CA2021395C - Ultrasonic generator with a piezoelectric converter - Google Patents

Ultrasonic generator with a piezoelectric converter Download PDF

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Publication number
CA2021395C
CA2021395C CA002021395A CA2021395A CA2021395C CA 2021395 C CA2021395 C CA 2021395C CA 002021395 A CA002021395 A CA 002021395A CA 2021395 A CA2021395 A CA 2021395A CA 2021395 C CA2021395 C CA 2021395C
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Canada
Prior art keywords
microcomputer
impedance
ultrasonic generator
converter
generator according
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Fee Related
Application number
CA002021395A
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French (fr)
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CA2021395A1 (en
Inventor
Martin Abel
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Ferton Holding SA
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Ferton Holding SA
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Publication date
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Publication of CA2021395A1 publication Critical patent/CA2021395A1/en
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Expired - Fee Related legal-status Critical Current

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Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S7/00Details of systems according to groups G01S13/00, G01S15/00, G01S17/00
    • G01S7/52Details of systems according to groups G01S13/00, G01S15/00, G01S17/00 of systems according to group G01S15/00
    • G01S7/52017Details of systems according to groups G01S13/00, G01S15/00, G01S17/00 of systems according to group G01S15/00 particularly adapted to short-range imaging
    • G01S7/5205Means for monitoring or calibrating
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61CDENTISTRY; APPARATUS OR METHODS FOR ORAL OR DENTAL HYGIENE
    • A61C17/00Devices for cleaning, polishing, rinsing or drying teeth, teeth cavities or prostheses; Saliva removers; Dental appliances for receiving spittle
    • A61C17/16Power-driven cleaning or polishing devices
    • A61C17/20Power-driven cleaning or polishing devices using ultrasonics
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B06GENERATING OR TRANSMITTING MECHANICAL VIBRATIONS IN GENERAL
    • B06BMETHODS OR APPARATUS FOR GENERATING OR TRANSMITTING MECHANICAL VIBRATIONS OF INFRASONIC, SONIC, OR ULTRASONIC FREQUENCY, e.g. FOR PERFORMING MECHANICAL WORK IN GENERAL
    • B06B1/00Methods or apparatus for generating mechanical vibrations of infrasonic, sonic, or ultrasonic frequency
    • B06B1/02Methods or apparatus for generating mechanical vibrations of infrasonic, sonic, or ultrasonic frequency making use of electrical energy
    • B06B1/0207Driving circuits
    • B06B1/0223Driving circuits for generating signals continuous in time
    • B06B1/0238Driving circuits for generating signals continuous in time of a single frequency, e.g. a sine-wave
    • B06B1/0246Driving circuits for generating signals continuous in time of a single frequency, e.g. a sine-wave with a feedback signal
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B18/04Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating
    • A61B18/12Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating by passing a current through the tissue to be heated, e.g. high-frequency current
    • A61B18/1206Generators therefor
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B06GENERATING OR TRANSMITTING MECHANICAL VIBRATIONS IN GENERAL
    • B06BMETHODS OR APPARATUS FOR GENERATING OR TRANSMITTING MECHANICAL VIBRATIONS OF INFRASONIC, SONIC, OR ULTRASONIC FREQUENCY, e.g. FOR PERFORMING MECHANICAL WORK IN GENERAL
    • B06B2201/00Indexing scheme associated with B06B1/0207 for details covered by B06B1/0207 but not provided for in any of its subgroups
    • B06B2201/50Application to a particular transducer type
    • B06B2201/55Piezoelectric transducer
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B06GENERATING OR TRANSMITTING MECHANICAL VIBRATIONS IN GENERAL
    • B06BMETHODS OR APPARATUS FOR GENERATING OR TRANSMITTING MECHANICAL VIBRATIONS OF INFRASONIC, SONIC, OR ULTRASONIC FREQUENCY, e.g. FOR PERFORMING MECHANICAL WORK IN GENERAL
    • B06B2201/00Indexing scheme associated with B06B1/0207 for details covered by B06B1/0207 but not provided for in any of its subgroups
    • B06B2201/70Specific application
    • B06B2201/76Medical, dental

Abstract

In an ultrasonic generator the driver circuit of a piezoelectric converter is provided with a switching regulator under control of a microcomputer, the pulse duty factor and frequency of the switching regulator being controlled in response to the converter's impedance which is detected by means of a measuring circuit.

