Claims
- 1. A dielectric filter comprising:
- a dielectric block having two opposite end surfaces and an outer surface extending therebetween;
- a plurality of resonator holes in said dielectric block extending between said end surfaces;
- inner conductors on surfaces of said resonator holes;
- an outer conductor on said outer surface and said end surfaces of said dielectric block, and connected to said inner conductors at both of said end surfaces;
- each of said inner conductors in said resonator holes having a respective non-conductive gap therein which separates the corresponding said inner conductor into two portions, each of said portions being connected to said outer conductor at a corresponding one of said end surfaces;
- one of said end surfaces being a short-circuited end surface, said non-conductive gaps in said resonator holes being farther from said short-circuited end surface than from the other said end surface;
- excitation holes in said dielectric block adjacent to corresponding ones of said resonator holes;
- said excitation holes having respective inner conductors which are connected to said outer conductor at said other end surface of said dielectric block; and
- input/output electrodes on said short-circuited end surface of said dielectric block, each said input/output electrode being electrically connected with a respective one of said inner conductors in said excitation holes, and not being connected to said outer conductor;
- said excitation holes being electromagnetically coupled to said corresponding ones of said resonator holes, thereby providing external coupling between said corresponding ones of said resonator holes and said respective input/output electrodes.
- 2. A dielectric filter comprising:
- a dielectric block having two opposite end surfaces and an outer surface extending therebetween;
- a plurality of resonator holes in said dielectric block extending between said end surfaces;
- inner conductors on surfaces of said resonator holes;
- an outer conductor on said outer surface and said end surfaces of said dielectric block, and connected to said inner conductors at both of said end surfaces;
- each of said inner conductors in said resonator holes having a respective non-conductive gap therein which separates the corresponding said inner conductor into two portions, each of said portions being connected to said outer conductor at a corresponding one of said end surfaces;
- one of said end surfaces being a short-circuited end surface, said non-conductive gaps in said resonator holes being farther from said short-circuited end surface than from the other said end surface;
- excitation holes in said dielectric block adjacent to corresponding ones of said resonator holes;
- said excitation holes having respective inner conductors which are connected to said outer conductor at said other end surface of said dielectric block; and
- input/output electrodes on said short-circuited end surface of said dielectric block, each said input/output electrode being electrically connected with a respective one of said inner conductors in said excitation holes, and not being connected to said outer conductor;
- wherein each of said excitation holes has a predetermined position, shape, and size so as to obtain a corresponding predetermined external coupling and phase between said corresponding ones of said resonator holes and said respective input/output electrodes.
- 3. A dielectric filter comprising:
- a dielectric block having two opposite end surfaces and an outer surface extending therebetween;
- a plurality of resonator holes in said dielectric block extending between said end surfaces;
- inner conductors on surfaces of said resonator holes;
- an outer conductor on said outer surface and said end surfaces of said dielectric block, and connected to said inner conductors at both of said end surfaces;
- each of said inner conductors in said resonator holes having a respective non-conductive gap therein which separates the corresponding said inner conductor into two portions, each of said portions being connected to said outer conductor at a corresponding one of said end surfaces;
- one of said end surfaces being a short-circuited end surface, said non-conductive gaps in said resonator holes being farther from said short-circuited end surface than from the other said end surface;
- excitation holes in said dielectric block adjacent to corresponding ones of said resonator holes;
- said excitation holes having respective inner conductors which are connected to said outer conductor at said other end surface of said dielectric block;
- input/output electrodes on said short-circuited end surface of said dielectric block, each said input/output electrode being electrically connected with a respective one of said inner conductors in said excitation holes, and not being connected to said outer conductor;
- external coupling-adjusting holes in said dielectric block close to corresponding ones of said excitation holes, respectively, for adjusting external coupling between said corresponding ones of said resonator holes and said respective input/output electrodes; and
- inner conductors on surfaces of said external coupling-adjusting holes.
- 4. A dielectric filter of any one of claims 1-3, wherein each of said input/output electrodes extends from said short-circuited end surface to said outer surface of said dielectric block.
