Claims
- 1. A transducer array for an ink-jet printing apparatus, comprising:
- a support plate of non-piezoelectric material defining a support surface;
- a plurality of transducer units, each of said plurality of transducer units being composed of at least one flat plate-shaped layer of piezoelectric material, the at least one flat plate layer having a first flat plate surface and a second flat plate surface facing opposite the first flat plate surface, the first flat plate surface of a first layer of said piezoelectric material abutting the support surface of the support plate, the second flat plat surface of the at least one layer of said piezoelectric material being electrically coupled to an electrode disposed substantially in parallel with the support surface, and each of the transducer units having a transducer length in a transducer expansion direction from the first flat plate surface of the first layer of said piezoelectric material to the second flat plate surface of a last layer of said piezoelectric material and having a width in a direction transverse to the transducer length, the transducer length being no more than three times the transducer width;
- a plurality of transducer chambers, each of said plurality of transducer chambers having a transducer chamber length in the transducer expansion direction, wherein each of the plurality of transducer units is disposed in a corresponding one of the plurality of transducer chambers; and
- a voltage source electrically coupled to said electrode for applying a voltage across each flat plate surface of the at least one layer of piezoelectric material, wherein upon applying the voltage across each flat plate surface, the at least one layer of piezoelectric material contracts or expands in a direction perpendicular to the flat plate surface.
- 2. A transducer array as recited in claim 1, wherein each transducer unit comprises a plurality of flat plate-shaped layers of piezoelectric material.
- 3. A transducer array as recited in claim 1, wherein each electrode comprise a layer of conductive material provided adjacent and parallel to each plate surface of the one or more layers of piezoelectric material.
- 4. A transducer array as recited in claim 1, wherein:
- each transducer unit comprises a plurality of flat plate-shaped layers of piezoelectric material defining a stack, the stack having one surface facing and parallel to the support surface of the support plate and a second oppositely facing surface spaced from the support surface; and
- the transducer array further comprises an elongated foot coupled to the second surface of the stack of layers of piezoelectric material.
- 5. A transducer array as recited in claim 1, further comprising an elongated foot coupled to a surface opposite the support plate abutting surface of and extending beyond a width of each of said transducer units.
- 6. A transducer array as recited in claim 5, wherein each elongated foot is elongated in a direction substantially perpendicular to the the transducer expansion direction.
- 7. A transducer array as recited in claim 5, wherein the ink-jet printing apparatus for which the transducer array is designed to operate includes a plurality of ink-jet chambers and each of said transducer units and associated foot is configured to be arranged adjacent a respective ink-jet chamber, each foot defines a foot surface facing an adjacent ink-jet chamber, and a chamber facing foot surface of each foot has a surface area designed to provide a substantial impedance match between an associated transducer array and the adjacent ink-jet chamber.
- 8. A transducer array as recited in claim 5, wherein each foot has a first surface facing the coupled transducer unit and a second foot surface facing away from its associated transducer unit, the foot being tapered between the first and second foot surfaces such that the second foot surface defines a surface area larger than a surface area defined by the first foot surface.
- 9. A transducer array as recited in claim 1, wherein:
- each transducer unit comprises a plurality of flat plate-shaped layers of piezoelectric material stacked one-on-another on the support surface of the support plate: and
- each of said layers arranged further from the support surface defines a layer surface area which is larger than the layer surface area defined by each layer arranged closer to the support surface in the stack.
- 10. A transducer array as recited in claim 1, wherein the support plate is substantially flat and the first of the first layer of piezoelectric material of the opposite facing flat plate surfaces abuts the support surface of the support plate independent of lateral support.
- 11. A transducer array as recited in claim 1, wherein the support plate of non-piezoelectric material is non-conducting.
- 12. A transducer array as recited in claim 1, wherein the at least one flat plate-shaped layer of piezoelectric material expands for droplet ejection in the transducer expansion direction.