Description

Ultrasonic Generator with a Piezoelectric Converter FTELD OF THE I~3YENTTOP1 The present invention relates to an ultrasonic generator com-prising a piezoelectric converter.
BACRGR~UND OF THE TPBVE~ITI01~
In an ultrasonic generator known from the US patent US-A-3 596 206, an oscillator with a transistor of a self~oscilla-ting design is known which is disposed in the driver circuit of a piezoelectric converter in combination with an amplifier and an impedance converter, both in series circuit array. For such an application, the transistor is connected in series to the primary winding of the impedance converter, i.e. a trans-former, so as to constitute a modified Meissner circuit, and is set to its resonance working point by means of a voltage divider. The voltage divider includes a connection to a reac-tion coil which is inductively coupled to the primary winding of the transformer. In this way the transistor is given a frequency which equals the series resonance frequency of the piezoelectric converter in series with the secondary winding of the transformer. The driver circuit of the converter, or its series transformer, respectively, are moreover supplied from a power-pack through a rectifier connected to the prima-ry side of the transformer and through a smoothing capacitor parallel thereto. The reaction coil of the transformer and the transistor are connected to each other thraugh a series circuit including a capacitor and a resistor. That series circuit serves to match the reaction, which prevails between the piezoelectric converter and the transistor and which may z be deactivated arbitrarily by means of an interrupter so as to achieve protection of the converter.
The French Patent FR-A-81 09 330 also discloses an ultrasonic generatcr designed to include a piezoelectric converter as well, wherein the circuit array includes not only a transis-tor providing a comparably self-oscillating oscillator but also a constant-current source provided with two further transistors and several resistors. In that circuit the poten-tiometer serves to trim the limiting current which is sup-1 0 plied to the converter when power acceptance is missing.
In the known ultrasonic generators with a piezoelectric con-verter, the self-oscillating design of the oscillator creates a direct dependence of the conditions of converter operation an the tolerances of the circuit elements directly connected 15 thereto, yariatians in the mutually matched tolerances of the components, which are mostly unavoidable in mass production based on devices obtained from different suppliersv, create critical interfering effects on the oscillator's characteris-tics of oscillation and thus on the power output of the pie-20 zoelectric converter, too. The elimination of such interfe-ring effects is possible only with a higher expenditure in terms of devices and costs.
The German Fatent DF-A-36 ~1 058 discloses an ultrasonic ge-nerator with a magnetostrictive converter whose energizing 25 coil is disposed in, the collector circuit of a transistor.
The emitter circuit of the transistor is connected through a resistor disposed to detect the current flow through the energizing coil and through a voltage evaluation circuit to control means causing the supply of the energizing pulses to 30 the base of the transistor. The voltage evaluation circuit supplies a digital signal in response to the voltage drop at the resistor and is constituted either by a series circuit including a voltage frequency divider and a counter, or by a series circuit including a DC voltage suppression circuit, a low-pass circuit, and an A/D converter. The output of the control means is connected to a counter which emits pulses at a pulse rate determined by the signal supplied by the voltage evaluation circuit. The transmission of these pulses to the base of the transistor is determined by a timed switching regulator which is controlled by the control means. The con-trol means is also connected to a potentiometer so as to pro-1.0 vide for variation of the power output preset for the magne-tostrictive converter.
