![]() Device for regulating rotational speed and torque of induction electric motor
专利摘要:
PCT No. PCT/EP80/00152 Sec. 371 Date Jul. 28, 1981 Sec. 102(e) Date Jul. 28, 1981 PCT Filed Dec. 21, 1980 PCT Pub. No. WO81/02076 PCT Pub. Date Jul. 23, 1981.A method and apparatus for controlling an AC induction motor, having at least two phases. The motor is controlled in a known manner by two input signals S1, S2, which are connected to a resolver (1), the output signals of which are used to generate separate supply signals to the motor phases. A measured signal U, representing the rotational speed of the motor, is fed back to the control system and is used for calculating the oscillator frequency of the oscillator (5), which drives the resolver. A calculating circuit calculates the oscillator frequency as the sum of the first control signal S1 multiplied by a first constant factor, and the tachometer signal U multiplied by a second constant factor. As a result of this control method the oscillator frequency will increase with increasing control signal S1 and increasing tachometer signal U, but decrease with increasing motor load, because the motor speed will decrease. This automatic frequency adjustment results in constant amplitude of the stator magnetic field at all motor speeds and at all different loads. 公开号:SU1435164A3 申请号:SU823388958 申请日:1982-02-05 公开日:1988-10-30 发明作者:Иенссон Рагнар 申请人:Ragnar Iensson; IPC主号:
专利说明:
ABOUT The invention relates to electrical engineering and can be used in an electric drive with adjustable rotational speed. The purpose of the invention is to expand the range of speed control, increase accuracy and speed. The drawing shows a block diagram of a device for controlling the rotational speed and torque of an asynxjpoHHoro engine. The device contains a unit of rotation 1 of the voltage vector, the outputs of which are connected to the induction motor 2 through power amplifiers 3.1 and 3.2. The inputs of the voltage vector rotation block are connected to the magnetic flux setting unit 4 and the rotation frequency setter 5, and the second two inputs are connected to the outputs of the frequency generator 6, which generates the signals sinuJit and costu, t, where oi is the supply voltage frequency . The input of the frequency generator is connected to the block 7 summation. The inputs of the latter are connected respectively through a scaling unit 8 with a scaling factor ™ R o- Nor with block 5, set an hour. s .Kg-t-K; rotational points and through the scaling unit 9 with the scaling coefficient RS4 l nor tachogenerator sh, LI (Rs-fRp) where Iv о and RS are the active resistances of the windings of the rotor and stator, respectively, with RU being led to the stator winding; L is the inductance of the magnetizing circuit; I u magnetizing. . , The device works as follows. The flow setting block A generates a constant signal Srj, and the rotation speed setting block 5 a constant signal defined by the expression S, R5lR + 4LlL ( From the vector diagram of the asynchronous motor, it follows that LO, LI, ERIR + U, (2) where W, is the frequency of the stator floor; and - a signal proportional to the EMF of the rotor, which is found by multiplying the signal of the T.-generator 10 by a constant factor. From vfazheny (1). and (2) we find ., oEJ + IT- ((Rs + RR) -LI (RS + RR) Equation (3) is solved in blocks 7, 8 and 9. The engine control system 2 controls the actual frequency of the stator field. The signal S is the actual control signal. The oscillator frequency automatically adjusts to the operating conditions of the engine in such a way that a constant stator magnetic field is obtained. An increase in the load on the motor leads to a decrease in the frequency of the oscillator co, - The control signal S regulates the operation of the induction motor 2 in the same way that the DC motor is controlled by the voltage of the rotor. Any external control loop, such as speed control or position control, can be connected in the usual way to the signal input. When regulating the operation of DC motors, it is necessary to regulate the strength of the magnetic field, as well as the rotor current, depending on the operating conditions. For example, field attenuation is used to operate the engine at higher speeds. All such control methods are possible with an induction motor in the case of using a control system made in accordance with the invention. This can be done by changing the required parameters in the computing circuits of the control system. -. The control systems of the invention can be implemented with analog and digital components, such as a microcomputer. Within the scope of the invention, it is still possible (especially in digital structures) to write alternative mathematical formulas for the calculations performed by the control systems. The present invention relates to a two-phase motor. By conventional trigonometric coordinate transformations, the system can be redone to regulate the motor with any number of phases. For example, two control signals V and from a solver output can be easily converted to three-phase signals. During engine operation as a result of its heating, its resistance from copper is especially affected. It is technically not difficult to measure the temperature and resistance of the motor windings and, with the aid of these measured values, adjust the resistance parameters in the computational circuits so as to achieve optimal control at all temperatures. The tachogenerator signal, which is used in the control system of the invention, can be obtained directly from the actual tachogenerator connected to the motor shaft. It is also possible to obtain a signal about the rotational speed indirectly, a so-called recovered value, for example, by differentiating the measured value of the motor shaft angle. Typically, this type of adjustment system is used to regulate the frequency of rotation of the engine, however, other quantities can be controlled, such as the engine torque and the position of the engine.
