Claims
- 1. A surface acoustic wave device comprising:
- a piezoelectric substrate, in which the sound velocity of the surface acoustic wave has a velocity dispersion;
- a pair of input transducer means at left and right end portions on said substrate; and
- an output gate electrode formed on said substrate between said input transducer means;
- wherein said input transducer means includes a plurality of pairs of input transducers juxtaposed in a direction perpendicular to a propagation direction of the surface acoustic wave; each of the pairs of input transducers having uniform pitch interdigital electrodes; the pitches of the electrodes of different pairs being different; and the distance between the transducers of different pairs being different from each other;
- wherein said output gate electrode is divided, corresponding to propagation paths of the surface acoustic wave between different pairs of input transducers disposed at the left and right end portions on the substrate; and
- wherein grooves are formed under said divided output gate electrode, corresponding to parts of the electrode this obtained.
- 2. A surface acoustic wave device comprising:
- a piezoelectric substrate, in which the sound velocity of the surface acoustic wave has a velocity dispersion represented by a function of the frequency;
- a pair of input transducers at left and right end portions on said substrate; and
- an output gate electrode formed on said substrate between said input transducers;
- wherein the distance between said pair of input transducers in a direction parallel to the propagation direction of the surface acoustic wave varies along said substrate in a direction perpendicular to said propagation direction; and
- wherein the length of said output gate electrode in the propagation direction of the surface acoustic wave varies along said substrate with respect to the direction perpendicular to said propagation direction, and dummy electrodes are disposed on both sides of said output gate electrode so that the combined shape of said output and dummy electrodes is a rectangle in appearance.
- 3. A surface acoustic wave device comprising:
- a piezoelectric substrate, in which the sound velocity of the surface acoustic wave has a velocity dispersion represented by a function of the frequency;
- a pair of input transducer means at left and right end portions on said substrate; and
- an output gate electrode formed on said substrate between said input transducer means;
- wherein said input transducer means includes a plurality of pairs of juxtaposed input transducers; and
- wherein the length of said output gate electrode in a propagation direction of the surface acoustic wave varies along said substrate with respect to the direction perpendicular to said propagation direction, and dummy electrodes are disposed on both sides of said output gate electrode so that the combined shape of said output and dummy electrodes is a rectangle in appearance.
- 4. A surface acoustic wave device comprising:
- a piezoelectric substrate, in which the sound velocity of a surface acoustic wave has a velocity dispersion;
- a pair of input transducer means at left and right end portions of said substrate; and
- an output gate electrode formed on said substrate between said input transducer means;
- wherein said input transducer means includes a plurality of pairs of input transducers juxtaposed in a direction perpendicular to a propagation direction of the surface acoustic wave, each of the pairs of input transducers including uniform pitch interdigital electrodes, the pitches of the electrodes of different said pairs of input transducers being different, and the distance between the input transducers of each said pair differing from the distance between the input transducers of other said pairs; and
- means for compensating for said velocity dispersion, including the relationship l.sub.n =.tau..multidot.v(.omega..sub.n) where l.sub.n is the distance between the input transducers of a respective said pair, n is a unique number for each said pair of transducers, .tau. is a desired delay time for the center angular frequency .omega..sub.o of the SAW device, .omega..sub.n is the angular frequency of each said pair, and v(.omega..sub.n) is the velocity of sound of a SAW corresponding to l.sub.n.
- 5. A surface acoustic wave device according to claim 4, wherein said output gate electrode is divided into plural parts corresponding to the propagation paths of the surface acoustic wave between the input transducers of respective said pairs.
- 6. A surface acoustic wave device according to claim 5, wherein grooves are formed along a surface of said substrate, each said groove being between a respective adjacent pair of said parts of aid output gate electrode.
- 7. A surface acoustic wave device comprising:
- a piezoelectric substrate, in which the sound velocity of a surface acoustic wave has a velocity dispersion which is a function of frequency;
- a pair of input transducers at left and right end portions of said substrate, each said input transducer having a center line extending approximately perpendicular to a traveling direction of the surface acoustic wave, and having means responsive to an input signal with a frequency distribution for introducing a plurality of surface acoustic waves at respective frequencies into said piezoelectric substrate at respective locations spaced from each other along the input transducer in a direction approximately parallel to said center line thereof;
- an output gate electrode formed on said substrate between said input transducers to take out from said device an output signal which is a function of respective input signals applied to said input transducers; and
- means for compensating for said velocity dispersion, including the distance l(y) between said center lines of said input transducers in a direction parallel to said traveling direction being defined by ##EQU7## where y represents distance in a direction perpendicular to said traveling direction, v is the velocity of sound of a surface acoustic wave, .omega.(y) represents the center frequency distribution of the surface acoustic wave with respect to said direction perpendicular to said traveling direction, and .tau. is a delay time; and including the distance L(y) between end portions of said output gate electrode in a direction parallel to said traveling direction being defined by ##EQU8## where T is an integration time.
- 8. The surface acoustic wave device according to claim 7, wherein the distance L(y) between end portions of said output gate electrode in the direction parallel to said traveling direction varies continuously with respect to the direction perpendicular to said traveling direction.
- 9. The surface acoustic wave device according to claim 7, wherein the distance L(y) between end portions of said output gate electrode in the direction parallel to said traveling direction varies stepwise with respect to the direction perpendicular to said traveling direction.