- 13. A transducer array for an ink-jet printing apparatus, comprising:
- a support plate of non-piezoelectric material defining a support surface;
- a plurality of transducer units arranged in a first linear array, each of said plurality of transducer units being composed of at least one layer of piezoelectric material defining a stack, the stack having a first surface and a second surface facing opposite the first surface, the first surface of the stack abutting the support surface of the support plate, the at least one layer of piezoelectric material being electrically coupled between a pair of electrodes disposed substantially in parallel with the support surface, and each of the plurality of transducer units having a transducer length in a transducer expansion direction from the first surface of the stack to the second surface of the stack and having a width in a direction transverse to the transducer length, the transducer length being no more than three times the transducer width;
- a plurality of transducer chambers, each of the plurality of transducer chambers having a transducer chamber length in the transducer expansion direction, wherein each of the plurality of transducer units is disposed in a corresponding one of the plurality of transducer chambers;
- a plurality of elongated feet corresponding in number to the plurality of transducer units, each of the plurality of elongated feet being associated with a respective one of the plurality of transducer units and being coupled to the second surface of the stack of the respective one of the transducer units, each of the plurality of elongated feet being elongated in a direction transverse to the first linear array of transducers; and
- a voltage source electrically coupled to the pair of electrodes for applying a voltage across the at least one layer of said piezoelectric material, wherein upon applying the voltage across the at least one layer of said piezoelectric material, the at least one layer of said piezoelectric material contracts or expands in the direction perpendicular to the first and second opposite facing surfaces thereof.
- 14. A transducer array as recited in claim 13, wherein each transducer unit comprises a plurality of layers of piezoelectric material.
- 15. A transducer array as recited in claim 13, wherein each elongated foot is elongated in a direction substantially perpendicular to the the transducer expansion direction.
- 16. A transducer array as recited in claim 13, wherein the ink-jet printing apparatus for which the transducer array is designed to operate includes a plurality of ink-jet chambers and each of said transducer units and associated foot is configured to be arranged adjacent a respective ink-jet chamber, each foot defines a foot surface facing the adjacent ink-jet chamber, and the chamber facing foot surface of each foot has a surface area designed to provide a substantial impedance match between the associated transducer array and the adjacent ink-jet chamber.
- 17. A transducer array as recited in claim 13, wherein each stack has a plurality of layers of piezoelectric material stacked one-on-another on the support surface of the support plate, wherein each of said layers arranged further from the support surface defines a layer surface area which is larger than a layer surface area defined by each of said layers arranged closer to the support surface in the stack.
- 18. A transducer array as recited in claim 13, wherein each foot has a first foot surface facing the associated transducer unit and a second foot surface facing away from the associated transducer unit, the foot being tapered between the first foot surface and the second foot surface such that the second foot surface defines a surface area larger than a surface area defined by the first foot surface.
- 19. An ink-jet apparatus comprising:
- a plurality of ink-jet chambers arranged in a linear array;
- a support plate of non-piezoelectric material defining a support surface;
- a plurality of transducer units, each of said plurality of transducer units being associated with a respective ink-jet chamber and being arranged adjacent in said associated ink-jet chamber, each of said transducer units being composed of at least one flat plate-shaped layer of piezoelectric material, the at least one flat plate-shaped layer of piezoelectric material having a first flat plate surface and a second flat plate surface facing opposite the first flat plate surface, the first flat plate surface of a first layer of piezoelectric material abutting the support surface of the support plate, and the second flat plate surface of the at least one flat plate-shaped layer of piezoelectric material being electrically coupled to an electrode disposed substantially in parallel with the support surface, each of the plurality of transducer units having a transducer length in a transducer expansion direction from the first flat plate surface of the first layer of piezoelectric material to the second flat plate surface of a last layer of piezoelectric material and having a width in a direction transverse to the transducer length, the transducer length being no more than three times the transducer width;
- a plurality of transducer chambers, each of the plurality of transducer chambers having a transducer chamber length in the transducer expansion direction, wherein each of the plurality of transducer units is disposed in a corresponding one of the plurality of transducer chambers; and
- drive means for applying a drive signal across the electrodes electrically coupled to the flat plate surfaces of the at least one flat plate-shaped layer of piezoelectric material,
- wherein the drive signal causes each layer of piezoelectric material to contract or expand in a direction from one to another of said flat plate surfaces.
