US20010022489A1 - Method for manufacturing piezoelectric actuators and a piezoelectric actuator - Google Patents

Method for manufacturing piezoelectric actuators and a piezoelectric actuator Download PDF

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US20010022489A1
US20010022489A1 US09/837,127 US83712701A US2001022489A1 US 20010022489 A1 US20010022489 A1 US 20010022489A1 US 83712701 A US83712701 A US 83712701A US 2001022489 A1 US2001022489 A1 US 2001022489A1
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electrodes
connecting openings
recited
foils
actuators
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US09/837,127
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Dieter Seipler
Walter Rothlingshofer
Susumu Nishigaki
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Priority to US10/137,924 priority patent/US6757947B2/en
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    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10NELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10N30/00Piezoelectric or electrostrictive devices
    • H10N30/20Piezoelectric or electrostrictive devices with electrical input and mechanical output, e.g. functioning as actuators or vibrators
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10NELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10N30/00Piezoelectric or electrostrictive devices
    • H10N30/01Manufacture or treatment
    • H10N30/05Manufacture of multilayered piezoelectric or electrostrictive devices, or parts thereof, e.g. by stacking piezoelectric bodies and electrodes
    • H10N30/053Manufacture of multilayered piezoelectric or electrostrictive devices, or parts thereof, e.g. by stacking piezoelectric bodies and electrodes by integrally sintering piezoelectric or electrostrictive bodies and electrodes
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10NELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10N30/00Piezoelectric or electrostrictive devices
    • H10N30/01Manufacture or treatment
    • H10N30/06Forming electrodes or interconnections, e.g. leads or terminals
    • H10N30/063Forming interconnections, e.g. connection electrodes of multilayered piezoelectric or electrostrictive parts
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10NELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10N30/00Piezoelectric or electrostrictive devices
    • H10N30/01Manufacture or treatment
    • H10N30/08Shaping or machining of piezoelectric or electrostrictive bodies
    • H10N30/085Shaping or machining of piezoelectric or electrostrictive bodies by machining
    • H10N30/088Shaping or machining of piezoelectric or electrostrictive bodies by machining by cutting or dicing
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10NELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10N30/00Piezoelectric or electrostrictive devices
    • H10N30/50Piezoelectric or electrostrictive devices having a stacked or multilayer structure
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10NELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10N30/00Piezoelectric or electrostrictive devices
    • H10N30/80Constructional details
    • H10N30/87Electrodes or interconnections, e.g. leads or terminals
    • H10N30/872Connection electrodes of multilayer piezoelectric or electrostrictive devices, e.g. external electrodes
    • H10N30/874Connection electrodes of multilayer piezoelectric or electrostrictive devices, e.g. external electrodes embedded within piezoelectric or electrostrictive material, e.g. via connections
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10NELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10N30/00Piezoelectric or electrostrictive devices
    • H10N30/01Manufacture or treatment
    • H10N30/06Forming electrodes or interconnections, e.g. leads or terminals
    • H10N30/067Forming single-layered electrodes of multilayered piezoelectric or electrostrictive parts
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/42Piezoelectric device making
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49002Electrical device making
    • Y10T29/49117Conductor or circuit manufacturing
    • Y10T29/49124On flat or curved insulated base, e.g., printed circuit, etc.
    • Y10T29/49126Assembling bases
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49002Electrical device making
    • Y10T29/49117Conductor or circuit manufacturing
    • Y10T29/49124On flat or curved insulated base, e.g., printed circuit, etc.
    • Y10T29/49155Manufacturing circuit on or in base
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49002Electrical device making
    • Y10T29/49117Conductor or circuit manufacturing
    • Y10T29/49124On flat or curved insulated base, e.g., printed circuit, etc.
    • Y10T29/49155Manufacturing circuit on or in base
    • Y10T29/49165Manufacturing circuit on or in base by forming conductive walled aperture in base
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49789Obtaining plural product pieces from unitary workpiece
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49789Obtaining plural product pieces from unitary workpiece
    • Y10T29/49798Dividing sequentially from leading end, e.g., by cutting or breaking

Definitions

  • the present invention relates to a piezoelectric actuator which can be particularly used for actuating a fuel injector, as well as a method for manufacturing it.
  • Piezoelectric actuators particularly for actuating fuel injectors, are known in varied types of construction, for example, from German patent 195 00 706 A1 or German patent 43 06 073 C1.
  • the piezoelectric actuators are composed of a plurality of piezoelectric layers stacked one over another which are each coated with an electrode on one surface.
