EP1535387A2 - Monophasiger elektroaktiver motor - Google Patents

Monophasiger elektroaktiver motor

Info

Publication number
EP1535387A2
EP1535387A2 EP03758255A EP03758255A EP1535387A2 EP 1535387 A2 EP1535387 A2 EP 1535387A2 EP 03758255 A EP03758255 A EP 03758255A EP 03758255 A EP03758255 A EP 03758255A EP 1535387 A2 EP1535387 A2 EP 1535387A2
Authority
EP
European Patent Office
Prior art keywords
stator
phase
motor
motor according
plates
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.)
Withdrawn
Application number
EP03758255A
Other languages
English (en)
French (fr)
Inventor
Marc René Christian BUDINGER
Jean-François Roland ROUCHON
Bertrand Nogarede
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Centre National de la Recherche Scientifique CNRS
Institut National Polytechnique de Toulouse INPT
Original Assignee
Centre National de la Recherche Scientifique CNRS
Institut National Polytechnique de Toulouse INPT
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Centre National de la Recherche Scientifique CNRS, Institut National Polytechnique de Toulouse INPT filed Critical Centre National de la Recherche Scientifique CNRS
Publication of EP1535387A2 publication Critical patent/EP1535387A2/de
Withdrawn legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02NELECTRIC MACHINES NOT OTHERWISE PROVIDED FOR
    • H02N2/00Electric machines in general using piezoelectric effect, electrostriction or magnetostriction
    • H02N2/0005Electric machines in general using piezoelectric effect, electrostriction or magnetostriction producing non-specific motion; Details common to machines covered by H02N2/02 - H02N2/16
    • H02N2/001Driving devices, e.g. vibrators
    • H02N2/0015Driving devices, e.g. vibrators using only bending modes
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02NELECTRIC MACHINES NOT OTHERWISE PROVIDED FOR
    • H02N2/00Electric machines in general using piezoelectric effect, electrostriction or magnetostriction
    • H02N2/10Electric machines in general using piezoelectric effect, electrostriction or magnetostriction producing rotary motion, e.g. rotary motors
    • H02N2/106Langevin motors
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02NELECTRIC MACHINES NOT OTHERWISE PROVIDED FOR
    • H02N2/00Electric machines in general using piezoelectric effect, electrostriction or magnetostriction
    • H02N2/10Electric machines in general using piezoelectric effect, electrostriction or magnetostriction producing rotary motion, e.g. rotary motors
    • H02N2/14Drive circuits; Control arrangements or methods
    • H02N2/145Large signal circuits, e.g. final stages

