1. Field of the Invention
The present invention generally relates to superconducting filter devices and, more particularly, to a superconducting filter device used for a receiver amplifier provided in a base station of a portable telephone communication system.
2. Description of the Related Art
In recent years, with the explosive development and popularization of portable telephones, there is a demand for development of a signal transmission technique that enables a high-speed, large-capacity signal transmission. As a technique which satisfies such as demand, there is suggested a technique using a superconducting filter as a frequency band filter used for a receiver amplifier provided in a base station of a portable telephone communication system.
A superconducting material usable as the frequency band filter is suitable for a microstrip line type filter since a surface resistance thereof is much smaller than that of a normal electrically conductive material even in a high-frequency range. Problems lie in putting such a superconducting filter in practical use, such as, for example, a problem in producing a low-temperature environment, have been greatly eliminated.
Recently, a superconducting filter for a receiver, which uses a superconductor, has been put in practical use. By using such a superconducting filter also for a transmitter circuit, it can be expected to eliminate distortion generated in an amplifier.
For example, Japanese Laid-Open Patent Application No. 2001-102809 suggests a method of adjusting a frequency band by using a separation plate that is located between and above adjacent resonators so as to adjust coupling between the resonators by shifting the separate plate upward or downward.
Additionally, “High-Tc Superconducting High-Power Filters Using Elliptic-Disc Resonators”, 1998 electronics information communication electronics society, electronics society meeting papers, p.p. 391–392 discloses an elliptic resonator used for adjusting frequency band of a superconducting filter. Further, “Elliptic-Disc Filters of High-Tc superconducting Films for Power-Handling Capability Over 100 W”, IEEE Trans. Microwave Theory Tech., vol. 48, No. 7, pp. 1256–1264, July 2000 also discloses an elliptic resonator used for adjusting frequency band of a superconducting filter.
It is a general object of the present invention to provide an improved and useful superconducting filter device in which the above-mentioned problems are eliminated.
A more specific object of the present invention is to provide a compact superconducting filter device which can easily change a bandwidth and a center frequency without changing a pattern or shape of the filter.
In order to achieve the above-mentioned object, there is provided according to the present invention a superconducting filter device for filtering a high-frequency signal, comprising: a substrate made of a dielectric material; a filter pattern formed on the substrate and made of a superconductor material; a signal input line and a signal output line each formed on said substrate so as to extend from a periphery of the filter pattern; and an adjust plate located above said filter pattern with a predetermined distance therebetween.
In the superconducting filter device according to the present invention, said adjust plate may be formed of an electrically conductive material. The adjust plate may be formed of copper.
Alternatively, the adjust plate maybe formed of a superconductor material. The superconductor material may be selected from a group consisting of RBCO (element R is one of Y, Nd, Gd and Ho, and is a material of R—Ba—Cu—O), BSCCO (a material of Bi—Sr—Ca—Cu—O material), and CBCCO (CuBapCaqCurOx: 1.5<p<2.5, 2.5<q<3.5, 3.5<r<4.5).
In the superconducting filter device according to the present invention, said adjust plate may comprise a substrate made of a dielectric material and a thin film of a superconductor material formed on a surface of the substrate.
In the superconducting filter device according to the present invention, the adjust plate may be formed of a dielectric material. The dielectric material may be selected from a group consisting of LaAlO3, TiO2, MgO, CeO2, ZrO2, sapphire and Al2O3.
In the superconducting filter device according to the present invention, the adjust plate may be positioned perpendicular to said filter pattern and the predetermined distance is provided between a lower edge of said adjust plate and said filter pattern. A thickness of said adjust plate may be smaller than a distance between said signal input line and said signal output line.
In the superconducting filter device according to the present invention, said filter pattern may have a substantially circular shape, and one of a notch and a protrusion may be provided on a part of an outer circumference of said filter pattern. The one of the notch and the protrusion may have a rectangular shape. The adjust plate may extend along a diametral line of said filter pattern passing said one of the notch and the protrusion. The adjust plate may extend along a diametral line of said filer pattern perpendicular to a diametral line of said filter pattern passing said one of the notch and the protrusion.
In the superconducting filter device according to the present invention, the substrate may be accommodated in a metal package, a surface of said substrate on which said filter pattern is formed may be covered by a cover of an electrically conductive material, and said filer pattern may be located within an enclosed space formed by said cover and said metal package. The adjust plate may be attached to an inner wall of said cover.
According to the present invention, there are two resonance frequencies generated in the filter pattern by locating the adjust plate above the filter pattern. By changing and adjusting the distance between the adjust plate and the filter pattern, the resonance frequency on the lower frequency side and the higher frequency side can be changed, which enables the bandwidth being wider or narrower. Additionally, a signal loss due to the adjust plate can be eliminated by forming the adjust plate by a superconductor material.