  • Usual piezoelectric actuators are composed of several hundred of piezoelectric layers stacked one over another in such a manner. In this manner, a relatively great length of actuating travel is achieved.
  • the electrodes of the individual piezoelectric layers must be alternately connected to a voltage source to generate an electrical field in individual layers which is oriented in the same direction.
  • every other electrode is connected to a first pole of a voltage source, while the intermediate electrodes are connected to a second pole of a voltage source.
  • the electrodes which extend up to the edge of the stacked piezoelectrical layers, are usually interconnected in the edge area on the outside.
  • this contacting method requires considerable outlay, and is susceptible to faults, and, in addition, has the disadvantage that the electrodes, because they extend into the edge area, are not insulated against the surroundings so that the surface area of the piezoelectric actuators must be provided with an additional insulation.
  • the method according to the present invention having the features of claim 1 has the advantage that it can be used in a fully automated manufacture, and results in very low manufacturing expenses.
  • the electrodes of the actuator are not contacted on the outside, but on the inside, using an electrically conductive paste which is introduced into connecting openings. Therefore, the contacting according to the present invention is little susceptible to faults and insusceptible to external mechanical damage.
  • the piezoelectrical actuators are manufactured in parallel with each other in a highly integrated manufacturing process. A block including a plurality of piezoelectric actuators is split up into the individual actuators only at the end of the manufacture. In this manner, the manufacturing rate can be considerably increased. The same advantages ensue also for the actuator according to the present invention having the features of claim 10 .
  • perforation holes can be formed in the foils which form the piezoelectric layers.
  • these perforation holes are used as degassing ducts during the subsequent firing of the stacked foils.
  • the perforation holes make it easier to separate the stacked arrangement into the individual actuators.
  • the separation can be carried out by applying an electrical field to the electrodes of adjacent actuators in an opposite direction to the polarity. While one adjacent actuator contracts, the other adjacent actuator expands. The resulting mechanical stress causes the actuators to break apart along the separating line predefined by the perforation holes.
  • the perforation holes make it also easier to separate the actuators by sawing along the perforation line predefined by the perforation holes. Another suited separating method is water-jet cutting.
  • the metallic electrodes can be advantageously applied using a screen-printing technique, vapor depositing, or sputtering, it being advantageous not to apply the electrodes all-over, but in a, for example, netlike pattern for reasons of material saving and better adhesion promotion to the ceramic layer lying above.
  • FIG. 1 shows a schematic representation of three foils made of piezoelectric ceramic material to be stacked one over another which are coated with electrodes, and provided with connecting openings and perforation holes, and
  • FIG. 2 shows a cut-off, perspective representation of a finished actuator.
  • FIG. 1 shows a perspective, schematic representation to illustrate the manufacturing process according to the present invention. Shown are three foils 1 , 2 , and 3 made of a still unfired piezoelectric ceramic material, i.e., of “green ceramic”.
  • a suitable material is, for example, lead-barium titanate (PbBaTiO 2 ).
  • the ceramic material can be processed into thin foils, for example, by rolling, casting, or cutting, prior to the firing.
  • the magnitude of the foil thickness lies at, for example, 0.1 mm, without the feasibility of the present invention being limited to this foil thickness.
  • the foils are coated with an electrically conductive material, preferably with a thin metal layer, on their upper side 4 1 , 4 2 , 4 3 .
  • an electrically conductive material preferably with a thin metal layer
  • Electrodes 5 1 through 10 1 , 5 2 through 10 2 , and 5 3 through 10 3 can be applied all-over. In a screen-printing technique, however, a netlike pattern of the electrodes is expedient.
  • one electrode 5 1 , through 10 1 , 5 2 , through 10 2 , and 5 3 , through 10 3 , of each foil 1 , 2 , and 3 is assigned to an actuator, respectively. Therefore, a plurality of actuators arranged in a laterally offset manner relative to each other are processed concurrently by the method according to the present invention, allowing the manufacturing expenses to be markedly reduced. In principle, it is also possible to assign not just one, but a plurality of electrodes to each actuator if this is desirable for individual application cases.
  • first connecting openings 11 1 through 16 1 in first foil 1 , 11 2 through 16 2 in second foil 2 , and 11 3 through 16 3 in third foil 3 are formed, for example, by punching or drilling in each foil layer 1 , 2 , and 3 , respectively.
  • Connecting openings 11 through 22 are used for contacting individual electrodes 5 through 10 , which will still be discussed in greater detail.