Definitions

  • the present invention relates to an electroactive rotary motor and a method of operating this motor.
  • Electroactive motors use the capacities of certain materials, notably piezoelectric materials, to deform under the action of an electric field which passes through them.
  • the electroactive motors allow precise movements, for example for step-by-step commands, and even when stationary keep a high mass torque. They are therefore interesting solutions for positioning applications, particularly in fields such as lenses for optical devices, the automobile industry (windshield wipers, adjustable seats) or controls in aeronautics.
  • Piezoelectric motors use piezoelectric materials as electroactive materials.
  • the latest and most efficient rotary piezoelectric motors are traveling wave motors of the annular or cylindrical type.
  • a two-phase power supply is used to generate a rotating electric field in the material.
  • the material deforms under the action of this field so that it forms a ripple on the surface which makes a rotor move, directly or indirectly.
  • these motors require a two-phase power supply which includes many electrical components, active or passive.
  • the object of the invention is to propose an electroactive motor, the supply of which is simplified, so as to provide a powerful and inexpensive high-performance motor-supply unit.
  • a motor comprises a stator fixed to the frame of the motor and capable of bending perpendicular to a main direction, said stator comprising, stacked in said main direction, electroactive elements, for example piezoelectric ceramics, framed by two counter-masses, characterized in that said stator has a geometric asymmetry so as to create an asymmetry of resonance .
  • This asymmetry is said to be geometric as opposed to an electrical asymmetry in a power supply using two voltages in phase quadrature.
  • This geometric asymmetry can be obtained by an asymmetrical method of fixing the stator to the frame or also by an asymmetrical shape of the stator, particularly an asymmetrical shape for the counter-masses.
  • a method for powering a piezoelectric motor with mode rotation comprising a stator fixed to a frame of the motor and capable of bending perpendicular to a main direction, said stator comprising, stacked in said main direction , piezoelectric ceramics framed by two counter-masses, said stator having a geometric asymmetry so as to create an asymmetry of resonance, is characterized in that a single-phase power supply is used.
  • resonance frequencies will be chosen which are sufficiently close so that at the intermediate frequency the amplitude of the bending according to each of the bending modes is adapted to the operation of the motor.
  • the intermediate frequency will be more particularly chosen so that the phase shift between the two bending modes is 90 °.
  • FIG. 1 is a representation of a first embodiment for an engine according to the invention
  • FIG. 2 is a diagram of a first type of single-phase supply possible for a motor according to the invention, in particular for the motor of Figure 1;
  • FIG. 3 is an exploded perspective representation of the plates and counter-masses constituting a stator for the motor of Figure 1;
  • FIG. 4 is a plan view of the plates and counter-weights of the engine of Figure 1;
  • FIG. 5 is an illustration of characteristic curves of the motor of Figure 1 as a function of the frequency of electrical supply of this motor;
  • FIG. 6 is an exploded perspective representation of the plates and counter-masses constituting a stator for a second embodiment of an engine according to the invention
  • - Figure 7 is a plan view of the pads and counter weights of the engine of Figure 6;
  • FIG. 1 represents a rotary piezoelectric motor 1 with single-phase rotation, supplied by a single-phase electrical supply 40.
  • This motor is also described with reference to FIGS. 3 and 4.
  • This motor comprises a stator 10 and a rotor 20 mounted on a shaft 2.
  • the shaft 2 is rigidly fixed to a frame 3 of the motor 1.
  • the stator 10 is mounted on the shaft 2 so that it cannot rotate around the shaft 2.
  • the rotor 20 is mounted to rotate freely around the shaft 2.
  • the rotor can be provided to drive a mechanism not shown.
  • the stator 10 and the rotor 20 are generally cylindrical in shape.
  • the shaft 2 is generally cylindrical in shape and extends around a central fiber supported by an axis X, in a 'main direction D from a fastening 6 of this shaft on the frame.
  • the axis X which is an axis of rotation for the rotor 20.
  • the motor 1 is represented in operation, that is to say that in its portion supporting the stator the shaft 2 is bent so that its central fiber is supported in this portion by a curved line L.
  • axial which includes or is parallel to the X axis, more generally to the central fiber, and radial which is perpendicular to the X axis, respectively to the central fiber.
  • the motor 1 successively comprises, mounted on and coaxially with the shaft 2, a fixed stop 31, a helical compression spring 32, mounted between the fixed stop 31 and a ball stop 33, the ball stop
  • the nut 34 makes it possible to adjust the length of the spring 32, therefore to adjust an axial compression force, called the pressing force, between the spring and the nut, particularly for compressing the rotor 20 on the stator 10.
  • this effort is necessary for driving the rotor 20 by the stator 10. This effort is advantageous since when the motor is at rest, that is to say when it is not supplied, the rotor is thus maintained motionless relative to the stator. For example, if the engine is used to adjust a mechanism, this adjustment is maintained without it being useful to power the engine.
  • the stator 10 itself successively comprises, mounted on and coaxially with the shaft 2, a first counter-mass 11, a first piezoelectric ceramic plate 12, a second piezoelectric ceramic plate 13 and a second counter-mass 14.
  • the counter weights 1 1, 14 and the plates 12, 13 are cylinders each comprising two opposite faces, perpendicular to the direction D when the engine is at rest.
  • the first face encountered when traversing the tree in the direction D is called the posterior face, and the second face encountered along the same route before the anterior.
  • a set 1 1 1 -14 constituted by the counter-masses and the plates is able to deform under the action of the feed 40, so that a progressive wave is formed on the posterior surface 1 1 1 of the first counter - mass 1 1.
  • the operation of the assembly 1 1 -14 will be explained in the following of this description. It is the progressive wave forming on the posterior face 1 1 1 of the first counterweight 1 1, which drives the rotor in rotation.
  • the rotor is shown in a cylindrical shape. It comprises an anterior face 22 intended to be in contact with the posterior face 1 1 1 of the first counterweight 1 1. This anterior face 22 of the rotor 20 is coated with a friction layer 23 to ensure the drive without sliding of the rotor 20 by the stator 10.
  • a rear face 21 of the rotor 20 serves as a support for the ball bearing 33.
  • a bearing not shown, possibly fitted with a ball bearing, allows the decoupling in rotation of the shaft 2 from rotor 20.
  • the power supply 40 allows the supply of motive energy to the motor.
  • This power supply is single-phase, consisting of a phase 41 and a ground 42.
  • a first interface 1 1 12 between the front face 1 12 of the first counterweight 1 1 and the rear face 121 of the first plate 12 is connected to ground 42.
  • a second interface 1213 between the front face 122 of the first plate 12 and the rear face 131 of the second plate 13 is connected to phase 41.
  • a third interface 1314 between the front face 132 of the second plate 13 and the rear face 141 of the second counter-mass 14 is also connected to the mass 42.