- 20. A transducer array for an ink-jet printing apparatus, comprising:
- a substantially flat support plate of non-conducting, non-piezoelectric material defining a support surface;
- a plurality of transducer units, each of said plurality of transducer units being composed of at least one flat plate-shaped layer of piezoelectric material, the at least one layer of piezoelectric material having a first flat plate surface and second flat plate surface facing opposite the first flat plate surface, the first flat plate of a first layer of piezoelectric material abutting the support surface independent of lateral support, the second flat plate surface of the at least one layer of piezoelectric material being electrically coupled to an electrode disposed substantially in parallel with the support surface, and each of the plurality of transducer units having a transducer length in a transducer expansion direction from the first flat plate surface of the first layer of piezoelectric material to the second flat plate surface of a last layer of piezoelectric material and having a width in a direction transverse to the transducer length, the transducer length being no more than three times the transducer width;
- a plurality of transducer chambers, each of the plurality of transducer chambers having a transducer chamber length in the transducer expansion direction, wherein each of the plurality of transducer units is disposed in a corresponding one of the plurality of transducer chambers; and
- a voltage source electrically coupled to the electrode for applying a voltage across the at least one layer of piezoelectric material, wherein upon applying the voltage across the at least one layer, of piezoelectric material the at least one layer of piezoelectric material contracts or expands in the direction perpendicular to the first and second opposite facing flat plate surfaces.
- 21. A transducer array for an ink-jet printing apparatus, comprising:
- a plurality of transducer units, each of the transducer units being composed of at least one flat plate-shaped layer of piezoelectric material, the at least one layer of piezoelectric material having a first flat plate surface and a second flat plate surface facing opposite the first flat plate surface, the first flat plate surface of a first layer of piezoelectric material being adapted for abutting a support surface comprising a non-piezoelectric material, the second flat plate surface of the at least one piezoelectric layer being electrically coupled to an electrode, and each of the plurality of transducer units having a transducer length in a transducer expansion direction from the first flat plate surface of the first layer of piezoelectric material to the second flat plate surface of a last layer of piezoelectric material and having a width in a direction transverse to the transducer length, the transducer length being no more than three times the transducer width; and
- a plurality of transducer chambers, each of the plurality of transducer chambers having a transducer chamber length in the transducer expansion direction, wherein each of the plurality of transducer units is disposed in a corresponding one of the plurality of transducer chambers.
- 22. A transducer array as recited in claim 21, wherein each transducer unit comprises a plurality of flat plate-shaped layers of piezoelectric material.
- 23. A transducer array as recited in claim 21, wherein:
- each transducer unit comprises a plurality of flat layers of piezoelectric material defining a stack; and
- the transducer array further including an elongated foot coupled to the second surface of the stack of layers of piezoelectric material.
- 24. A transducer array as recited in claim 21, further comprising an elongated foot coupled to each of the transducer units and extending beyond a width of each of said transducer units.
- 25. A transducer array as recited in claim 24, wherein each elongated foot is elongated in a direction substantially perpendicular to the first linear array of transducers.
- 26. A transducer array as recited in claim 24, wherein the ink-jet printing apparatus for which the transducer array is designed to operate includes a plurality of ink-jet chambers and each of said transducer units and associated foot is configured to be arranged adjacent a respective ink-jet chamber, each foot defines a foot surface facing an adjacent ink-jet chamber, and a chamber facing foot surface of each foot has a surface area designed to provide a substantial impedance match between an associated transducer array and the adjacent ink-jet chamber.
- 27. A transducer array as recited in claim 24, wherein each foot has a first foot surface facing the coupled transducer unit and a second foot surface facing away from its associated transducer unit, the foot being tapered between the first and second foot surfaces such that the second foot surface defines a surface area larger than a surface area defined by the first foot surface.
- 28. A transducer array as recited in claim 21, wherein:
- each transducer unit comprises a plurality of flat layers of piezoelectric material stacked one-on-another; and
- each layer of piezoelectric material of each transducer unit arranged further from the support surface defines a layer surface area which is larger than the layer surface area defined by each previous layer arranged along the second length between the first and second opposite faces.