Other objects, features and advantages of the present invention will become more apparent from the following detailed description when read in conjunction with the accompanying drawings.
Many superconducting filters for reception are constituted as a filter in which a plurality of hairpin type resonators are arranged between a signal input line 4 and a signal output line 6 as shown in
Thus, in order to improve withstand electric power of the superconducting filter for transmission, there is suggested a method for suppressing a current concentration by using a disc shape resonator. However, such a filter constituted by arranging a plurality of disc shape resonators requires a large area. The disc shape resonator uses TM11 mode, and, as shown in
In a superconducting filter, a bandwidth can be changed by adjusting coupling between resonators. If the filter having a disc provided with a notch or protrusion beforehand as shown in
A description will now be given, with reference to the drawings, of a superconducting filter device according to a first embodiment of the present invention.
The superconducting filter device 20 comprises a resonator including a disc pattern 22 and a signal input line 24 and a signal output line 26 both extend from a periphery of the disc pattern 22. The disc pattern 22, the signal input line 24 and the signal output line 26 are formed on a substrate 28, which is made of a dielectric material, by using a high-temperature superconducting material. The disc pattern 22 has a generally circular shape, and used as a filter pattern that forms two resonators.
The superconducting filter device according to the present embodiment is a band-pass filter for especially filtering a high-frequency electric signal. More specifically, a description will be given of, as an example, a superconducting filter device such as one provided to a transmitter circuit of a communication system such as a cellular phone system. Presently, as for a superconductor material usable for the disc pattern 22, there are RBCO (element R is one of Y, Nd, Gd and Ho, and is a material of R—Ba—Cu—O), BSCCO (a material of Bi—Sr—Ca—Cu—O material), and CBCCO (CuBapCaqCurOx: 1.5<p<2.5, 2.5<q<3.5, 3.5<r<4.5), etc. Additionally, as for a dielectric material usable for a substrate 28 on which the disc pattern 22 is formed, there are MgO, LaAlO3, Al2O3, sapphire, TiO2, CeO2, etc.
The substrate 28 on which the disc pattern 22 is formed is enclosed in a metal package 30. The signal input line 24 and the signal output line 26, which extend from a periphery of the disc pattern 22, are pulled out of the metal package 30 through coaxial connectors 32, respectively. A cover 34 for high-frequency shielding is attached on an upper portion of the metal package 30, and the disc pattern 22 is situated in an enclosed space formed between the metal package 30 and the cover 34. The cover 34 is formed of an electrically conductive material and applied with gold plating, thereby providing a high-frequency shielding function.
In the present embodiment, an adjust plate 36 is provided in a space inside the cover 34. The adjust plate 36 is a thin plate of an electrically conductive material. The adjust plate 36 is fixed to an inner wall of the cover 34 so as to traverse above the disc pattern 22 and perpendicular to the disc pattern 22. Although a metal of a normal conductor (for example, copper) may be used for the material forming the adjust plate 36, a signal loss can be eliminated if a superconductor material is used similar to the disc pattern 22. Alternatively, a base of the adjust plate 36 may be formed by a dielectric material, and a thin film of a superconductor may be formed on a surface of the base. If the adjust plate 36 is formed of copper, the adjust plate and the superconducting filter device can be manufactured at a low cost since copper has a high conductivity and easy to obtain.
In the present embodiment, the disc pattern 22 has a rectangular notch 22a so that two resonators are formed on the disc pattern 22. The bandwidth of the filter can be changed by adjusting coupling between the two resonators. It should be noted that a center frequency of the filter also changes when changing the bandwidth. The adjust plate 36 is provided for adjusting the coupling between the resonators by changing the resonance frequencies of the two resonators. The rectangular notch or protrusion can provide a disc pattern having no sharp portion and easy to design.
A lower edge 36a of the adjust plate 36 extends parallel to the surface of the disc pattern 22 at a position slightly apart from the disc pattern 22. By changing the distance between the lower edge 36a of the adjust plate 36 and the disc pattern 22, coupling between the two resonators formed on the disc pattern 22 is changed. That is, when the adjust plate 36 is arranged along the diametral line which passes the notch 22a of the disc pattern 22, the adjust plate 36 is perpendicular to a magnetic field of the resonance A having a shorter wavelength, and, thus, magnetic energy is reduced as the adjust plate 36 is brought closer to the disc pattern 22. It is assumed that the resonance frequency is increased with the reduction in the magnetic energy.