- 5. A method of providing predetermined external coupling and phase in a dielectric filter, comprising the steps of:
- (a) providing a dielectric filter which includes:
- a dielectric block having two opposite end surfaces and an outer surface extending therebetween;
- a plurality of resonator holes formed in said dielectric block between said end surfaces;
- inner conductors formed on surfaces of said resonator holes;
- an outer conductor formed on said outer surface and said end surfaces of said dielectric block, said outer conductor being connected to said inner conductors at both of said end surfaces;
- each of said inner conductors in said resonator holes having a respective non-conductive gap therein which separates the corresponding said inner conductor into two portions, each of said portions being connected to said outer conductor at a corresponding one of said end surfaces;
- one of said end surfaces being a short-circuited end surface, said non-conductive gaps in said resonator holes being farther from said short-circuited end surface than from the other said end surface;
- excitation holes formed in said dielectric block adjacent to corresponding ones of said resonator holes; and
- said excitation holes having respective inner conductors which are connected to said outer conductor at said other end surface of said dielectric block;
- (b) providing input/output electrodes on said short-circuited end surface of said dielectric block, each said input/output electrode being electrically connected with a respective one of said inner conductors in said excitation holes, and not being connected to said outer conductor; and
- (c) adjusting at least one of the positions, shapes, and sizes of said excitation holes so as to obtain predetermined external coupling and phase between said corresponding ones of said resonator holes and said respective input/output electrodes.
- 6. A method as recited in claim 5, wherein said adjusting step comprises the step of providing respective said excitation holes with corresponding predetermined diameters.
- 7. A method as recited in claim 5, wherein said adjusting step comprises the steps of arranging said resonator holes so as to define a common center plane, and offsetting a respective one of said excitation holes by a corresponding predetermined distance from said common center plane defined by said resonator holes.
- 8. A method as recited in claim 5, wherein said adjusting step comprises the step of spacing respective said excitation holes by a corresponding predetermined distance from said resonator holes.
- 9. A method as recited in claim 5, wherein said adjusting step comprises the steps of arranging said resonator holes so as to define a common center plane, and forming a respective one of said excitation holes with a corresponding elongated cross-sectional shape having a longitudinal axis and orienting said longitudinal axis substantially perpendicular to said common center plane defined by said resonator holes.
- 10. A method as recited in claim 5, wherein said adjusting step comprises the steps of arranging said resonator holes so as to define a common center plane, and forming a respective one of said excitation holes with a corresponding elongated cross-sectional shape having a longitudinal axis and orienting said longitudinal axis substantially parallel to said common center plane defined by said resonator holes.
- 11. A method as recited in claim 10, wherein said respective excitation holes are substantially centered on said common center plane.
- 12. A dielectric filter as claimed in claim 3, wherein said inner conductors inside said external coupling adjusting holes are connected to said outer conductor at both of said end surfaces of said dielectric block.
- 13. A dielectric filter as claimed in claim 1, wherein said plurality of resonator holes comprises first and second resonator holes and said excitation holes comprise corresponding first and second excitation holes.
- 14. A dielectric filter as claimed in claim 13, wherein said first and second resonator holes are disposed between said first and second excitation holes.
- 15. A dielectric filter as claimed in claim 2, wherein said plurality of resonator holes comprises first and second resonator holes and said excitation holes comprise corresponding first and second excitation holes.
- 16. A dielectric filter as claimed in claim 15, wherein said first and second resonator holes are disposed between said first and second excitation holes.
- 17. A dielectric filter as claimed in claim 3, wherein said plurality of resonator holes comprises first and second resonator holes and said excitation holes comprise corresponding first and second excitation holes.
- 18. A dielectric filter as claimed in claim 17, wherein said first and second resonator holes are disposed between said first and second excitation holes.
- 19. A dielectric filter as claimed in claim 18, wherein said external coupling-adjusting holes comprise first and second coupling-adjusting holes which correspond respectively to said first and second excitation holes.
- 20. A dielectric filter as claimed in claim 19, wherein said first and second resonator holes are disposed between said first and second coupling-adjusting holes.
- 21. A method as claimed in claim 5, wherein said plurality of resonator holes comprises first and second resonator holes and said excitation holes comprise corresponding first and second excitation holes.
- 22. A method as claimed in claim 21, wherein said first and second resonator holes are disposed between said first and second excitation holes.