  • second connecting openings 17 1 through 22 1 in first foil 1 are each surrounded by a cut-out 23 1 through 28 1 , respectively, i.e., the electrode coating does not reach up to edge of second connecting openings 17 1 through 22 1 , but the edge of electrodes 5 1 through 10 1 is spaced from the edge of second connecting openings 17 1 through 22 1 .
  • electrodes 5 3 through 10 3 of third foil 3 are provided with cut-outs 23 3 through 28 3 which surround second connecting openings 17 3 through 22 3 .
  • cut-outs 23 2 through 28 2 of electrodes 5 2 through 10 2 surround first connecting openings 11 2 through 16 2 .
  • cut-outs 23 through 28 from foil layer to foil layer, are alternately assigned to first connecting openings 11 through 16 or second connecting openings 17 through 22 , respectively.
  • each foil layer 1 , 2 , and 3 is provided with perforation holes 30 1 , 30 2 , and 30 3 , respectively, which can be formed, for example, by punching or drilling concurrently with connecting openings 11 through 16 and second connecting openings 17 through 22 .
  • perforation holes 30 are formed in a netlike manner, in each case marking the boundary line between the individual actuators manufactured concurrently using the method according to the present invention.
  • each foil netlike intermediate areas 31 1 , and 31 2 , and 31 3 are provided between electrodes 5 1 through 10 1 and 5 2 through 10 2 , and 5 3 through 10 3 , respectively, so that electrodes 5 through 10 do not reach up to the outer edge of the actuators, but are spaced from the edge marked by perforation holes 30 .
  • Perforation holes 30 are preferably arranged in intermediate areas 31 in lines running along the edges of the individual actuators.
  • actuators are manufactured which have a rectangular cross-section. To manufacture actuators having different cross-sections, the perforation holes are to be arranged in a varied manner correspondingly.
  • a plurality of foils are stacked one over another.
  • FIG. 1 To attain a sufficient length of actuator travel, preferably several hundred of the foils shown in FIG. 1 and treated as specified are stacked one over another.
  • the individual foil 30 layers are aligned relative to each other in such a way that both perforation holes 30 , and first connecting openings 11 through 16 , and second connecting openings 17 through 22 are positioned exactly one over another. This can be carried out, for example, in a fully automatic fashion using a reference-mark system capable of being mechanically or optically scanned.
  • FIG. 1 shows foils 1 through 3 in cutaway portions
  • the stacking that is, disposing in layers of the individual foils 1 through 3 is illustrated by arrows 40 through 43 .
  • the layer sequence of foils 1 through 3 is selected in such a manner that connecting openings 11 through 16 , and 17 through 22 , which are arranged one over another, respectively, are alternately surrounded by a cut-out 23 through 28 of electrodes 5 through 10 only in every other foil layer 1 through 3 so that electrodes 5 through 10 are alternately connected to first connecting openings 11 through 16 or second connecting openings 17 through 22 .
  • first connecting openings 11 through 16 and second connecting openings 17 through 22 are filled with a suitable, electrically conductive paste, for example, a metallization paste.
  • a suitable, electrically conductive paste for example, a metallization paste.
  • the filling of connecting openings 11 through 16 , and 17 through 22 , respectively, can be carried out by drawing in with the assistance of negative pressure, or by pressing in.
  • the electrically conductive paste is preferably introduced when the foils are already in the stacked condition. However, it is also conceivable to fill each individual foil with the electrically conductive paste prior to the stacking.
  • Connecting openings 11 through 16 , and 17 through 22 can also be designated as “via holes” so that the designation “via-fill process” is attached to the contacting method.
  • the stacked arrangement resulting from stacking foils 1 through 3 is dried under a suitable pressure at increased temperature, and, subsequently, fired at a suitable temperature.
  • the firing temperature is preferably higher than 1,000° C., and is preferably in the range between 1,000° C. and 1,500° C.
  • the fired stacked arrangement is split up into the individual actuators.
  • a foil size of, for example, 15 ⁇ 20 cm up to 200 individual actuators can be obtained from the stacked arrangement.
  • the separation into the individual actuators is carried out, for example, by sawing or water-jet cutting. In this context, perforation holes 30 make the separation process easier, and mark the separation point.
  • the separation of the stacked arrangement into the individual actuators is carried out by applying a voltage of different polarity to adjacent actuators. Due to the electrical field which forms in the individual layers of the actuator, and which is oriented in different direction among adjacent actuators, the adjacent actuators either contract or expand, depending on the field direction. Therefore, mechanical stress arises between the adjacent actuators, which, given suitable dimensioning of the electrical field strength and the distance between the individual perforation holes 30 , results in the separation of the actuators along the separation line predefined by perforation holes 30 . This procedure is particularly cost-effective since no special separating device is needed.