  • a variable voltage 43 is applied to phase 41.
  • the first and second piezoelectric plates are deformed under the action of axial electric fields between the interfaces, created by voltage 43 to generate the traveling wave.
  • a possible power supply 40 for the motor 1 is shown diagrammatically in FIG. 2. It is close to a switching power supply of the "Forward" type from which its diodes would have been removed at the secondary. It is controlled by a switch 46 for starting and stopping the engine.
  • This power supply includes a transformer 44. This transformer makes it possible to adapt the voltage level to that of the motor and to ensure its galvanic isolation.
  • the secondary 47 of the transformer 44 includes an inductor 48 enabling resonance to be obtained by adjusting the frequency of the voltage 43 at the terminals 41, 42 of the motor 1 as a function of the capacitance of the plates 12, 13.
  • the counterweights and the plates have substantially the same outside diameter and all four include in their center an axial hole 51 for the passage of the shaft 2.
  • the counter weights 1 1, 14 are identical to each other. They further include singularities consisting of two recesses, bores 52, parallel to the axial bore 51 and diametrically symmetrical with respect to the X axis. These bores form a geometric asymmetry around the X axis. These bores define a axial plane P1, P2 for each of the plates. Thus, for a first axial plane P1 diametrically cutting the two bores 52 of the first counterweight 1 1, preference is given to bending the first counterweight in a mode M1 perpendicular to the first axial plane P1.
  • the piezoelectric plates 12,13 are identical. They consist of a first sector 123,133 and a second sector
  • the elements are represented in plan view in the direction D.
  • the polarities P + are illustrated therein by circles containing a cross and the polarities P- by circles containing a point.
  • the first plate 12 the first sector 123 is separated from the second sector 124 by a first median axial plane PM1.
  • the first sector 133 is separated from the second sector 134 by a second median axial plane PM2.
  • opposite polarities means polarities such that under the effect of the same voltage if the axial dimension of a sector decreases, the axial dimension of a sector of opposite polarity increases.
  • the plates are arranged so that the two median planes are perpendicular to each other. That is to say that a sector of one of the wafers is opposite a sector having the same polarity as it and a sector of opposite polarity on the other wafer.
  • the counter weights 11, 14 are arranged on either side of the plates so that the first axial plane P1 is coincident with the first median plane PM1 and the second axial plane is coincident with the second median plane PM2.
  • FIG. 5 illustrates, as a function of the frequency F of the supply voltage:
  • the piezoelectric materials making up the wafers deform more or less depending on whether the electric field created by this voltage is more or less intense, so that the stator bends along line L.
  • the electric field varies according to the voltage.
  • the axial deformations of the piezoelectric ceramics constituting each sector 123, 124, 133, 134 follow, depending on their polarity, the variations in intensity of the axial electric field to which they are subjected.
  • the thickness of a sector of a plate while the thickness of the other sector of the same plate decreases, and vice versa when the intensity of the electric field decreases.
  • the intensity of the voltage varies, and therefore of the fields, the thicknesses vary also gradually gradually exciting each of the flexion modes M1, M2 so that each point of the line L describes around the axis X a path represented substantially circular in Figure 1 by the arrow R.
  • Figures 6 and 7 are representations, respectively similar to those of Figures 3 and 4, of a second possible embodiment for a motor according to the invention, in particular for the arrangement of the elements 1 1 -14 of the stator 10.
  • the elements are identical to those described with reference to Figures 3 and 4, only their arrangement changes.
  • the median planes PM1 and PM2 are merged, but form an angle of 180 ° between them, that is to say that the plates 1 2, 1 3 are arranged so that a sector of polarity on one plate is opposite with a sector of opposite polarity on the other plate.
  • Counter weights 1 1, 1 4 are arranged so that the axial planes P1, P2 are merged and form an angle of 45 ° with the median planes PM 1, PM2.
  • FIG. 8 represents a second possible single-phase supply type for a motor according to the invention, adapted to the motor of FIG. 3.
  • This second type makes it possible to rotate the motor at will according to a first direction of rotation or according to a second direction of rotation, opposite to the first.
  • the second interface is connected to ground 42 and the power supply includes a transformer whose primary, powered by a single phase 41, is not shown.
  • This transformer includes two identical secondaries, a first S1 of which is connected by one of its two terminals to ground 42 and by the other to the first interface 1 1 1 2 to which it makes it possible to apply a phase 41 1.
  • S2 has two terminals B1, B2 and is controlled by an inverter K.
  • the inverter K comprises two ground contacts K1 1, K1 2 connected to ground 42 and two phase contacts K21, K22, connected to the third interface 1314.
  • the reverser has two positions. In its first position, the first ground contact K1 1 is in contact with the first terminal B1 and the first phase contact K21 is in contact with the second terminal B2 so that the second secondary is supplied in the same way as the first secondary.
  • an identical voltage 41 1, 412 is applied to the first and third interfaces, allowing the motor to be driven in a first direction of rotation.
  • the second ground contact K12 is in contact with the second terminal of B2 and the second phase contact K22 is in contact with the first terminal B2 so that the second secondary is supplied so opposite the first secondary.
  • a voltage 412 of the same amplitude but of opposite sign to that 41 1 applied to the first interface is applied to the third interface, allowing the motor to be driven in the second direction of rotation.
  • the power supply can be reversed and the ground connected to the second interface while the phase is connected to the first and the third interface.
  • the shape of the engine components is not necessarily cylindrical. Rather than making bores in the counter-masses, it is possible to give different forms to these counter-masses. Thus, a counter-mass having the shape of a beam will have a different resonance frequency depending on whether the bending is done according to a small or a large stop of the beam.
  • the asymmetry can also be achieved by the introduction of one or more singularities only on one of the counter masses or on a part of the stator.
  • the asymmetry can also be obtained by the use of anisotropic materials, anisotropy locally introducing singularities.
  • the number of platelets is also not limited to two.
  • the stator may further include a mechanical amplifier, forming a spacer between the assembly and the rotor. It then serves to amplify the traveling wave and to drive the rotor in rotation.
  • the amplifier may also have a generally cylindrical shape, comprising an anterior face applied to the posterior face of the first counter-mass and a posterior face in contact with the stator. It is the progressive wave, amplified on the posterior surface of the amplifier, which drives the rotor in rotation.
  • Motors according to the invention have economic and reliability advantages, essentially for motors which require only one direction of rotation. They are particularly suitable for small motors such as clock, microsurgery or microelectronics.