In these known ultrasonic generators with a rnagnetostrictive converter the control means is only provided for setting of the pulse rate of the energizing pulses to the resonance working point of the converter. In these devices, during a primary trimming phase of the circuit array, pulses of a re-spectively predetermined number of pulse rates are supplied to the energizing coil in respectively successive smaller pulse rats ranges. Moreover, an uncomplex error indicator is 2 0 provided as a monitor of each of the pulse rate ranges of the energizing pulse which axe thus invariably set at individual trimming levels by the start of operation, at which the ma-gnetostrictive converter operates at a resonance frequency, that monitor being under control of the control means such that any variation of that resonance frequency from the inva-riably set pulse rate range furnishes the mere indication of an error that has occurred, without correcting the actual source of the error at the same time.
The present invention refers to the p r o b 1 a m of de-30 signing an ultrasonic generator with a piezoelectric convert-er in a 'way that the power output of the converter is less critically dependent on tolerances of the connected devices of the circuit array and that also an optimum possibility of correction of that power output is achieved when the set re-sonance working point of the converter should vary during operation of the ultrasonic generator.
SI~l.ARY OF THE INVEiUTION
In the inventive ultrasonic generator the oscillator is pro-vided with a timed switching regulator whose pulse duty fac-tor and frequency are controlled by a microcomputer. The mi-crocomputer performs a permanent actual/reference comparison between the impedance detected by means of an impedance-mea-curing circuit for the piezoelectric converter, which is de-fined as actual value, and the preset power for its resonance working point, which may be varied by means of a potentiome-ter and serves as reference value, and in the event of any detected variation from the reference value it controls an adaptation of the pulse duty factor by means of a control voltage supplied to a control input of the switching regula-tor, and/or an adaptation of the frequency by means of a con-trol voltage supplied to a control input of the switching re-gulator. The respective control inputs of the switching regu-2 0 lator, the impedance-measuring circuit and the potentiometer are connected to an input/output attachment circuit of the microcomputer.
With the oscillator being provided with a timed switching regulator and being combined with a microcarnputer for control of its pulse duty factor and its frequency, it is possible now to allow fox a very simple mutual matching and trimming of alI the variable tolerances of the circuit which take an influence on the poorer output of the converter. The permanent actua7./reference comparison made by the microcomputer more-over provides for a continuous consideration of any variation of the converter power output during operation of the ultra-sonic generator, with the coherent variation of the impedance of the circuit system being linked up with a simple adaptive loop control of the switching regulator. The application of the microcomputer entails the additional substantial advan-tage that now the manufacturer of the equipment is able to schedule convertible individual programs with different pre-set power levels fox the so implemented actual/reference com-parison, such that a correspondingly universally applicable ultrasonic generator may be made available which allows the users to operate without any prablems due to an individual 1 0 program available and conceivable for any specific sequence of operations.
BRIEF DESCRIPTION OF THE DRAWING
The drawing illustrates a schematic block diagram of one em-bodiment of the inventive ultrasonic generator.
DETAILED DESCRIPTION OF THE INyENTION
The ultrasonic generator is provided with a piezoelectric converter 1 whose driver circuit is supplied with an opera-ting voltage U~ from a power-pack 2 operating on DC voltage.
The power-pack 2 is provided with a rectifier and a smoothing capacitor. With application of the ultrasonic generator in a dental equipment the piezoelectric converter is located in a hand-held part connected to the equipment through a connect-ing cable such that the ultrasound converted by means of the converter is applied for dental therapy at an instrument at-tachment specifically designed for tartar scaling from teeth or also for the treatment of the root of a tooth. In dental treatrnent applications thus different preset power levels are available for the so-called resonance working point of the converter, which may be selected for an adapted potential va--3 0 riation of its operating voltage UL by means of a potentiome-ter 3.