- 29. A transducer array as recited in claim 21, wherein the piezoelectric material of each transducer unit expands for droplet ejection in transducer expansion direction.
- 30. A transducer any as recited in claim 22, wherein the first and second opposite facing flat plate surfaces of the at least one layer of piezoelectric material is separated by less than about 5 mils.
- 31. A transducer array as recited in claim 30, wherein the transducer length is selected to increase each transducer's high frequency operation and capacitance such that electrical and mechanical cross-talk is reduced.
- 32. A transducer array as recited in claim 22, wherein each of the transducer units has a width perpendicular to the transducer length, and wherein the ratio between the width and the transducer is greater than 4:1.
- 33. A transducer array as recited in claim 22, wherein the transducer length of each transducer unit is selected to increase each transducer's high frequency operation and capacitance such that electrical and mechanical cross-talk is reduced.
- 34. A transducer array for an ink-jet printing apparatus, comprising:
- a plurality of transducer units arranged in a first linear array, each of said transducer units being composed of at least one layer of piezoelectric material defining a stack, the stack having a first surface and a second surface facing opposite the first surface, the at least one layer of piezoelectric material being electrically coupled between a pair of electrodes disposed substantially in parallel with the first and second surfaces, and a distance from the first surface to the second surface of the stack in a transducer expansion direction defining a transducer length and having a width in a direction transverse to the transducer length, the transducer length being no more than three times the transducer width;
- a plurality of transducer chambers, each of said plurality of transducer chambers having a transducer chamber length in the transducer expansion direction, wherein each of the plurality of transducer units is disposed in a corresponding one of the plurality of transducer chambers;
- a plurality of elongated feet corresponding in number to the plurality of transducer units, each of the plurality of elongated feet being associated with a respective one of the plurality of transducer units and being coupled to a second surface of the stack of the associated one of the plurality of transducer units, each of said plurality of elongated feet being elongated in a direction transverse to the first linear array of transducers; and
- a voltage source electrically coupled to the electrodes for applying a voltage across the at least one layer of piezoelectric material, wherein upon applying the voltage across the at least one layer of piezoelectric material, the at least one layer of piezoelectric material contracts or expands in the transducer expansion direction.
- 35. A transducer array as recited in claim 31, wherein each of the transducer units comprises a plurality of layers of piezoelectric material.
- 36. A transducer array as recited in claim 31, wherein each elongated foot is elongated in a direction substantially perpendicular to the transducer expansion direction.
- 37. A transducer array as recited in claim 34, wherein the ink-jet printing apparatus for which the transducer array is designed to operate includes a plurality of ink-jet chambers and each transducer unit and associated foot is configured to be arranged adjacent a respective ink-jet chamber, each foot defines a foot surface facing the adjacent ink-jet chamber, and the chamber facing foot surface of each foot has a surface area designed to provide a substantial impedance match between the associated transducer array and the adjacent ink-jet chamber.
- 38. A transducer array as recited in claim 31, wherein each stack has a plurality of layers of piezoelectic material stacked one-on-another, wherein each of successive layer defines a layer surface area which is larger than a layer surface area defined by each previous layer arranged along the transducer length.
- 39. A transducer array as recited in claim 34, wherein each foot has a first foot surface facing the associated transducer unit and a second foot surface facing away from the associated transducer unit, the foot being tapered between the first foot surface and the second foot surface such that the second foot surface defines a surface area larger than a surface area defined by the first foot surface.
- 40. A transducer array as recited in claim 31 wherein between the first and second opposite facing flat plate surfaces the at least one layer of piezoelectric material has a thickness in the transducer expansion direction which is less than about 5 mils.
- 41. A transducer array as recited in clams 34, wherein each of the transducer units has a width perpendicular to the transducer expansion direction, and wherein the ratio between the width and the transducer length is greater than 4:1.
Parent Case Info
This is a continuation of application Ser. No. 07/937,077 filed on Aug. 27, 1992, now abandoned.
US Referenced Citations (77)
Foreign Referenced Citations (1)
Number |
Date |
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0095911 |
Dec 1983 |
EPX |
Continuations (1)
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Number |
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937077 |
Aug 1992 |
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