  • FIG. 2 For a better illustration of the present invention, a cut-off representation of an individual actuator is shown in FIG. 2. Discernible are layers 50 1 through 50 15 made of piezoelectric ceramic material which are arranged one over another in a stack. Also discernible are electrodes 5 1 through 5 15 of individual layers 50 1 through 50 15 . As elucidated in FIG. 2 again, cut-outs 23 1 through 23 15 of electrodes 5 1 through 5 15 are alternately arranged in such a way that they alternately surround first connecting opening 11 and second connecting opening 17 . By electrically conductive paste 53 which is filled in connecting openings 11 and 17 , electrodes 5 1 , 5 3 , . . .
  • 5 15 of every other layer are each connected to a first connecting wire 51 which is connected to the actuator, for example, by soldering, bonding, welding or the like.
  • Intermediate electrodes 5 2 , 5 4 , . . . 5 14 are connected to a second connecting wire 52 via electrically conductive paste 53 which is introduced in second connecting openings 17 . Therefore, the electrical field which, in response to the application of a voltage, forms in the actuator between connecting wires 51 and 52 is oriented in the same direction in all piezoelectric layers 50 1 through 50 15 so that the contraction or expansion of each individual piezoelectric layer 15 1 through 15 15 structurally adds up to a total length of travel of the piezoelectric actuator. Also discernible from FIG.
  • Electrodes 5 1 through 5 15 do not extend up to the edge area of the actuator, but are spaced from the edge by a distance a, a hermetical insulation of electrodes 5 2 through 5 15 ensues.
  • An additional insulation measure is to be provided just for topmost electrode 5 1 .
  • the actuator is covered at its upper side by a suitable, electrically insulating encapsulating material. This encapsulating material can be applied in a planar manner even before the stacked arrangement is separated into the individual actuators. Furthermore, it is conceivable to apply an electrically insulating covering film on the upper side as a sealing layer.
  • Perforation holes 30 not only make it easier to separate the stacked arrangement into individual actuators, but, as degassing ducts, particularly assist the escape of gas during the drying and firing of the stacked arrangement.
  • piezoelectric actuators which make do with an operating voltage of less than 150 V, and generate a force of more than 1,000 N combined with a length of actuating travel of 50 ⁇ m.
  • the stacked arrangement can be split up into individual actuators having nearly any cross-sectional area.
  • round, triangular or star-shaped actuators are manufacturable.

Abstract

The present invention relates to a method for the parallel manufacturing of a plurality of piezoelectric actuators as well as a corresponding piezoelectric actuator.
According to the present invention, a plurality of thin foils (1-3) made of an unfired piezoelectric ceramic material are stacked one over another. On surface (4) of foils (1-3), an electrode (5-10) is provided for each actuator. For contacting electrodes (5-10), first (11-16) and second (17-22) connecting openings are provided. Electrodes (5-10) have cut-outs (23-28) which surround either first (11-16) or second (17-22) connecting openings. An electrically conductive paste (53) is introduced into connecting openings (11-22). The stacked arrangement is fired and split up into the individual actuators. As internal electrodes, the electrodes are insulated from the surroundings.

Description

    BACKGROUND INFORMATION
  • The present invention relates to a piezoelectric actuator which can be particularly used for actuating a fuel injector, as well as a method for manufacturing it. [0001]
  • Piezoelectric actuators, particularly for actuating fuel injectors, are known in varied types of construction, for example, from German patent 195 00 706 A1 or [0002] German patent 43 06 073 C1. The piezoelectric actuators are composed of a plurality of piezoelectric layers stacked one over another which are each coated with an electrode on one surface. Usual piezoelectric actuators are composed of several hundred of piezoelectric layers stacked one over another in such a manner. In this manner, a relatively great length of actuating travel is achieved. As described in greater detail, for example, in German patent 37 13 697 A1, the electrodes of the individual piezoelectric layers must be alternately connected to a voltage source to generate an electrical field in individual layers which is oriented in the same direction. In the process, every other electrode is connected to a first pole of a voltage source, while the intermediate electrodes are connected to a second pole of a voltage source. Till now, as described in greater detail, for example, in British patent 2 193 386, the electrodes, which extend up to the edge of the stacked piezoelectrical layers, are usually interconnected in the edge area on the outside. In a fully automated, large-scale manufacture, however, this contacting method requires considerable outlay, and is susceptible to faults, and, in addition, has the disadvantage that the electrodes, because they extend into the edge area, are not insulated against the surroundings so that the surface area of the piezoelectric actuators must be provided with an additional insulation.
