Claims
- 1. Microstripline comprising:
- a first dielectric substrate having outer and inner opposite major surfaces;
- a second dielectric substrate having outer and inner opposite major surfaces;
- a first ground electrode formed on said outer major surface of said first dielectric substrate;
- a first line electrode formed on said inner major surface of said first dielectric substrate;
- a second ground electrode formed on said outer major surface of said second dielectric substrate;
- a second line electrode formed on said inner major surface of said second dielectric substrate;
- an insulating sheet interposed between said first and second dielectric substrates which are so arranged that said first and second line electrodes are opposite to each other, said insulating sheet being lower in dielectric constant than said first and second dielectric substrates; and
- a conducting member passing through said insulating sheet along the direction of thickness thereof to electrically connect said first and second line electrodes with each other.
- 2. Microstripline in accordance with claim 1, wherein said insulating sheet is made of resin.
- 3. Microstripline in accordance with claim 2, wherein said resin has resiliency.
- 4. Microstripline in accordance with claim 1, wherein said insulating sheet is provided with a through-hole passing through the same along the direction of thickness thereof so that said conducting member is received in said through-hole.
- 5. Microstripline in accordance with claim 4, wherein said conducting member includes conductive paste filling said through-hole.
- 6. Microstripline in accordance with claim 4, wherein said conducting member includes a metal pin inserted in said through-hole.
- 7. Microstripline in accordance with claim 4, wherein said conducting member includes a metal-plated film formed on an inner peripheral surface of said through-hole.
- 8. A microstripline filter having a predetermined resonance frequency comprising:
- a first dielectric substrate having inner and outer opposite major surfaces;
- a second dielectric substrate having inner and outer opposite major surfaces;
- a first ground electrode formed on said outer major surface of said first dielectric substrate;
- a first resonance electrode which is resonant at said predetermined resonance frequency and is formed on said inner major surface of said first dielectric substrate;
- a second ground electrode formed on said outer major surface of said second dielectric substrate;
- a second resonance electrode which is resonant at said predetermined resonance frequency and is formed on said inner major surface of said second dielectric substrate;
- an insulating sheet interposed between said first and second dielectric substrates which are so arranged that said first and second resonance electrodes are opposite to each other, said insulating sheet being lower in dielectric constant than said first and second dielectric substrates; and
- a conducting member passing through said insulating sheet along the direction of thickness thereof to electrically connect said first and second resonance electrodes with each other.
- 9. A microstripline filter in accordance with claim 8, wherein said conducting member comprises a metal pin.
- 10. A microstripline filter in accordance with claim 9, wherein said metal pin is circular in section.
- 11. A microstripline filter in accordance with claim 9, wherein said metal pin is angular in section.
- 12. A microstripline filter in accordance with claim 8, wherein said first and second resonance electrodes have voltage open ends and said conducting member is positioned in close proximity to said voltage open ends of said first and second resonance electrodes.
- 13. A microstripline filter in accordance with claim 8, further comprising a metal case for containing said first and second dielectric substrates holding said insulating sheet therebetween.
- 14. A microstripline filter in accordance with claim 13, wherein said metal case is provided with a window to be connected with at least one of said first and second ground electrodes by externally applied solder.
- 15. A microstripline filter in accordance with claim 13, wherein said metal case is integrally formed with outwardly extending ground terminal members.
- 16. A microstripline filter in accordance with claim 15, wherein said metal case is provided with recesses for extracting first and second input/output terminal members respectively connected with said first and second resonance electrodes through said recesses.
- 17. A microstripline filter in accordance with claim 8, wherein said insulating sheet is made of resin.
- 18. A microstripline filter in accordance with claim 8, wherein said insulating sheet is made of glass.
- 19. A microstripline filter in accordance with claim 8, wherein said insulating sheet is made of ceramic.
- 20. Microstripline comprising:
- a first dielectric substrate having inner and outer opposite major surfaces;
- a second dielectric substrate having inner and outer opposite major surfaces;
- a first ground electrode formed on said outer major surface of said first dielectric substrate;
- a first line electrode formed on said inner major surface of said first dielectric substrate;
- a second ground electrode formed on said outer major surface of said second dielectric substrate;
- a second line electrode formed on said inner major surface of said second dielectric substrate;
- a resilient resin insulating sheet interposed between said first and second dielectric substrates which are so arranged that said first and second line electrodes are opposite to each other, said insulating sheet being lower in dielectric constant than said first and second dielectric substrates; and
- a conducting member passing through said insulating sheet along the direction of thickness thereof to electrically connect said first and second line electrodes with each other.