权利要求:
Claims (1) [1] Invention Formula An apparatus for controlling the rotational speed and torque of the asynchronous motor washer, comprising a voltage vector rotation unit whose outputs are intended for connecting via power amplifiers to the phase windings of an induction motor, the first two inputs of the voltage vector rotation block are connected to the magnetic flux and rotation frequency reference blocks, respectively, and the second two inputs are connected to the outputs of the frequency generator, which generates signals sinw, t and cosoJ t, the input of the frequency generator is connected to the frequency setting unit, the summation unit and the tachogenerator, characterized in that, in order to extend the range of frequency control, increase accuracy and quickly In effect, two scaling blocks were introduced with scaling factors corresponding to "° Li-cl r,)" Lf-jIsTrj P " the input of the first of the scaling units is connected to the code of the rotational frequency setting unit, the input of the second scaling unit is connected to the tachogenerator, and their outputs are connected to the summation unit, the output of which is the input of the frequency generator, where Co, ; RR and RJ are the active resistances of the windings of the rotor and the stator, respectively, and Cd is connected to the stator winding; L is the inductance of the magnetizing circuit, and I c is the magnetizing current.
类似技术:
公开号 | 公开日 | 专利标题 US5440219A|1995-08-08|Induction motor speed control having improved sensing of motor operative conditions EP0579694B1|1995-12-13|Process and circuits for determining machine-related electromagnetic and mechanical state variables on electrodynamic induction machines supplied via converters US5861728A|1999-01-19|Method for measuring motor parameters of induction motor and control apparatus US4672288A|1987-06-09|Torque controller for an AC motor drive and AC motor drive embodying the same US5541488A|1996-07-30|Method and apparatus for controlling induction motors US7298105B1|2007-11-20|Motor speed estimation system and method using hybrid model reference adaptive system US5689169A|1997-11-18|Transient inductance identifier for motor control SU1435164A3|1988-10-30|Device for regulating rotational speed and torque of induction electric motor GB1264165A|1972-02-16| EP0091589A3|1985-08-07|Apparatus for controlling an induction motor US4683412A|1987-07-28|Current source inverter motor drive adapted for full current regenerative mode operation GB1490740A|1977-11-02|Method for regulating the torque of an induction motor EP0196846B1|1990-05-16|Method and apparatus for controlling an electric a.c. motor Depenbrock et al.1989|Determination of the induction machine parameters and their dependencies on saturation JPH0627791B2|1994-04-13|Induction motor constant measurement method RU2123757C1|1998-12-20|Traction induction motor control device JP3489259B2|2004-01-19|Permanent magnet type motor control method and control device EP0427571B1|1995-10-18|AC motor control SU778721A3|1980-11-07|Control device for asynchronous electric motor with constant torque CA1058695A|1979-07-17|Regulating the torque of an induction motor SU972276A1|1982-11-07|Device for checking electric motor shaft torque JP2734606B2|1998-04-02|Automatic torque boost control method for inverter SU817880A1|1981-03-30|Device for measuring induction motor slipping SU836749A1|1981-06-07|Device for measuring magnetic flux of ac electric motor SU1758821A1|1992-08-30|A c electric drive