The tapping point of the potentiometer 3 is connected to the input/output attachment circuit 4 of a microcomputer 5 sup-plied from the power-pack 2. The microcomputer establishes a control means in feedback circuit with the piezoelectric con-s verter 1, which controls a switching regulator 6 supplied in a tandem connexion from the power-pack 2, e.g. a regulator 6 of the TL 494 type available from Texas Instruments. The switching regulator 6 is connected to an impedance converter 8 through an amplifier 7, which axe both supplied from the 1 0 power-pack 2 with a supply voltage substantially higher than the voltage supplied to the microcomputer 5 and the switching regulator 6. The impedance converter 8 is made available by a transformer supplying the operating voltage UL for the piezo-electric converter 1.
15 The piezoelectric converter 1 is in feedback circuit with the microcomputer 5 through an impedance-measuring circuit 9 con-nected to the impedance converter 8. The impedance-measuring circuit 9 includes an integrator 10 in the form of a lour--pass filter and is connected to an auxiliary coil 11 of the impe-2 0 dance converter 8. The magnetic coupling of the impedance converter 8 may be detected, in a correspondingly optimum way, for a correspondingly precise detection of the actual impedance value of the overall driver circuit of the piezo-electric converter 1. The impedance-measuring circuit 9 25 serves to supply to the microcomputer 5 a measured voltage Uz value in correspondence to the so established actual impe-dance value so that a permanent actual/Reference comparison may be carried out on the basis of 'this measured value. More-over, the operating voltage for the input/output attachment 30 circuit 4 of the microcomputer 5 is tapped at the auxiliary winding 11, with a voltage regulator 13 being disposed in the respective supply line ~.2.