  • SUMMARY OF THE INVENTION
  • The method according to the present invention having the features of [0003] claim 1 has the advantage that it can be used in a fully automated manufacture, and results in very low manufacturing expenses. The electrodes of the actuator are not contacted on the outside, but on the inside, using an electrically conductive paste which is introduced into connecting openings. Therefore, the contacting according to the present invention is little susceptible to faults and insusceptible to external mechanical damage. The piezoelectrical actuators are manufactured in parallel with each other in a highly integrated manufacturing process. A block including a plurality of piezoelectric actuators is split up into the individual actuators only at the end of the manufacture. In this manner, the manufacturing rate can be considerably increased. The same advantages ensue also for the actuator according to the present invention having the features of claim 10.
  • Advantageous embodiments and improvements of the manufacturing process specified in [0004] claim 1 and the piezoelectric actuator specified in claim 10, respectively, are made possible by the measures characterized in the subclaims.
  • If an edge area of the actuators is left free of the electrodes, the advantage ensues that the electrodes are reliably insulated from the surroundings of the actuator. Therefore, no further measures for insulating the electrodes are required. Since, in addition, the electrodes are contacted via connecting openings inside the actuator, all live components are completely insulated toward the outside. The susceptibility to failure of the actuator is markedly reduced. [0005]
  • In the intermediate areas between the individual actuators, perforation holes can be formed in the foils which form the piezoelectric layers. On one hand, these perforation holes are used as degassing ducts during the subsequent firing of the stacked foils. On the other hand, the perforation holes make it easier to separate the stacked arrangement into the individual actuators. In this context, the separation can be carried out by applying an electrical field to the electrodes of adjacent actuators in an opposite direction to the polarity. While one adjacent actuator contracts, the other adjacent actuator expands. The resulting mechanical stress causes the actuators to break apart along the separating line predefined by the perforation holes. However, the perforation holes make it also easier to separate the actuators by sawing along the perforation line predefined by the perforation holes. Another suited separating method is water-jet cutting. [0006]
  • The metallic electrodes can be advantageously applied using a screen-printing technique, vapor depositing, or sputtering, it being advantageous not to apply the electrodes all-over, but in a, for example, netlike pattern for reasons of material saving and better adhesion promotion to the ceramic layer lying above.[0007]
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • An exemplary embodiment of the present invention is shown in the drawing in a simplified manner and explained in greater detail in the following description. [0008]
  • FIG. 1 shows a schematic representation of three foils made of piezoelectric ceramic material to be stacked one over another which are coated with electrodes, and provided with connecting openings and perforation holes, and [0009]
  • FIG. 2 shows a cut-off, perspective representation of a finished actuator.[0010]
  • DETAILED DESCRIPTION
  • FIG. 1 shows a perspective, schematic representation to illustrate the manufacturing process according to the present invention. Shown are three [0011] foils 1, 2, and 3 made of a still unfired piezoelectric ceramic material, i.e., of “green ceramic”. A suitable material is, for example, lead-barium titanate (PbBaTiO2). The ceramic material can be processed into thin foils, for example, by rolling, casting, or cutting, prior to the firing. The magnitude of the foil thickness lies at, for example, 0.1 mm, without the feasibility of the present invention being limited to this foil thickness. In a next processing step, the foils are coated with an electrically conductive material, preferably with a thin metal layer, on their upper side 4 1, 4 2, 4 3. For that, all known chemical and physical surface-coating methods, for example, vapor depositing, sputtering, or a screen-printing technique, are suitable. Electrodes 5 1 through 10 1, 5 2 through 10 2, and 5 3 through 10 3, can be applied all-over. In a screen-printing technique, however, a netlike pattern of the electrodes is expedient. In the shown embodiment, in each case, one electrode 5 1, through 10 1, 5 2, through 10 2, and 5 3, through 10 3, of each foil 1, 2, and 3 is assigned to an actuator, respectively. Therefore, a plurality of actuators arranged in a laterally offset manner relative to each other are processed concurrently by the method according to the present invention, allowing the manufacturing expenses to be markedly reduced. In principle, it is also possible to assign not just one, but a plurality of electrodes to each actuator if this is desirable for individual application cases.