On the other hand, at the resonance B of a longer wavelength, the adjust plate 36 is parallel to the magnetic field, and, thus, there is less influence to the electromagnetic field. For this reason, in the filter characteristic, it is considered that the resonance frequency of the resonance A having a shorter wavelength shifts toward the higher frequency side. On the other hand, if the adjust plate 36 is arranged along a diametral line perpendicular to the diametral line passing the notch 22a of the disc pattern 22, the adjust plate 36 is parallel to the magnetic field of the resonance A having a shorter wavelength, thereby giving less influence to the electromagnetic filed. It is considered that the resonance frequency is increased with respect to the resonance B since the adjust plate 36 is perpendicular to the magnetic filed with respect to the resonance B having a longer wavelength and magnetic energy is reduced. Consequently, it is considered that in the filter characteristic, the resonance frequency of the resonance B of a lower frequency side having a longer wavelength shifts toward the higher frequency side.
In the present embodiment, the bandwidth and the center frequency of the filter can be adjusted using this phenomenon. It should be noted that the arrows A and B in
As mentioned above, the bandwidth of the filter can be adjusted by the structure in which the adjust plate 36 is merely attached to the inner wall of the cover 34. That is, there is no need to change the configuration or shape of the disc pattern 22, and the superconducting filter device having various bandwidths can be achieved by using one disc pattern 22 and only changing the distance between the adjust plate 36 and the disc pattern 22.
Although the adjust plate 36 is arranged to extend in the diametral line passing the notch 22a of the disc pattern 22 in the present embodiment, the bandwidth can be changed by arranging the adjust plate 36 in a direction perpendicular to the diametral line passing the notch 22a. Additionally, the bandwidth can also be changed by changing the extending direction of the adjust plate 36, changing the configuration of the adjust plate 36 or changing the material of the adjust plate 36 to a material that can provide influence to an electromagnetic field.
The inventors performed experiments by making a trial manufacture of the superconducting filter device shown in
A description will be given below of the experiments.
When producing a trial device for experiments, the disc pattern and the signal input and output lines were not formed by a superconductor material but formed by copper which is an excellent electrically conductive material. A MgO substrate was used as the substrate on which the disc pattern is formed.
First, a copper (Cu) film was formed on the 20×20×0.5 mm MgO substrate, and the Cu film was processed according to a photolithography so as to form the disc pattern 22 and the signal input and output lines 24 and 26 as shown in
The thus-formed substrate 20 was put in a metal package having a gold plated surface, and the electrodes of the superconducting filter (which is not a superconductor but actually copper) are electrically connected to center conductors of coaxial connecters attached to the metal package. Thereafter, a gold plated cover was attached to the metal package so as to provide high-frequency shielding to complete the filter. Signal reflection and transmission characteristics of the filter was measured.
The filter made as a trial had the center frequency of near 4 GHz, and a bandwidth of the filter was about 80 MHz. Then, an adjust plate (pure copper) having a thickness of 1 mm was attached inside the cover for high-frequency shielding as shown in
Additionally, a difference in the change in the bandwidth due to positions of the adjust plate was investigated using the above-mentioned trail device. As shown in
Although the filter pattern was made of not a superconductor material but copper in the experiments performed with the above-mentioned trial device, it is understandable that the same effect can be obtained when using a filter pattern of a superconductor material since the change in the bandwidth is an effect of the mounting configuration.
Additionally, although a signal loss increases when using copper, which is a normal conductor, for the adjust plate, such a signal loss can be eliminated by using an adjust plate of a superconductor material. Further, the signal pass bandwidth can be changed by changing a position and a configuration of the adjust plate. For example, the signal pass bandwidth can be adjusted by slanting the adjust plate or forming a step in the adjust plate.
Additionally, although the two resonators are formed by providing the rectangular notch to the disc pattern as shown in
According to the superconducting filter device according to the above-mentioned embodiment, the signal pass bandwidth of the superconducting filter device is adjustable by changing the distance between the previously formed filter pattern and the adjust plate provided adjacent to the filter pattern. Accordingly, it is possible to produce superconducting filter devices having different signal pass bandwidths using the same filter pattern. Thereby, a number of processes in the design and trial of the filter pattern can be reduced, which results in reduction in the development period of the superconducting filter device. Additionally, it is easy to change the bandwidth of the already-formed superconducting filter device.
It should be noted that there is a limitation in miniaturization of the superconducting filter device according to the method (the above-mentioned Japanese Laid-Open Patent Application No. 2001-102809) of adjusting a frequency band by adjusting coupling between the resonators by shifting the separation plate above a position between the resonators, and the adjustment is only in one direction to make a narrower frequency bandwidth.