Landscapes

  • General Electrical Machinery Utilizing Piezoelectricity, Electrostriction Or Magnetostriction (AREA)
EP03758255A 2002-08-30 2003-08-21 Monophasiger elektroaktiver motor Withdrawn EP1535387A2 (de)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
FR0210755A FR2844114B1 (fr) 2002-08-30 2002-08-30 Moteur electroactif monophase
FR0210755 2002-08-30
PCT/FR2003/002556 WO2004021555A2 (fr) 2002-08-30 2003-08-21 Moteur electroactif monophase

Publications (1)

Publication Number Publication Date
EP1535387A2 true EP1535387A2 (de) 2005-06-01

Family

ID=31503004

Family Applications (1)

Application Number Title Priority Date Filing Date
EP03758255A Withdrawn EP1535387A2 (de) 2002-08-30 2003-08-21 Monophasiger elektroaktiver motor

Country Status (7)

Country Link
US (1) US20050269903A1 (de)
EP (1) EP1535387A2 (de)
JP (1) JP2005537771A (de)
AU (1) AU2003274269A1 (de)
CA (1) CA2497177A1 (de)
FR (1) FR2844114B1 (de)
WO (1) WO2004021555A2 (de)

Families Citing this family (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP5144149B2 (ja) * 2007-07-12 2013-02-13 ペンタックスリコーイメージング株式会社 移動装置
US7786648B2 (en) * 2008-08-18 2010-08-31 New Scale Technologies Semi-resonant driving systems and methods thereof
JP5610707B2 (ja) * 2009-05-22 2014-10-22 キヤノン株式会社 振動波駆動装置
JP6982228B2 (ja) * 2016-12-19 2021-12-17 シンフォニアテクノロジー株式会社 らせん型ワーク搬送装置およびパーツフィーダ
CN106505907B (zh) * 2017-01-05 2018-06-12 南京工程学院 一种可双向直线运行的单相超声波电机

Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3686345T2 (de) * 1985-04-19 1993-01-21 Hitachi Maxell Ultraschallmotor.
DE3852224T2 (de) * 1987-07-14 1995-04-06 Honda Electric Co Ultraschalltreiberanordnung.
JPH02164284A (ja) * 1988-04-12 1990-06-25 Tomio Kotaki 超音波アクチュエータ
DE3920726A1 (de) * 1988-06-29 1990-01-04 Olympus Optical Co Ultraschalloszillator
JP3124284B2 (ja) * 1990-08-03 2001-01-15 キヤノン株式会社 振動波駆動装置
JP3171887B2 (ja) * 1991-10-21 2001-06-04 キヤノン株式会社 振動波駆動装置

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See references of WO2004021555A3 *

Also Published As

Publication number Publication date
CA2497177A1 (fr) 2004-03-11
AU2003274269A1 (en) 2004-03-19
JP2005537771A (ja) 2005-12-08
AU2003274269A8 (en) 2004-03-19
WO2004021555A2 (fr) 2004-03-11
FR2844114A1 (fr) 2004-03-05
US20050269903A1 (en) 2005-12-08
FR2844114B1 (fr) 2005-10-28
WO2004021555A3 (fr) 2004-07-29

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