Claims
- 1. A band pass tunable filter comprising:
- a main coaxial transmission line section comprising an inner conductor and outer concentric conductor;
- a first coaxial cavity having respectively first input and first output irises and being connected to and being a part of said main coaxial transmission line;
- a first ferroelectric rod characterized by an electric field dependent permittivity and being placed in a center of said first coaxial cavity between said outer conductor and said inner conductor;
- a first means, connected with said first ferroelectric rod, to independently apply a bias electric field, using a separate voltage source, to said first ferroelectric rod to change the permittivity thereof and a resonant frequency of said first cavity;
- a second coaxial cavity having respectively second input and second output irises and being connected to and being a part of said main coaxial transmission line;
- a second ferroelectric rod characterized by said permittivity and being placed in a center of said second coaxial cavity between said outer conductor and said inner conductor;
- a second means, connected with said second ferroelectric rod, to independently apply a bias electric field, using a separate voltage source, to said second ferroelectric rod to change the permittivity thereof and a resonant frequency of said second cavity;
- a first coaxial transmission line section being a part of said main coaxial transmission line and being connected to and providing a separation, between centers of said first and second coaxial cavities, of typically three quarters of a wavelength long, at an operating frequency of the filter;
- third, fourth . . . nth coaxial cavities with corresponding irises and being connected to and being a part of said main coaxial transmission line;
- third, fourth . . . nth ferroelectric rods characterized by said permittivity and being respectively placed in centers of each said third, fourth . . . nth coaxial cavities between each said outer conductor and said inner conductor;
- third, fourth . . . nth means, connected respectively with said third, fourth . . . nth ferroelectric rods, to independently apply a bias electric field, using separate voltage sources, to said respectively third, fourth . . . nth ferroelectric rods to change the permittivity thereof and a resonant frequency respectively of said third, fourth . . . nth coaxial cavities;
- second, third . . . (n-1)th coaxial transmission line sections being a part of said main coaxial transmission line section and providing a respective separation, between the centers of successive adjacent coaxial cavities, of typically three quarters of a wavelength long at an operating frequency of the filter;
- all inner surfaces of said outer conductor and outer surfaces of inner conductors being comprised of a single crystal high Tc superconducting material;
- an output of a microprocessor connected to each voltage source, to independently control the level of bias voltage to said first, second, third, fourth . . . nth ferroelectric rods; and
- means, with which said tunable filter being associated with, to keep said coaxial cavity tunable filter at a constant high superconducting temperature appropriately above the Curie temperature.
- 2. A band pass coaxial cavity tunable ferroelectric filter of claim 1 wherein the single crystal ferroelectric material being a mixture of strontium titanate and lead titanate and the high Tc superconductor being YBCO.
- 3. A band pass coaxial cavity tunable ferroelectric filter of claim 1 wherein the single crystal ferroelectric material being a mixture of strontium titanate and lead titanate and the high Tc superconductor being TBCCO.
- 4. A band pass coaxial cavity tunable ferroelectric filter of claim 1:
- wherein the single crystal ferroelectric material being KTa.sub.1-x Nb.sub.x O.sub.3 and the value of x is between 0.005 and 0.7.
- 5. A band pass coaxial cavity tunable ferroelectric filter of claim 4 wherein the high Tc superconductor being YBCO.
- 6. A band pass coaxial cavity tunable ferroelectric filter of claim 4 wherein the high Tc superconductor being TBCCO.
- 7. A band pass tunable filter comprising:
- a main coaxial transmission line section comprising an inner conductor being made of said single crystal dielectric having outer surfaces deposited with a film of a single crystal high Tc superconductor and an outer concentric conductor comprised of said single crystal dielectric having interior surfaces which being deposited with a film of a high Tc superconductor;
- a first coaxial cavity having respectively first input and first output irises and being connected to and being a part of said main coaxial transmission line;
- a first ferroelectric rod characterized by an electric field dependent permittivity and being placed in a center of said first coaxial cavity between said outer conductor and said inner conductor;
- a first means, connected with said first ferroelectric rod, to independently apply a bias electric field, using a separate voltage source, to said first ferroelectric rod to change the permittivity thereof and a resonant frequency of said first cavity;
- a second coaxial cavity having respectively second input and second output irises and being connected to and being a part of said main coaxial transmission line;
- a second ferroelectric rod characterized by said permittivity and being placed in a center of said second coaxial cavity between said outer conductor and said inner conductor;
- a second means, connected with said second ferroelectric rod, to independently apply a bias electric field, using a separate voltage source, to said second ferroelectric rod to change the permittivity thereof and a resonant frequency of said second cavity;
- a first coaxial transmission line section being a part of said main coaxial transmission line and being connected to and providing a separation, between centers of said first and second coaxial cavities, of typically three quarters of a wavelength long, at an operating frequency of the filter;
- third, fourth . . . nth coaxial cavities with corresponding irises and being connected to and being a part of said main coaxial transmission line;
- third, fourth . . . nth ferroelectric rods characterized by said permittivity and being respectively placed in centers of each said third, fourth . . . nth coaxial cavities between each said outer conductor and said inner conductor;
- third, fourth . . . nth means, connected respectively with said third, fourth . . . nth ferroelectric rods, to independently apply a bias electric field, using separate voltage sources, to said respectively third, fourth . . . nth ferroelectric rods to change the permittivity thereof and a resonant frequency respectively of said third, fourth . . . nth coaxial cavities;
- second, third . . . (n-1)th coaxial transmission line sections being a part of said main coaxial transmission line section and providing a respective separation, between the centers of successive adjacent coaxial cavities, of typically three quarters of a wavelength long at an operating frequency of the filter;
- an output of a microprocessor connected to each voltage source, to independently control the level of bias voltage to said first, second, third, fourth . . . nth ferroelectric rods; and
- means, with which said tunable filter being associated with, to keep said coaxial cavity tunable filter at a constant high superconducting temperature appropriately above the Curie temperature.