The switching regulator 6, which is under control of the mi-crocomputer 5, is provided on the secondary side of the mains transformer. The DC voltage supplied by means of the recti-fier of the power-pack 2 is converted into an AC voltage by the switching regulator S, whose pulse duty factor or duty cycle determines the operating voltage Uc supplied to the am-plifier 7. The pulse duty factor is determined by a control amplifier 14 which is provided at one control input 15 of the switching regulator 6 and connected to the input/output at-tachment circuit 4 of the microcomputer 5. The pulse duty factor may therefore be controlled by the microcomputer 5, with the decisive control voltage OF being obtained from the voltage Uroc of the preset power which is converted as the reference for the working point of the piezoelectric convert-er 1. The frequency of the output voltage of the voltage re-gulator 6 is also obtained using a trimming resistor 16 and a capacitor 17 which are both connected to a control input 19 of the switching regulator 6 through a frequency-modulating series resistor 18. The control input 19, too, is connected 2 0 to the input/output attachment circuit 4 of the microcomputer 5 such that the frequency of the output voltage may also be controlled by a control voltage OF ranging between 0 and 2.5 V such that it is maintained at a mean time value depending on the resonance working point of the converter.
2.5 The amplifier 7 is preferably provided with two .transistors operating in the push°pull mode such that a limitation of its operating voltage Uc to 300 V approximately will be obtained for the piezoelectric converter. The use of one transistor 20 only for the amplifier 7 would furnish an operating. voltage 3 0 in the range of 600 V so that this push-pull stage serves to improve the driving characteristics and mainly to provide for depolarization protection for the piezoelectric converter.
Field-effect transistors are the preferred transistors which are supplied with the timed output voltages Uai and Uaa in alternation from the switching regulator 6. Following ampli-fication in the amplifier 7, the timed output voltages of the switching regulator 6 are supplied to two primary coils 21 of the impedance converter 8 whose secondary coil 22 transforms them into the operating voltages UL. The amplification of the output voltage from the switching regulator 6 may be even more refined by the provision that the amplifier current is tapped at a grounded resistor 23 and is supplied through an integrator 24 of a low-pass configuration via the control in-put 15 of the switching regulator S to the control amplifier 14. Xn this manner a feedback loop is achieved fox control of the pulse duty factor of the switching regulator 6, which is used to maintain the amplifier current at a constant level.
This feedback provision is even more refined by a connection of the switching regulator 6 to a frequency counter 25 of the microcomputer 5 so that in this way all potentials of the circuit system are utilized for an optimum determination and also a permanent monitoring of the resonance working point of the piezoelectric converter 1.
2 0 The mode of operation of the aforedescribed ultrasonic gene-rator applied in an equipment for ultrasonic dental treatment is thus substantially based on the following facts and condi-tions. Following the start of operation of the equipment ini-tially the microcomputer 5 updates a frequency-impedance ana-lysis for the piezoelectric converter 1 integrated into the hand-held operating element, which analysis depends on the power level preset by means of the potentiometer 3. To this end, using the microcomputer 5, the impedance detected by the impedance-measuring circuit 9 at the auxiliary winding l1 of the impedance converter 8 is determined as an absolute value of the corresponding voltage Uz which thus influences the re-sonance working point of the piezoelectric converter 1 or its series resonance frequency, respectively. This determination entails the detection of a reference value for the control voltage Ug which thuse operating voltage UL of the piezoelec-tric converter 1. With a given resonance working point of the piezoelectric converter 1 its operating voltage UL, on the other hand, ranges at a frequency at which a sudden drop dawn to a low value occurs in the impedance characteristic typical of a piezoelectric converter, which is left immediately when the frequency is exceeded which is thus predetermined for the resonance working point of the converter. With that primary determination of the reference value of the control voltage Uf and thus of a predetermined resonance working point of the piezoelectric converter 1 also the amplifier current is con-sidered due to the feedback which is established through the resistor 23 and the integrator 24 to the control amplifier 14 of the switching regulator 6, as well as by the further feed-back to the frequency counter 25 of the microcomputer 5.
As soon as the operator uses the hand-held part of the equip-ment the impedance-measuring circuit 9 provides a permanent feedback to the microcomputer 5 in order to cause an actual/
reference comparison against the preset power level previous-ly selected at the potentiometer 3. Any variation established in such a permanent comparison causes control adjustment of the switching regulator 6, either at the control input 15 for adaptation of the pulse duty factor or/and at the control in put 19 for adaptation of the operating voltage U~, of the pie zoelectric converter 1.
The integration of the microcomputer 5 for controlling the switching regulator 6 also provides the opportunity of con-necting an external peripheral device 26 to an interface of the microcomputer, such as a personal computer for servicing and maintenance purposes. It may also be used to render an operating program available for the ultrasonic generator, which considers the different preset power levels, e.g. for tartar scaling from teeth which may be carried out by means of the hand-held part, on the one hand, and a treatment of the root of a tooth, on the other hand, which may be carried out using a replaced instrument attachment of the hand-held part. With such a configuration, the consideration is sup-s ported by empirical values for achievement of a respectively optimum dental treatment using the different instrument at-tachments coming into question so that the operation of this equipment no longer requires the experimental operation on the basis of individually preset power levels.
1 0 The switching regulator 6, which is timed in secondary cir-cuit and is implemented as a step-up converter in cooperation with the transformer, may also be substituted by a primary-timed switching regulator. In such a case a high-frequency transformer ought to be used for isolation from the mains, rather than the normal mains transformer: Moreover, in an al-ternative embodiment the impedance-measuring circuit connect-ed to the auxiliary winding 11 of the impedance converter 8 may also include a connection to the primary coil 21 or even the secondary coil 22 of the impedance converter. If provi-20 signs are made for measurement of the amplifier current in another alternative it is finally also possible to provide a measuring circuit which is connected to the output side of the integrator 24 rather than to the impedance converter 8.

Claims (16)