- 21. A microstripline filter having a predetermined resonance frequency comprising:
- a first dielectric substrate having inner and outer opposite major surfaces;
- a second dielectric substrate having inner and outer opposite major surfaces;
- a first ground electrode formed on said outer major surface of said first dielectric substrate;
- a first resonance electrode which is resonant at said predetermined resonance frequency and is formed on said inner major surface of said first dielectric substrate;
- a second ground electrode formed on said outer major surface of said second dielectric substrate;
- a second resonance electrode which is resonant at said predetermined resonance frequency and is formed on said inner major surface of said second dielectric substrate;
- a resilient resin insulating sheet interposed between said first and second dielectric substrates which are so arranged that said first and second resonance electrodes are opposite to each other, said insulating sheet being lower in dielectric constant than said first and second dielectric substrates; and
- a conducting member passing through said insulating sheet along the direction of thickness thereof to electrically connect said first and second resonance electrodes with each other.
- 22. A microstripline filter having a predetermined resonance frequency comprising:
- (a) a first dielectric substrate having inner and outer opposite major surfaces;
- (b) a second dielectric substrate having inner and outer opposite major surfaces;
- (c) a first ground electrode formed on said outer major surface of said first dielectric substrate;
- (d) a second ground electrode formed on said outer surface of said second dielectric substrate;
- (e) a plurality of resonators, each resonator comprising:
- (1) a first resonance electrode which is resonant at said predetermined resonance frequency and is formed on said inner major surface of said first dielectric substrate;
- (2) a second resonance electrode which is resonant at said predetermined resonance frequency and is formed on said inner major surface of said second dielectric substrate; said first and second dielectric substrates being so arranged that said first and second resonance electrodes are opposite to each other; and
- (f) coupling means for coupling said resonators by adjusting the coupling coefficient between said resonators, said coupling means comprising at least one conducting member which electrically connects said first and second resonance electrodes with each other.
- 23. A microstripline filter as in claim 22, wherein said coupling means further comprises an insulating sheet interposed between said first and second dielectric substrates and between said resonators, said conducting member passing through said insulating sheet along the direction of thickness thereof and said insulating sheet being lower in dielectric constant than said first and second dielectric substrates.
- 24. A microstripline filter as in claim 23, wherein said insulating sheet comprises a resilient insulating resin.
- 25. A microstripline filter as in claim 23, wherein said coupling coefficient can be adjusted as an inverse function of said dielectric constant of said insulating sheet.
- 26. A microstripline filter as in claim 23, wherein said coupling coefficient can be adjusted as a direct function of a thickness of said insulating sheet between said dielectric substrates.
- 27. A method of providing a microstripline filter having a predetermined resonance frequency comprising the steps of:
- (1) providing a filter structure which comprises:
- (a) a first dielectric substrate having inner and outer opposite major surfaces;
- (b) a second dielectric substrate having inner and outer opposite major surfaces;
- (c) a first ground electrode formed on said outer major surface of said first dielectric substrate;
- (d) a second ground electrode formed on said outer surface of said second dielectric substrate; and
- (e) a plurality of resonators, each resonator comprising:
- (i) a first resonance electrode which is resonant at said predetermined resonance frequency and is formed on said inner major surface of said first dielectric substrate;
- (ii) a second resonance electrode which is resonant at said predetermined resonance frequency and is formed on said inner major surface of said second dielectric substrate; said first and second dielectric substrates being so arranged that said first and second resonance electrodes are opposite to each other; and
- (iii) at least one conducting member electrically connecting said first and second resonance electrodes with each other; and
- (2) coupling said resonators by adjusting the coupling coefficient between said resonators by adjusting physical characteristics of the at least one conducting member.
- 28. A method as in claim 27, wherein said coupling coefficient is further adjusted by interposing an insulating sheet between said first and second dielectric substrates and between said resonators, said conducting member passing through said insulating sheet along the direction of thickness thereof and said insulating sheet being lower in dielectric constant than said first and second dielectric substrates.
- 29. A method as in claim 28, wherein said insulating sheet comprises a resilient insulating resin.
- 30. A method as in claim 28, which includes steps of increasing said coupling coefficient by decreasing said dielectric constant of said insulating sheet, and vice versa.
- 31. A method as in claim 28, which includes steps of increasing said coupling coefficient by increasing a thickness of said insulating sheet between said dielectric substrates, and vice versa.
Priority Claims (2)
Number |
Date |
Country |
Kind |
60-210599 |
Sep 1985 |
JPX |
|
61-107199 |
May 1986 |
JPX |
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Parent Case Info
This is a continuation of Application Ser. No. 07/171,218 filed on Mar. 21, 1988, which is a continuation of Application Ser. No. 06/909,519 filed on Sept. 19, 1986, both of which are now abandoned.
US Referenced Citations (5)
Non-Patent Literature Citations (2)
Entry |
Reference Data For Radio Engineers, Fifth Edition, by ITT, H. W. Sams & Co., N.Y., 1968, Title page and pp. 4-28 & 4-30. |
Handbook Of Tri-Plate Microwave Components, Sanders Assoc., Nashua, N.H., 1956, pp. 3, 4 & title page. |
Continuations (2)
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Number |
Date |
Country |
Parent |
171218 |
Mar 1988 |
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Parent |
909519 |
Sep 1986 |
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