  • In an operation prior or subsequent to the coating, first connecting [0012] openings 11 1 through 16 1 in first foil 1, 11 2 through 16 2 in second foil 2, and 11 3 through 16 3 in third foil 3, as well as second connecting openings 17 1 through 22 1 in first foil 1, 17 2 through 22 2 in second foil 2, and 17 3 through 23 3 in third foil 3, are formed, for example, by punching or drilling in each foil layer 1, 2, and 3, respectively. Connecting openings 11 through 22 are used for contacting individual electrodes 5 through 10, which will still be discussed in greater detail. To achieve an alternating connection between the electrodes, second connecting openings 17 1 through 22 1 in first foil 1 are each surrounded by a cut-out 23 1 through 28 1, respectively, i.e., the electrode coating does not reach up to edge of second connecting openings 17 1 through 22 1, but the edge of electrodes 5 1 through 10 1 is spaced from the edge of second connecting openings 17 1 through 22 1. In similar manner, electrodes 5 3 through 10 3 of third foil 3 are provided with cut-outs 23 3 through 28 3 which surround second connecting openings 17 3 through 22 3. In the intermediate second foil layer, however, cut-outs 23 2 through 28 2 of electrodes 5 2 through 10 2 surround first connecting openings 11 2 through 16 2. The same is true for a further foil which is arranged above and adjoins first foil 1, and which is not shown any more, and a further foil which is arranged below and adjoins third foil 3, and which is not shown any more either. This is why cut-outs 23 through 28, from foil layer to foil layer, are alternately assigned to first connecting openings 11 through 16 or second connecting openings 17 through 22, respectively.
  • Furthermore, in the shown embodiment, each [0013] foil layer 1, 2, and 3 is provided with perforation holes 30 1, 30 2, and 30 3, respectively, which can be formed, for example, by punching or drilling concurrently with connecting openings 11 through 16 and second connecting openings 17 through 22. In the shown embodiment, perforation holes 30 are formed in a netlike manner, in each case marking the boundary line between the individual actuators manufactured concurrently using the method according to the present invention.
  • In each foil, netlike intermediate areas [0014] 31 1, and 31 2, and 31 3 are provided between electrodes 5 1 through 10 1 and 5 2 through 10 2, and 5 3 through 10 3, respectively, so that electrodes 5 through 10 do not reach up to the outer edge of the actuators, but are spaced from the edge marked by perforation holes 30. Perforation holes 30 are preferably arranged in intermediate areas 31 in lines running along the edges of the individual actuators. In the shown embodiment, actuators are manufactured which have a rectangular cross-section. To manufacture actuators having different cross-sections, the perforation holes are to be arranged in a varied manner correspondingly.
  • In a subsequent processing step, a plurality of foils, of which FIG. 1 only shows [0015] foils 1 through 3 in cutaway portions, are stacked one over another. To attain a sufficient length of actuator travel, preferably several hundred of the foils shown in FIG. 1 and treated as specified are stacked one over another. In the process, the individual foil 30 layers are aligned relative to each other in such a way that both perforation holes 30, and first connecting openings 11 through 16, and second connecting openings 17 through 22 are positioned exactly one over another. This can be carried out, for example, in a fully automatic fashion using a reference-mark system capable of being mechanically or optically scanned. In FIG. 1, the stacking, that is, disposing in layers of the individual foils 1 through 3 is illustrated by arrows 40 through 43. As explained earlier, the layer sequence of foils 1 through 3 is selected in such a manner that connecting openings 11 through 16, and 17 through 22, which are arranged one over another, respectively, are alternately surrounded by a cut-out 23 through 28 of electrodes 5 through 10 only in every other foil layer 1 through 3 so that electrodes 5 through 10 are alternately connected to first connecting openings 11 through 16 or second connecting openings 17 through 22.
  • In a further processing step, first connecting [0016] openings 11 through 16 and second connecting openings 17 through 22 are filled with a suitable, electrically conductive paste, for example, a metallization paste. The filling of connecting openings 11 through 16, and 17 through 22, respectively, can be carried out by drawing in with the assistance of negative pressure, or by pressing in. The electrically conductive paste is preferably introduced when the foils are already in the stacked condition. However, it is also conceivable to fill each individual foil with the electrically conductive paste prior to the stacking. Connecting openings 11 through 16, and 17 through 22 can also be designated as “via holes” so that the designation “via-fill process” is attached to the contacting method.
  • In a subsequent processing step, the stacked arrangement resulting from stacking [0017] foils 1 through 3 is dried under a suitable pressure at increased temperature, and, subsequently, fired at a suitable temperature. The firing temperature is preferably higher than 1,000° C., and is preferably in the range between 1,000° C. and 1,500° C.