1. An ultrasonic impedance converter comprising a piezoelectric converter whose driver circuit is provided with an amplifier supplied through an oscillator, and an impedance converter in series circuit therewith, wherein said oscillator is provided with a timed switching regulator whose pulse duty factor and frequency are controlled by a microcomputer, which performs a permanent actual/reference comparison between the impedance detected by means of an impedance-measuring circuit for said piezoelectric converter, which is defined as actual value, and the preset power for its resonance working point, which may be varied by means of a potentiometer and serves as reference value, and which in the event of any detected variation from the reference value controls an adaptation of the pulse duty factor by means of a control voltage supplied to a control input of the switching regulator, and/
or an adaptation of the frequency by means of a control voltage supplied to a control input of said switching regulator, with the respective control inputs of said switching regulator, said impedance-measuring circuit and said potentiometer being connected to an input/output attachment circuit of said microcomputer.
2. An ultrasonic generator according to Claim 1, wherein said amplifier operates on a constant current and wherein the amplifier current is tapped at a grounded resistor of said amplifier and supplied to the control input of said switching regulator through an integrator implemented as a low-pass device.
3. An ultrasonic generator according to Claim 2, wherein said switching regulator is connected in a feedback loop to a frequency counter of said microcomputer.
4. An ultrasonic generator according to Claim 1, wherein an external peripheral equipment is connected to an interface of said microcomputer.
5. An ultrasonic generator according to Claim 4, wherein the peripheral equipment connected to the interface of said microcomputer is a personal computer for servicing and maintenance.
6. An ultrasonic generator according to Claim 1, wherein said microcomputer is provided with an operating program considering different resonance working points of said piezoelectric converter at different preset power levels, with provisions being made for changeover between the various individual programs corresponding respectively to a specific preset power level.
7. An ultrasonic generator according to Claim 1, wherein said impedance-measuring circuit is connected to an auxiliary coil of said impedance converter.
8. An ultrasonic generator according to Claim 1, wherein said amplifier is provided with two transistors operating in push-pull mode.
9. An ultrasonic generator comprising:
(a) a piezoelectric converter having a power output and a driver circuit, said driver circuit comprising an amplifier supplying a signal to said piezoelectric converter through an oscillator;
(b) an impedance converter connected in series with said oscillator;
(c) an impedance measuring circuit for said piezoelectric converter connected in series with said oscillator, said impedance measuring circuit measuring actual impedance;
(d) a microcomputer having a reference value, said reference value related to a permanent frequency of said power output of said piezoelectric converter, wherein said microcomputer performs a permanent comparison between said reference value and said actual impedance;
(e) means for setting said reference value; and (f) a timed switching regulator connected to said amplifier, said timed switching regulator producing a pulse duty factor and a frequency, at least one of said pulse duty factor and said frequency under the control of said microcomputer in accordance with any variations of said actual impedance with respect to said reference value.
10. An ultrasonic generator according to claim 9, wherein said amplifier operates on a constant current and wherein said constant current is tapped through a grounded resistor of said amplifier and supplied to a control input of said timed switching regulator through an integrator implemented as a low-pass device.
11. An ultrasonic generator according to claim 10 further comprising a frequency counter of said microcomputer, wherein said timed switching regulator is connected in a feedback loop to said frequency counter of said microcomputer.
12. An ultrasonic generator according to claim 9 further comprising an interface of said microcomputer, wherein an external peripheral equipment is connected to said interface of said microcomputer.
13. An ultrasonic generator according to claim 12, wherein said peripheral equipment connected to said interface of said microcomputer is a personal computer for servicing and maintenance.
14. An ultrasonic generator according to claim 9 wherein said microcomputer is provided with an operating program considering different resonance working points of said piezoelectric converter at different preset power levels, and adapted for changeover between the various individual programs corresponding respectively to a specific preset power level.
15. An ultrasonic generator according to claim 9 further comprising an auxiliary coil of said impedance converter, wherein said impedance-measuring circuit is connected to said auxiliary coil of said impedance converter.
16. An ultrasonic generator according to claim 9, wherein said amplifier is provided with two transistors operating in a push-pull mode.
CA002021395A 1989-08-01 1990-07-17 Ultrasonic generator with a piezoelectric converter Expired - Fee Related CA2021395C (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
DEP3925459.3 1989-08-01
DE3925459A DE3925459A1 (en) 1989-08-01 1989-08-01 ULTRASONIC GENERATOR WITH A PIEZOELECTRIC CONVERTER

Publications (2)