同族专利:
公开号 | 公开日 SE8000118L|1981-07-09| IT8147513D0|1981-01-06| BE886987A|1981-07-07| SE420141B|1981-09-14| IT1142253B|1986-10-08| EP0049241B1|1984-10-10| WO1981002076A1|1981-07-23| JPS56501866A|1981-12-17| US4458193A|1984-07-03| JPH0250718B2|1990-11-05| DE3069436D1|1984-11-15| CA1164932A|1984-04-03| FI66508C|1984-10-10| EP0049241A1|1982-04-14| FI820132L|1982-01-15| FI66508B|1984-06-29|
引用文献:
公开号 | 申请日 | 公开日 | 申请人 | 专利标题 RU2723671C1|2019-09-05|2020-06-17|Федеральное государственное унитарное предприятие "Центральный ордена Трудового Красного Знамени научно-исследовательский автомобильный и автомоторный институт "НАМИ" |Asynchronous motor control device|GB901248A|1959-11-27|1962-07-18|Gen Electric Co Ltd|Improvements in and relating to supply arrangements for synchronous electric motors| US3571681A|1969-05-19|1971-03-23|Herbert Berman|Controllable speed multiple phase motor| SE334671B|1969-12-11|1971-05-03|Philips Svenska Ab| JPS54162119A|1978-06-13|1979-12-22|Toshiba Corp|Controller of induction motor| DE2833542C2|1978-07-31|1980-09-25|Siemens Ag, 1000 Berlin Und 8000 Muenchen|Rotary field machine drive, consisting of a converter-fed rotary field machine, in particular a synchronous machine and a converter control for the self-clocked, in particular field-oriented operation of this machine, with two identical AC voltage integrators and a method for operating the rotary field machine drive|IN158551B|1981-08-12|1986-12-06|Gen Electric Co Plc| JPS6269495A|1985-09-20|1987-03-30|Toshiba Corp|Driver for rotary-anode x-ray tube| JP2752058B2|1986-11-19|1998-05-18|株式会社東芝|X-ray tube rotating anode drive| SE8701008L|1987-03-11|1988-09-12|Ragnar Jonsson|IMPROVED CONTROL PROCEDURE FOR AN AC AC MOTOR AND DEVICE THEREOF| SE9000497L|1990-02-12|1991-08-13|Ragnar Joensson|PROCEDURES AND APPLIANCES FOR CONTROL OF AN ASYNCHRONIC ENGINE THROUGH INDIRECT SEATING OF THE AIR GAS TENSION| US5218277A|1991-09-18|1993-06-08|Utdc Inc.|Controller for a linear induction motor| US6426602B1|1999-09-16|2002-07-30|Delphi Technologies, Inc.|Minimization of motor torque ripple due to unbalanced conditions| US7679311B2|2007-06-29|2010-03-16|Caterpillar Inc.|System and method for dynamic field weakening| US7977925B2|2008-04-04|2011-07-12|General Electric Company|Systems and methods involving starting variable speed generators| BRPI0900907A2|2009-03-31|2010-12-14|Whirlpool Sa|synchronous and induction motor| US8786244B2|2011-09-22|2014-07-22|GM Global Technology Operations LLC|System and method for current estimation for operation of electric motors|
法律状态:
优先权:
[返回顶部]
申请号 | 申请日 | 专利标题 SE8000118A|SE420141B|1980-01-08|1980-01-08|SET AND DEVICE FOR CONTROL OF AN AC POWER ASYNCHRONOUS MOTOR| 相关专利
Sulfonates, polymers, resist compositions and patterning process
Washing machine
Washing machine
Device for fixture finishing and tension adjusting of membrane
Structure for Equipping Band in a Plane Cathode Ray Tube
Process for preparation of 7 alpha-carboxyl 9, 11-epoxy steroids and intermediates useful therein an
国家/地区
|