  • Subsequently, the fired stacked arrangement is split up into the individual actuators. In the case of a foil size of, for example, 15×20 cm, up to 200 individual actuators can be obtained from the stacked arrangement. The separation into the individual actuators is carried out, for example, by sawing or water-jet cutting. In this context, perforation holes [0018] 30 make the separation process easier, and mark the separation point.
  • According to a preferred procedure, the separation of the stacked arrangement into the individual actuators is carried out by applying a voltage of different polarity to adjacent actuators. Due to the electrical field which forms in the individual layers of the actuator, and which is oriented in different direction among adjacent actuators, the adjacent actuators either contract or expand, depending on the field direction. Therefore, mechanical stress arises between the adjacent actuators, which, given suitable dimensioning of the electrical field strength and the distance between the individual perforation holes [0019] 30, results in the separation of the actuators along the separation line predefined by perforation holes 30. This procedure is particularly cost-effective since no special separating device is needed.
  • For a better illustration of the present invention, a cut-off representation of an individual actuator is shown in FIG. 2. Discernible are layers [0020] 50 1 through 50 15 made of piezoelectric ceramic material which are arranged one over another in a stack. Also discernible are electrodes 5 1 through 5 15 of individual layers 50 1 through 50 15. As elucidated in FIG. 2 again, cut-outs 23 1 through 23 15 of electrodes 5 1 through 5 15 are alternately arranged in such a way that they alternately surround first connecting opening 11 and second connecting opening 17. By electrically conductive paste 53 which is filled in connecting openings 11 and 17, electrodes 5 1, 5 3, . . . 5 15 of every other layer are each connected to a first connecting wire 51 which is connected to the actuator, for example, by soldering, bonding, welding or the like. Intermediate electrodes 5 2, 5 4, . . . 5 14 are connected to a second connecting wire 52 via electrically conductive paste 53 which is introduced in second connecting openings 17. Therefore, the electrical field which, in response to the application of a voltage, forms in the actuator between connecting wires 51 and 52 is oriented in the same direction in all piezoelectric layers 50 1 through 50 15 so that the contraction or expansion of each individual piezoelectric layer 15 1 through 15 15 structurally adds up to a total length of travel of the piezoelectric actuator. Also discernible from FIG. 2 are broken-off perforation holes 30 in the edge area of the actuator. Because electrodes 5 1 through 5 15 do not extend up to the edge area of the actuator, but are spaced from the edge by a distance a, a hermetical insulation of electrodes 5 2 through 5 15 ensues. An additional insulation measure is to be provided just for topmost electrode 5 1. Preferably, the actuator is covered at its upper side by a suitable, electrically insulating encapsulating material. This encapsulating material can be applied in a planar manner even before the stacked arrangement is separated into the individual actuators. Furthermore, it is conceivable to apply an electrically insulating covering film on the upper side as a sealing layer.
  • Perforation holes [0021] 30 not only make it easier to separate the stacked arrangement into individual actuators, but, as degassing ducts, particularly assist the escape of gas during the drying and firing of the stacked arrangement. Using the method according to the present invention, it is possible to manufacture piezoelectric actuators which make do with an operating voltage of less than 150 V, and generate a force of more than 1,000 N combined with a length of actuating travel of 50 μm. By water-jet cutting, the stacked arrangement can be split up into individual actuators having nearly any cross-sectional area. Thus, for example, round, triangular or star-shaped actuators are manufacturable.

Claims (13)

1. A method for the parallel manufacturing of a plurality of piezoelectric actuators, in the following process steps:
manufacturing thin foils (1-3) made of an unfired, piezoelectric ceramic material,
forming first and second connecting openings (11-16, 17-22) penetrating the foils (1-3), first (11-16) and a second (17-22) connecting opening being assigned to each actuator,
coating one surface (4) of each of the foils (1-3) with a plurality of electrodes (5-10), at least one electrode (5-10) being assigned to each actuator in each foil (1-3), and
the connecting openings (11-16, 17-22) penetrating the foils (1-3) in the area of the electrodes (5-10), and the electrodes (5-10) in each case having a cut-out (23-28) which surrounds either the first (11-16) or the second (17-22) connecting opening,
stacking a plurality of foils (1-3) one over another so that, in a resulting stacked arrangement, the first and second connecting openings (11-16, 17-22) are arranged one over another,
the layer sequence of the foils (1-3) being selected in such a manner that the connecting openings (11-16,17-22), which are arranged one over another, are alternately surrounded by a cut-out (23-28) of the electrodes (5-10) only in every other foil layer (1-3) so that the electrodes (5-10) are alternately connected to either the first connecting openings (11-16) or the second connecting openings (17-22),
introducing an electrically conductive paste (53) into the connecting openings (11-16, 17-22),
firing the stacked arrangement, and
separating the stacked arrangement into individual actuators:
2. The method as recited in
claim 1
,
characterized in that, on the surfaces (4) of the foils (1-3), intermediate areas (31) which are left free of the electrodes (5-10) are provided in the edge area between the individual actuators.