- 8. A band pass coaxial cavity tunable ferroelectric filter of claim 7: wherein the single crystal ferroelectric material being a mixture of strontium titanate and lead titanate and the high Tc superconductor being YBCO.
- 9. A band pass coaxial cavity tunable ferroelectric filter of claim 7:
- wherein the single crystal ferroelectric material being a mixture of strontium titanate and lead titanate and the high Tc superconductor being TBCCO.
- 10. A band pass coaxial cavity tunable ferroelectric filter of claim 7:
- wherein the single crystal ferroelectric material being KTa.sub.1-x Nb.sub.x O.sub.3 and the value of x is between 0.005 and 0.7.
- 11. A band pass coaxial cavity tunable ferroelectric filter of claim 10 wherein the high Tc superconductor being YBCO.
- 12. A band pass coaxial cavity tunable ferroelectric filter of claim 10 wherein the high Tc superconductor being TBCCO.
- 13. A band pass tunable filter comprising:
- a main coaxial transmission line section comprising an inner conductor and outer concentric conductor;
- a first coaxial cavity having respectively first input and first output irises and being connected to and being a part of said main coaxial transmission line;
- a first ferroelectric rod characterized by an electric field dependent permittivity and being placed in a center of said first coaxial cavity between said outer conductor and said inner conductor;
- a first means, connected with said first ferroelectric rod, to independently apply a bias electric field, using a separate voltage source, to said first ferroelectric rod to change the permittivity thereof and said resonant frequency of said first cavity;
- a second coaxial cavity having respectively second input and second output irises and being connected to and being a part of said main coaxial transmission line;
- a second ferroelectric rod characterized by said permittivity and being placed in a center of said second coaxial cavity between said outer conductor and said inner conductor;
- a second means, connected with said second ferroelectric rod, to independently apply a bias electric field, using a separate voltage source, to said second ferroelectric rod to change the permittivity thereof and said resonant frequency of said second cavity;
- a first coaxial transmission line section being a part of said main coaxial transmission line and being connected to and providing a separation, between centers of said first and second coaxial cavities, of typically three quarters of a wavelength long, at an operating frequency of the filter;
- third, fourth . . . nth coaxial cavities with corresponding irises and being connected to and being a part of said main coaxial transmission line;
- third, fourth . . . nth ferroelectric rods characterized by said permittivity and being respectively placed in centers of each said third, fourth . . . nth coaxial cavities between each said outer conductor and said inner conductor;
- third, fourth . . . nth means, connected respectively with said third, fourth . . . nth ferroelectric rods, to independently apply a bias electric field to said respectively third, fourth . . . nth ferroelectric rods to change the permittivity thereof and a resonant frequency respectively of said third, fourth . . . nth coaxial cavities;
- second, third . . . (n-1)th coaxial transmission line sections being a part of said main coaxial transmission line section and providing a respective separation, between the centers of successive adjacent coaxial cavities, of typically three quarters of a wavelength long at an operating frequency of the filter;
- an output of a microprocessor connected to each voltage source, to independently control the level of bias voltage to said first, second, third, fourth . . . nth ferroelectric rods; and
- means, with which said tunable filter being associated with, to keep said coaxial cavity tunable filter at a constant temperature appropriately above the Curie temperature.
- 14. A band pass coaxial cavity tunable ferroelectric filter of claim 13:
- wherein the single crystal ferroelectric material being KTa.sub.1-x Nb.sub.x O.sub.3 and the value of x is between 0.005 and 0.7.