- 23. A dielectric antenna duplexer comprising:
- a dielectric block having first and second opposite end surfaces and an outer surface extending therebetween;
- a plurality of resonator holes in said dielectric block extending between said end surfaces, and inner conductors on surfaces of said resonator holes;
- an outer conductor on said outer surface and said end surfaces of said dielectric block, said outer conductor being connected to said inner conductors at both of said end surfaces;
- each of said inner conductors in said resonator holes having a respective non-conductive gap therein which separates the corresponding inner conductor into two portions, each of said portions being connected to said outer conductor at a corresponding one of said end surfaces;
- said first end surface being a short-circuited end surface, said non-conductive gaps in said resonator holes being disposed farther from said first end surface than from the second end surface;
- excitation holes in said dielectric block adjacent to and electromagnetically coupled with corresponding ones of said resonator holes, said excitation holes having respective inner conductors which are connected to said outer conductor at said second end surface of said dielectric block; and
- input/output electrodes on said short-circuited end surface of said dielectric block, each said input/output electrode being electrically connected with a respective one of said inner conductors in said excitation holes, and not being connected to said outer conductor;
- wherein said electromagnetic coupling between said excitation electrodes and said resonator holes provides external coupling between said resonator holes and said corresponding input/output electrodes;
- said input/output electrodes comprising first, second and third input/output electrodes, said first, second and third input/output electrodes and said corresponding excitation holes being arranged among said resonator holes to define a first group of resonator holes which provides a transmission filter and a second group of resonator holes which provides a reception filter;
- said first input/output electrode being coupled to a respective resonator hole in said first group of resonator holes to provide a transmission input terminal;
- said second input/output electrode being coupled to a respective resonator hole in said second group of resonator holes to provide a reception output terminal; and
- said third input/output electrode being coupled in common to a respective resonator hole in each of said first and second groups of resonator holes to provide an antenna input/output terminal.
- 24. A dielectric duplexer as claimed in claim 23, further comprising an additional resonator hole which is adjacent to and coupled with one of said first and second input/output electrodes so as to provide a trap filter for trapping a frequency in a signal at said one of said first and second input/output electrodes.
- 25. A dielectric duplexer as claimed in claim 24, wherein said one of said first and second input/output electrodes is disposed between said trap filter and the respective transmission or reception filter which corresponds to said one of said first and second input/output electrodes.
- 26. A dielectric duplexer as claimed in claim 24, further comprising external coupling-adjusting holes in said dielectric block close to corresponding ones of said excitation holes, respectively, and inner conductors on surfaces of said external coupling-adjusting holes, for adjusting external coupling between said corresponding ones of said resonator holes and said respective input/output electrodes.
- 27. A dielectric duplexer as claimed in claim 26, wherein one of said coupling-adjusting holes is disposed between said trap filter and the respective transmission or reception filter which corresponds to said one of said first and second input/output electrodes.
- 28. A dielectric duplexer as claimed in claim 26, wherein said inner conductors inside said coupling adjusting holes are connected to said outer conductor at both of said end surfaces of said dielectric block.
Priority Claims (4)
Number |
Date |
Country |
Kind |
6-134475 |
Jun 1994 |
JPX |
|
6-146673 |
Jun 1994 |
JPX |
|
6-162170 |
Jul 1994 |
JPX |
|
7-31082 |
Feb 1995 |
JPX |
|
Parent Case Info
This is a continuation of application Ser. No. 08/469,645 filed on Jun. 6, 1995, now abandoned.
US Referenced Citations (13)
Foreign Referenced Citations (6)
Number |
Date |
Country |
0538894 |
Apr 1993 |
EPX |
165103 |
Aug 1985 |
JPX |
165102 |
Aug 1985 |
JPX |
254801 |
Dec 1985 |
JPX |
19201 |
Jan 1986 |
JPX |
6303008 |
Oct 1994 |
JPX |
Non-Patent Literature Citations (3)
Entry |
Patent Abstract of Japan, vol. 14, No. 560 (E-1012), Dec. 13, 1990 and JP-A-02 241203 (MATSUSHITA ELECTRIC IND. CO. LTD.) Sep. 25, 1990. |
Patent Abstract of Japan, vol. 11, No. 227 (E-526), Jul. 23, 1987 and JP-A-62 043904 (MURATA MFG. CO. LTD.) Feb. 25, 1987. |
European Search Report dated Oct. 3, 1995. |
Continuations (1)
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Number |
Date |
Country |
Parent |
469645 |
Jun 1995 |
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