3. The method as recited in
claim 1
or
2
,
characterized in that perforation holes (30) are formed in the intermediate areas (31).
4. The method as recited in
claim 3
,
characterized in that the perforation holes (30) are arranged in lines extending in the intermediate areas (31) along the edges of the individual actuators.
5. The method as recited in
claim 3
or
4
,
characterized in that, to separate the stacked arrangement into the individual actuators, an oppositely poled electrical field is applied to the electrodes (5-10) of adjacent actuators.
6. The method as recited in one of the claims 1 through 5,
characterized in that the separation of the stacked arrangement into the individual actuators is carried out by sawing or water-jet cutting.
7. The method as recited in one of the claims 1 through 6,
characterized in that the stacked arrangement is dried under pressure at an increased temperature prior to the firing.
8. The method as recited in one of the claims 1 through 7,
characterized in that the electrodes (5-10) are applied using a screen-printing technique, vapor depositing, sputtering, or the like.
9. The method as recited in one of the claims 1 through 8,
characterized in that the stacked arrangement is sintered during the firing under uniaxial pressure at a temperature of at least 1,000° C.
10. A piezoelectric actuator comprising a plurality of layers (50) made of a piezoelectric ceramic material which are arranged one over another, and which are each coated with at least one electrode (5) on a surface (4), the electrodes (5) being alternately connected to each other,
characterized in that, in each layer (50), a first and second connecting opening (11, 17) is provided which penetrates the layer (50) in the area of the electrode (5), that each electrode (5) has a cut-out (23) which surrounds either the first (11) or the second (17) connecting opening,
that the layers (50) are stacked in such a manner that the first and second connecting openings (11, 17) of all layers (50) are arranged one over another, and the connecting openings (11, 17), which are arranged one over another, are alternately surrounded by a cut-out (23) of the electrodes (5) only in every other layer so that the electrodes (5) are alternately connected to the first connecting openings (11) and the second connecting openings (17), and
that the connecting openings (11, 17) are filled with an electrically conductive paste (53).
11. The piezoelectric actuator as recited in
claim 10
,
characterized in that the electrodes (5) are composed of a netlike metal layer.
12. The piezoelectric actuator as recited in
claim 10
or
11
,
characterized in that the layers (50) have a peripheral edge area (31) which is not coated with the electrode (5).
13. The piezoelectric actuator as recited in one of the claims 10 through 12, characterized in that the outer surface of the topmost and/or bottommost layer and/or the edge area of the actuator is embedded in an electrically insulating encapsulating material.
US09/837,127 1997-12-24 2001-04-18 Method for manufacturing piezoelectric actuators and a piezoelectric actuator Abandoned US20010022489A1 (en)

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US10/137,924 US6757947B2 (en) 1997-12-24 2002-05-02 Method for manufacturing piezoelectric actuators and a piezoelectric actuator

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DE19757877A DE19757877A1 (en) 1997-12-24 1997-12-24 Method of manufacturing piezoelectric actuators and piezoelectric actuator
US09/380,019 US6263550B1 (en) 1997-12-24 1998-10-30 Method for the production of piezoelectric actuators
US09/837,127 US20010022489A1 (en) 1997-12-24 2001-04-18 Method for manufacturing piezoelectric actuators and a piezoelectric actuator

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EP1008193A1 (en) 2000-06-14
CZ295943B6 (en) 2005-12-14
DE19757877A1 (en) 1999-07-01
WO1999034455A1 (en) 1999-07-08
JP2001513269A (en) 2001-08-28
US6757947B2 (en) 2004-07-06
DE59812091D1 (en) 2004-11-11
US6263550B1 (en) 2001-07-24
EP1008193B1 (en) 2004-10-06
KR20000075584A (en) 2000-12-15
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US20020130595A1 (en) 2002-09-19
CZ255399A3 (en) 1999-11-17

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