Claims
- 1. A piezoelectric transducer defined by two faces comprising:
a plurality of piezoelectric cylinders, the axial length and composition of the piezoelectric cylinders determining the frequency of the transducers when excited, the axial ends of said piezoelectric cylinders aligned with said faces, said piezoelectric cylinders separated from each other and the space therebetween fully or partially empty such that crosstalk between piezoelectric cylinders is substantially eliminated; and electrodes at the faces of the transducer for simultaneously exciting the piezoelectric cylinders.
- 2. A piezoelectric transducer defined by two faces comprising:
a support structure that provides mechanical strength to the transducer between said faces; a plurality of piezoelectric cylinders arranged within said support structure and between the parallel faces with cylindrical axes substantially perpendicular to said parallel faces, the axial length and composition of the piezoelectric cylinders determining the frequency of the transducers when excited, said piezoelectric cylinders separated from each other by a space and there being a gap in said space between the piezoelectric cylinders, said piezoelectric cylinders separated from each other by a distance that is less than the acoustic wavelength at the frequency of said piezoelectric cylinders in the space therebetween; and electrodes at the parallel faces of the transducer for simultaneously exciting said cylinders.
- 3. A piezoelectric transducer array defined by two substantially equidistant faces comprising:
a plurality of piezoelectric cylinders with equal length cylindrical axes, the axial length and composition of the piezoelectric cylinders determining the frequency of the transducers when excited, the axial ends of said piezoelectric cylinders aligned with said faces; and electrodes at the faces of the transducer for exciting the piezoelectric cylinders, the electrodes at at least one face being divided into a plurality of segments such that each segment may excite an adjacent group of piezoelectric cylinders.
- 4. A piezoelectric transducer array defined by two substantially parallel faces comprising:
a support structure that provides mechanical strength to the transducer between said faces; a plurality of piezoelectric cylinders arranged within said support structure between the parallel faces with cylindrical axes substantially perpendicular to said parallel faces, the axial length and composition of the piezoelectric cylinders determining the frequency of the transducers when excited, said piezoelectric cylinders separated from each other by a space and there being a gap in said space between the piezoelectric cylinders; and electrodes at the faces of the transducer for exciting the piezoelectric cylinders, the electrodes at at least one face being divided into a plurality of segments such that each segment may excite an adjacent group of piezoelectric cylinders.
- 5. The piezoelectric transducer according to any one of claims 1 to 4, wherein said piezoelectric cylinders are separated from each other by a distance that is less than the acoustic wavelength at the frequency of said piezoelectric cylinders in the space therebetween.
- 6. The piezoelectric transducer according to any one of claims 1 to 4, wherein the piezoelectric cylinders have one or more of the following cross sections: circular, rectangular, hexagonal, or any other polygon, with a width less than one wavelength of the frequency in the piezoelectric material.
- 7. The piezoelectric transducer according to any one of claims 1 to 4, wherein the width of the cross sections of the piezoelectric cylinders is less than one wavelength of the frequency of the cylinders.
- 8. The piezoelectric transducer of claim 2 or 4, wherein the support matrix material is a rigid foam material.
- 9. The piezoelectric transducer of claim 2 or 4, wherein the support matrix material is a honeycomb core.
- 10. The piezoelectric transducer of claim 2 or 4, wherein the support matrix is a perforated non-electrically conductive material.
- 11. The piezoelectric transducer of claim 2 or 4, wherein the support matrix is a non-electrically conductive perforated fibrous material.
- 12. The piezoelectric transducer of claim 2 or 4, wherein the support material is a non-electrically conductive dispersed fiber in which solid piezoelectric material rods are placed.
- 13. The piezoelectric transducer of any one of claims 1 to 4, wherein empty space between the piezoelectric cylinders is filled with a gas at atmospheric pressure.
- 14. The piezoelectric transducer of any one of claims 1 to 4, wherein empty space between the piezoelectric cylinders is filled with a gas below atmospheric pressure.
- 15. The piezoelectric transducer of any one of claims 1 to 4, wherein empty space between the piezoelectric cylinders is at a vacuum.
- 16. The piezoelectric transducer of any one of claims 1 to 4, wherein electrodes comprise a foil layer.
- 17. The piezoelectric transducer of any one of claims 1 to 4, wherein electrodes comprise a thin conductive coating.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims subject matter disclosed in Provisional Patent Application Serial No. 60/403,494, filed Aug. 14, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60403494 |
Aug 2002 |
US |