On the other hand, the superconducting filter device according to the present invention is compact, and the resonance frequency on the lower frequency side and the higher frequency side can be changed by changing the frequencies of the two resonances generated in the disc by moving upward or downward the adjust plate corresponding to the direction of resonance, which makes easy to increase or decrease the bandwidth as a filter.
A description will now be given, with reference to
In the above-mentioned first embodiment, the adjust plate is formed of an electrically conductive material (preferably, a superconducting material). On the other hand, in the present embodiment, the adjust plate is formed of a dielectric material. A structure of the superconducting filter device according to the second embodiment, except for the adjust plate 36 being formed of a dielectric material, is the same as the superconducting filter device according to the above-mentioned first embodiment, and a description thereof will be omitted.
The inventors performed experiments by making a trial manufacture of the superconducting filter device shown in
When producing a trial device for experiments, the disc pattern and the signal input and output lines were not formed by a superconductor material but formed by copper which is an excellent electrically conductive material. A MgO substrate was used as the substrate on which the disc pattern is formed.
First, a copper (Cu) film was formed on the 20×20×0.5 mm MgO substrate, and the Cu film was processed according to a photolithography so as to form the disc pattern 22 and the signal input and output lines 24 and 26 as shown in
The thus-formed substrate 20 was put in a metal package having a gold plated surface, and the electrodes of the superconducting filter are electrically connected to center conductors of coaxial connecters attached to the metal package. Thereafter, a gold plated cover was attached to the metal package so as to provide high-frequency shielding to complete the filter. Signal reflection and transmission characteristics of the filter were measured. The filter made as a trial had the center frequency of near 4 GHz, and a bandwidth of the filter was about 80 MHz.
Then, an adjust plate having a thickness of 1 mm, which is for adjusting the resonator coupling, was formed by a dielectric material (LaAlO3), and the thus-formed adjust plate was attached to an inner side of the high-frequency shielding cover, and the characteristics of the filter are evaluated while changing the position (height) of the adjust plate. When the adjust plate was positioned along a diametral direction passing the notch of the disc pattern, the high-frequency end of the bandwidth (signal pass characteristic) shifted toward the lower frequency side as indicated by a dashed line in
Although LaAlO3 was used as a dielectric material of the adjust plate in the trial device, the dielectric material is not limited to LaAlO3, and, for example, TiO2, MgO, CeO2, ZrO2, sapphire, Al2O3, etc., may be used as a dielectric material having a low transmission loss (low dielectric loss).
As explained in the above-mentioned first and second embodiments, a signal pass frequency bandwidth can be increased or decreased by arranging the adjust plate above the disc patter constituting the filter, and a center frequency of the signal pass frequency bandwidth can also be shifted. Additionally, if an electrically conductive material is used for the material of the adjust plate as in the first embodiment, the bandwidth can be enlarged toward a higher frequency, while the bandwidth can be enlarged toward a lower frequency by using a dielectric material as the material of the adjust plate as in the second embodiment. Accordingly, by selecting the material of the adjust plate between an electrically conductive material and a dielectric material based on a direction of adjustment of a signal pass frequency bandwidth, the bandwidth can be adjusted with a desired bandwidth and a desired center frequency.
The present invention is not limited to the specifically disclosed embodiments, and variations and modifications may be made without departing the scope of the present invention.
The present application is based on Japanese priority applications No. 2004-145377 filed May 14, 2004 and No. 2004-314094 filed Oct. 28, 2004, the entire contents of which are hereby incorporated herein by reference.
Number | Date | Country | Kind |
---|---|---|---|
2004-145377 | May 2004 | JP | national |
2004-314094 | Oct 2004 | JP | national |
This is a continuation-in-part application of application Ser. No. 10/947,541 filed Sep. 23, 2004 now abandoned.
Number | Name | Date | Kind |
---|---|---|---|
5172084 | Fiedziuszko et al. | Dec 1992 | A |
5721195 | Grothe et al. | Feb 1998 | A |
5965494 | Terashima et al. | Oct 1999 | A |
6360112 | Mizuno et al. | Mar 2002 | B1 |
6463308 | Wikborg et al. | Oct 2002 | B1 |
6532377 | Terashima et al. | Mar 2003 | B1 |
6778042 | Terashima et al. | Aug 2004 | B2 |
Number | Date | Country |
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2001-102809 | Apr 2001 | JP |
Number | Date | Country | |
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20050256010 A1 | Nov 2005 | US |
Number | Date | Country | |
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Parent | 10947541 | Sep 2004 | US |
Child | 11050820 | US |