed in claim 10 comprising selecting the width of the slits.
- 21. A microwave resonator structure comprising
- a tubular carrier structure (61) of solid dielectric material having a tube axis and defining an outer tubular surface of revolution about said axis, and an inner tubular surface of revolution about said axis;
- a first metal coating layer (13) applied to the outer surface of said tubular carrier structure;
- a second metal coating layer (14) applied on the inner surface of the tubular carrier structure,
- said first and second metal layer coating layers forming, in combination with the tubular carrier structure, a monolithic unit;
- at least one slit (15) having a direction component extending in the direction aligned with respect to the axis of the tubular carrier structure formed in each of the first and second metal coating layers and separating the circumferential continuity of said metal coating layers, said slits in said first and second metal coating layers being respectively circumferentially positioned such that a slit in one of said metal coating layers is located opposite a circumferentially continuous portion of the other of said layers.
Priority Claims (1)
Number |
Date |
Country |
Kind |
3408581 |
Mar 1984 |
DEX |
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Parent Case Info
This application is a continuation of application Ser. No. 706,043, filed Feb. 27, 1985, now abandoned.
US Referenced Citations (4)
Foreign Referenced Citations (4)
Number |
Date |
Country |
1020250 |
Feb 1953 |
FRX |
0039042 |
Apr 1978 |
JPX |
0085101 |
Jun 1980 |
JPX |
0036002 |
Mar 1983 |
JPX |
Continuations (1)
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Number |
Date |
Country |
Parent |
706043 |
Feb 1985 |
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