Publication Number Publication Date
CA2021395A1 CA2021395A1 (en) 1991-02-02
CA2021395C true CA2021395C (en) 2000-09-12

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CA002021395A Expired - Fee Related CA2021395C (en) 1989-08-01 1990-07-17 Ultrasonic generator with a piezoelectric converter

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US (1) US5121023A (en)
EP (1) EP0411473B1 (en)
JP (1) JP2916527B2 (en)
AT (1) ATE128650T1 (en)
CA (1) CA2021395C (en)
DE (2) DE3925459A1 (en)
ES (1) ES2079404T3 (en)

Families Citing this family (25)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5276376A (en) * 1992-06-09 1994-01-04 Ultrasonic Power Corporation Variable frequency ultrasonic generator with constant power output
US5370602A (en) * 1992-09-04 1994-12-06 American Cyanamid Company Phacoemulsification probe circuit with pulse width Modulating drive
US5388569A (en) * 1992-09-04 1995-02-14 American Cyanamid Co Phacoemulsification probe circuit with switch drive
US5331951A (en) * 1992-09-04 1994-07-26 American Cyanamid Company Phacoemulsification probe drive circuit
US5563464A (en) * 1993-02-09 1996-10-08 Olympus Optical Co., Ltd. Circuit for rotating ultrasonic motor
US5394047A (en) * 1993-02-12 1995-02-28 Ciba Corning Diagnostics Corp. Ultrasonic transducer control system
US6203516B1 (en) 1996-08-29 2001-03-20 Bausch & Lomb Surgical, Inc. Phacoemulsification device and method for using dual loop frequency and power control
US6265809B1 (en) * 1998-09-16 2001-07-24 Takata Corporation Drive circuit for ultrasonic motor
CA2313035A1 (en) 1999-07-01 2001-01-01 James Feine Ultrasonic control apparatus and method
DE102006006730B4 (en) 2006-02-13 2008-01-03 Sirona Dental Systems Gmbh Apparatus and method for operating an ultrasonically driven tool
DE102006008517B4 (en) 2006-02-22 2008-10-09 Sirona Dental Systems Gmbh Method for operating a dental ultrasound device and dental ultrasound device
US7583214B2 (en) 2006-03-31 2009-09-01 Siemens Medical Solutions Usa, Inc. Dynamic receive beamformer with oversampling for medical diagnostic ultrasound
US7466256B2 (en) * 2006-03-31 2008-12-16 Siemens Medical Solutions Usa, Inc. Universal ultrasound sigma-delta receiver path
US20080231294A1 (en) * 2007-03-19 2008-09-25 Ndsu Research Foundation Structural health monitoring circuit
DE102007031168B3 (en) 2007-07-04 2009-01-02 Sirona Dental Systems Gmbh Method for operating a dental ultrasound device and dental ultrasound device
DE102007053460B4 (en) * 2007-11-07 2014-10-16 Sirona Dental Systems Gmbh Method for operating a dental ultrasound device and dental ultrasound device
US8013640B1 (en) * 2008-06-19 2011-09-06 Supertex, Inc. Programmable ultrasound transmit beamformer integrated circuit and method
DE102008042820A1 (en) 2008-10-14 2010-04-15 Robert Bosch Gmbh Sensor device and method for the operation of a sensor device
DE102009048779A1 (en) * 2009-10-08 2011-04-14 Valeo Schalter Und Sensoren Gmbh ultrasound transducer
DE102011118644A1 (en) * 2011-11-15 2013-05-16 Valeo Schalter Und Sensoren Gmbh Ultrasonic transducer and corresponding device for detecting surroundings in a vehicle
US8648627B1 (en) 2012-08-16 2014-02-11 Supertex, Inc. Programmable ultrasound transmit beamformer integrated circuit and method
DE102012215994A1 (en) * 2012-09-10 2014-03-13 Weber Ultrasonics Gmbh Method and circuit arrangement for determining a working range of an ultrasound oscillating structure
US20190346692A1 (en) * 2018-05-09 2019-11-14 Johnson & Johnson Vision Care, Inc. Electronic ophthalmic lens for measuring distance using ultrasound time-of-flight
CN110340746B (en) * 2019-04-28 2020-09-15 杭州电子科技大学 Dynamic matching box for developing and debugging acoustic performance of ultrasonic processing system
CN112130123B (en) * 2020-09-07 2021-05-11 成都信息工程大学 Simulation method and system of weather radar pulse modulator