- 10. The surface acoustic wave device according to claim 7, wherein dummy electrodes are provided on said substrate adjacent opposite ends of said output gate electrode, each said dummy electrode having a configuration compensating for variations in the length L(y) of said output gate electrode so that the combined shape of said output gate electrode and said dummy electrodes is substantially a rectangle.
- 11. A surface acoustic wave device according to claim 7, wherein two of said surface acoustic waves introduced into said piezoelectric substrate at different said locations have respective frequencies which are nonharmonic.
- 12. A surface acoustic wave device comprising:
- a piezoelectric substrate, in which the sound velocity of a surface acoustic wave has a velocity dispersion which is a function of frequency;
- a pair of input transducer means at left and right end portions of said substrate, each said input transducer means being responsive to an input signal with a frequency distribution for introducing a plurality of surface acoustic waves at respective frequencies into said piezoelectric substrate at respective locations spaced from each other along the input transducer means in a direction approximately perpendicular to a traveling direction of the surface acoustic waves;
- an output gate electrode formed on said substrate between said input transducer means to take out from said device an output signal which is a function of respective input signals applied to respective said input transducer means; and
- means for compensating for said velocity dispersion, including said input transducer means having a plurality of pairs of juxtaposed input transducers; the distance l.sub.n between the input transducers of each said pair being defined by ##EQU9## where n is a unique number for each said pair, v is the velocity of sound of a surface acoustic wave, .omega. is a center frequency, and .tau. is a delay time; and including said output gate electrode having a length L in a direction parallel to the traveling direction which varies with respect to a direction perpendicular to said traveling direction, and the length L thereof between each said pair of input transducers being defined by ##EQU10## where T is an integration time.
- 13. The surface acoustic wave device according to claim 12 wherein said output gate electrode is divided into plural parts respectively corresponding to surface acoustic wave traveling paths between the input transducers of respective said pairs.
- 14. The surface acoustic wave device according to claim 12, wherein dummy electrodes are provided on said substrate adjacent opposite ends of said output gate electrode, each said dummy electrode having a configuration compensating for variation of the length L.sub.n of said output gate electrode so that the combined shape of said output gate electrode and said dummy electrodes is substantially a rectangle.
- 15. A surface acoustic wave device according to claim 12, wherein two of said surface acoustic waves introduced into said piezoelectric substrate at different said locations have respective frequencies which are nonharmonic.
- 16. A surface acoustic wave device comprising:
- a piezoelectric substrate, in which the sound velocity of a surface acoustic wave has a velocity dispersion which is a function of frequency;
- a pair of input transducers at left and right end portions of said substrate, each said input transducer having a center line extending approximately perpendicular to a traveling direction of the surface acoustic wave;
- an output gate electrode formed on said substrate between said input transducers to take out from said device an output signal which is a function of respective input signals applied to said input transducers; and
- means for compensating for said velocity dispersion, including the distance l(y) between said center lines of said input transducers in a direction parallel to said traveling direction being defined by ##EQU11## whereby y represents distance in a direction perpendicular to said traveling direction, v is the velocity of sound of a surface acoustic wave, .omega.(y) represents the center frequency distribution of the surface acoustic wave with respect to said direction perpendicular to said traveling direction, and .tau. is a delay time; and including said output gate electrode being approximately trapezoidal and having a distance L(y) between end portions thereof in a direction parallel to said traveling direction being defined by ##EQU12## where T is an integration time.
- 17. A surface acoustic wave device comprising:
- a piezoelectric substrate, in which the sound velocity of a surface acoustic wave has a velocity dispersion which is a function of frequency;
- a pair of input transducer means at left and right end portions of said substrate;
- an output gate electrode formed on said substrate between said input transducer means to take out from said device an output signal which is a function of respective input signals applied to respective said input transducer means; and
- means for compensating for said velocity dispersion, including said input transducer means having a plurality of pairs of juxtaposed input transducers; the distance l.sub.n between the input transducers of each said pair being defined by ##EQU13## where n is a unique number for each said pair, v is the velocity of sound of a surface acoustic wave, .omega. is a center frequency, and .tau. is a delay time; and including said output gate electrode being approximately trapezoidal and having a length L in a direction parallel to the traveling direction which varies with respect to a direction perpendicular to said traveling direction, and the length L thereof between each said pair of input transducers being defined by ##EQU14## where T is an integration time.
Priority Claims (2)
Number |
Date |
Country |
Kind |
1-211999 |
Aug 1989 |
JPX |
|
1-212000 |
Aug 1989 |
JPX |
|
Parent Case Info
This application is a continuation of U.S. Ser. No. 07/567,952, filed Aug. 15, 1990, now abandoned.
US Referenced Citations (12)
Foreign Referenced Citations (7)
Number |
Date |
Country |
0153092 |
Aug 1985 |
EPX |
0073917 |
Jun 1981 |
JPX |
0199317 |
Sep 1986 |
JPX |
0144610 |
Jun 1988 |
JPX |
0726646 |
Apr 1980 |
SUX |
0959102 |
Sep 1982 |
SUX |
2069279 |
Aug 1981 |
GBX |
Non-Patent Literature Citations (1)
Entry |
"Broadband, Amplitude & Phase-Compensating Transducers for Monolithic Convolvers " by M. Smith of Hughes Aircraft Company Conference: 1980 Ultrasonics Symposium Proceedings Boston, Mass. USA, Nov. 5-7, 1980. |
Continuations (1)
|
Number |
Date |
Country |
Parent |
567952 |
Aug 1990 |
|