- 15. A band pass coaxial cavity tunable ferroelectric filter of claim 13:
- wherein the single crystal ferroelectric material being a mixture of strontium titanate and lead titanate.
- 16. A band reject tunable filter comprising:
- a main coaxial transmission line section comprising an inner conductor and outer concentric conductor;
- a first branch coaxial transmission line;
- inner conductor of said first branch coaxial transmission line being connected to said inner conductor of main coaxial transmission line;
- outer conductor of said first branch coaxial transmission line being connected to said outer conductor of main coaxial transmission line;
- a first branch coaxial cavity being formed by being short circuited at the end and by placing an iris at the junction with and being separate from said main coaxial transmission line;
- a single crystal first ferroelectric rod characterized by an electric field dependent permittivity and being placed in a center of said first branch coaxial cavity between said outer conductor and said inner conductor;
- a first means, connected with said single crystal first ferroelectric rod, to independently apply a bias electric field, using a separate voltage source, to said single crystal first ferroelectric rod to change the permittivity thereof and a resonant frequency of said first branch coaxial cavity;
- a second branch coaxial transmission line;
- inner conductor of said second branch coaxial transmission line being connected to said inner conductor main coaxial transmission line;
- outer conductor of said second branch coaxial transmission line being connected to said outer conductor of main coaxial transmission line;
- a second branch coaxial cavity being formed by being short circuited at the end and by placing an iris at the junction with and being separate from said main coaxial transmission line;
- a first coaxial transmission line section being a part of said main coaxial transmission line and being connected to and providing a separation, between centers of said first and second branch coaxial cavities, of typically three quarters of a wavelength long, at an operating frequency of the filter
- a single crystal second ferroelectric rod characterized by said permittivity and being placed in a center of said second branch coaxial cavity between said outer conductor and said inner conductor;
- a second means, connected with said single crystal second ferroelectric rod, to independently apply a bias electric field, using a separate voltage source, to said single crystal second ferroelectric rod to change the permittivity thereof and a resonant frequency of said second branch coaxial cavity;
- third through nth branch coaxial transmission lines;
- inner conductors of each said third through nth branch coaxial transmission lines being connected respectively to said inner conductor of main coaxial transmission line;
- outer conductors of each said third through nth branch coaxial transmission lines being connected respectively to said outer conductor of main coaxial transmission line;
- each third through nth branch coaxial cavities being formed by third through nth branch coaxial transmission lines and being short circuited at the ends and by placing a respective iris at the corresponding junctions with and being separate from said main coaxial transmission line and being separate from one another;
- single crystal third through nth ferroelectric rods characterized by said permittivity and being respectively placed in centers of each said third through nth branch coaxial cavities between each said outer conductor and said inner conductor;
- second through (n-1)th coaxial transmission line sections being a part of said main coaxial transmission line and being connected to and providing respectively a separation, between centers of said adjacent third through nth branch coaxial cavities, of typically three quarters of a wavelength long, at an operating frequency of the filter
- third through nth means, connected respectively with said single crystal third through nth ferroelectric rods, to independently apply bias electric fields, using separate voltage sources, each to corresponding said single crystal third through nth ferroelectric rods to change the permittivity thereof and a resonant frequency respectively of said third through nth branch coaxial cavities;
- inner surfaces of said outer conductor and outer surfaces of inner conductors being comprised of a single crystal high Tc superconductor material;
- a microprocessor connected to each voltage source, to independently control the level of bias voltage to each said first, second, third through nth ferroelectric rods;
- said main coaxial transmission line, said branch cavities, said coaxial transmission line sections being connected together producing said tunable band reject filter; and
- means, with which said tunable filter being associated with, to keep said coaxial cavity tunable filter at a constant high superconducting temperature appropriately above the Curie temperature.
- 17. A band reject coaxial cavity tunable filter of claim 16: wherein the single crystal ferroelectric material being a mixture of strontium titanate and lead titanate.
- 18. A band reject coaxial cavity tunable filter of claim 16:
- wherein the ferroelectric material being a mixture of strontium titanate and lead titanate and the single crystal high Tc superconductor being YBCO.
- 19. A band reject coaxial cavity tunable filter of claim 16:
- wherein the single crystal ferroelectric material being KTa.sub.1-x Nb.sub.x O.sub.3 and the value of axis between 0.005 and 0.7.
Parent Case Info
This application is a division of application Ser. No. 08/309,979, filed Sep. 20, 1994, U.S. Pat. No. 5,496,796.
US Referenced Citations (4)
Foreign Referenced Citations (1)
Number |
Date |
Country |
1490401 |
Nov 1977 |
GBX |
Divisions (1)
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Number |
Date |
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Parent |
309979 |
Sep 1994 |
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