Family Cites Families (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3596206A (en) * 1969-11-06 1971-07-27 Walter J Loria Transistor oscillator including ultrasonic generator crystal
JPS5836684A (en) * 1981-08-28 1983-03-03 有限会社大岳製作所 Ultrasonic oscillation method and micro-computer built-in ultrasonic oscillator
US4559826A (en) * 1984-09-14 1985-12-24 Tab Leasing Precision source of acoustic radiation
FR2586883B1 (en) * 1985-08-27 1994-04-01 Nord Institut Superieur Electron METHOD AND DEVICE FOR POWER SUPPLY OF A TRANSDUCER GENERATING VIBRATIONS AS SOUND AND ULTRASONIC.
DE3641058A1 (en) * 1986-12-01 1988-06-16 Kaltenbach & Voigt Circuit arrangement for feeding an ultrasonic transmitter, particularly for a scaler
AT387286B (en) * 1986-12-19 1988-12-27 Avl Verbrennungskraft Messtech METHOD AND DEVICE FOR DETERMINING VIBRATION PROPERTIES AND FOR OPERATING A PIEZOELECTRIC CONVERTER
JP2586082B2 (en) * 1987-02-09 1997-02-26 株式会社ニコン Power frequency optimization device for ultrasonic motor
JP2574293B2 (en) * 1987-04-24 1997-01-22 松下電器産業株式会社 Ultrasonic motor driving method
CH673387A5 (en) * 1987-08-25 1990-03-15 Bien Air
EP0319631A1 (en) * 1987-11-09 1989-06-14 Emerson Electric Co. Method of controlling an ultrasonic generator
US4966131A (en) * 1988-02-09 1990-10-30 Mettler Electronics Corp. Ultrasound power generating system with sampled-data frequency control
EP0340470A1 (en) * 1988-05-06 1989-11-08 Satronic Ag Method and circuit for driving an ultrasonic transducer, and their use in atomizing a liquid
JP2637467B2 (en) * 1988-05-06 1997-08-06 キヤノン株式会社 Vibration type actuator device
US4965532A (en) * 1988-06-17 1990-10-23 Olympus Optical Co., Ltd. Circuit for driving ultrasonic transducer
US4868445A (en) * 1988-06-20 1989-09-19 Wand Saul N Self tuned ultrasonic generator system having wide frequency range and high efficiency
JPH026285A (en) * 1988-06-24 1990-01-10 Honda Motor Co Ltd Structure for fixing bladder tank of motorcycle
JPH0214276A (en) * 1988-06-30 1990-01-18 Shinko Kagaku Kogyo Kk Back side treating agent for silicone-based tacky sheet or tape and back side-treated type silicone-based tacky tape or sheet using said treating agent
US4879528A (en) * 1988-08-30 1989-11-07 Olympus Optical Co., Ltd. Ultrasonic oscillation circuit

Also Published As

Publication number Publication date
DE3925459A1 (en) 1991-02-14
DE3925459C2 (en) 1992-12-03
EP0411473A3 (en) 1992-02-26
JP2916527B2 (en) 1999-07-05
ES2079404T3 (en) 1996-01-16
ATE128650T1 (en) 1995-10-15
CA2021395A1 (en) 1991-02-02
EP0411473B1 (en) 1995-10-04
DE59009738D1 (en) 1995-11-09
EP0411473A2 (en) 1991-02-06
JPH0365277A (en) 1991-03-20
US5121023A (en) 1992-06-09

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