SlideShare ist ein Scribd-Unternehmen logo
1 von 5
Downloaden Sie, um offline zu lesen
The International Journal Of Engineering And Science (IJES)
|| Volume || 3 || Issue || 6 || Pages || 68-72|| 2014 ||
ISSN (e): 2319 – 1813 ISSN (p): 2319 – 1805
www.theijes.com The IJES Page 68
Sensorless Control Algorithm For High Dynamic Performance
PMSM
Shruthi N M, Dr. Shivanna S, Prof.K.V.Devadas
Department of Electrical and Electronics Engineering KVG College of Engineering, Sullia, D.K
Karnataka, India
-------------------------------------------------------ABSTRACT----------------------------------------------------
A low-time-consuming and low-cost sensorless-control algorithm for high-dynamic performance
permanent-magnet synchronous motors, both surface and internal permanent-magnet mounted for position and
speed estimation is introduced. This control algorithm is based on the estimation of rotor speed and angular
position starting from the back electromotive force space-vector determination without voltage sensors by using
the reference voltages given by the current controllers instead of the actual ones. This choice obviously
introduces some errors that must be vanished by means of a compensating function. The novelties of the
proposed estimation algorithm are the position-estimation equation and the process of compensation of the
inverter phase lag that also suggests the final mathematical form of the estimation. The mathematical structure
of the estimation guarantees a high degree of robustness against parameter variation. The proposed low-cost
sensorless-control algorithm shows the high dynamic performances of the sensorless-control system also with
reduced equipment.
---------------------------------------------------------------------------------------------------------------------------------------
Date of Submission: 08 June 2014 Date of Publication: 25 June 2014
---------------------------------------------------------------------------------------------------------------------------------------
I. INTRODUCTION
Permanent magnet synchronous motor drives are becoming more popular in industrial applications,
machine tools and residential applications. In a PMSM the excitation is provided by means of using permanent
magnets mounted on the rotor. PMSM present numerous advantages such as high efficiency, high torque to
inertia ratio, high power density, reliability and long life. Industrial applications require variable speed drive
systems. In order to optimally control a PMSM, the position and or the speed of the shaft must be known. The
position and speed of the shaft is usually determined using a position transducer or encoder. By knowing the
rotor position, the PMSM can be controlled in such a way that it provides full torque at zero speed. This is
achieved by maintaining an appropriate angle between the stator and rotor magnetic fields. However the use of a
position encoder adds some important disadvantages to the PMSM drive system including increased drive
system cost, increased complexity and maintenance, reduced reliability and increased size of the drive system.
In order to solve these problems related to the use of position transducers, the sensor-less control of PMSM
has been proposed. The idea is to get rid of the position transducer and try to determine the actual rotor position
by measuring other variables such as voltages and currents in the PMSM.
In the proposed scheme, a low-time-consuming and low-cost sensorless-control algorithm for high-
dynamic performance permanent- magnet synchronous motors, both surface and internal permanent-magnet
mounted for position and speed estimation is introduced. The sensorless-control system is based on the back
EMF space-vector estimation. The use of the back EMF space vector is advantageous with respect to any other
system using flux estimation because of the integrator elimination avoiding the problem of integration drift that
requires opportune devices or subsystems for its compensation. The mathematical structure of the estimation
guarantees a high degree of robustness against parameter variation.
Sensorless Control Algorithm For

www.theijes.com The IJES Page 69
II. PROBLEM DEFINITION
High performance control of AC machines requires the information of several electromagnetic and
mechanical variables including currents, voltages, fluxes, speed and position. Current and voltage sensors are
robust and give sufficiently accurate measurements, and so are adopted for closed loop control. The speed and
position sensors are more delicate and often pose serious threats to control issues, so speed sensorless operation
is sought in many applications that require open loop control. To extract speed and position information without
using speed sensors, back emf sensorless control algorithm has been proposed.
III. METHODOLOGY
Description of the Estimator :
Fig. 1. Electrical-drive machine block diagram with sensorless control for PMSM.
The proposed sensorless-control technique is the determination of the back EMF space vector without
voltage measurements by using the reference voltages instead of the actual ones so that the system is a low-cost
and reliable one. In the control system, whose block scheme is shown in Fig. 1, the motor supply voltage values
that constitute some inputs of the estimator are replaced with reference-voltage signals (va* ,vb* and vc*)
generated by the current regulator. Considering the inverter reference-voltage signals instead of the real supply
voltages implies, obviously, some approximations in the back EMF determination. It is worthwhile to observe
that better performances are obtained if the rotor position and speed determination would be committed directly
to the determination of the back EMF space vector eS and not to the determination of the flux space vector. This
is essentially due to the absence of flux signal integrator. Furthermore, elimination of analog integrators
improves the benefits in analog circuitry due to the absence of components suffering from thermal drift.
In the proposed estimator, the error signal is processed by the PI compensator to derive the speed of the rotor
and the angle of the rotor is calculated by integrating the estimated speed. This makes the vulnerable to noise.
The experimental research has shown that the proposed estimator provides very accurate and robust speed
information for the application. But at zero and low speed, the back emf voltage is not enough for the proposed
vector control. Hence for the seamless operation from zero speed, the current has been controlled with a
constant magnitude and a pre-patterned frequency. Here the synchronous reference frame is derived by
integrating the frequency.
MACHINE DETAILS
Sensorless Control Algorithm For

www.theijes.com The IJES Page 70
IV. MATLAB MODEL
Simulations been made in order to validate the proposed estimation algorithm under two conditions;
1) step change in motor speed from 400 up to 4000 r/min (nominal speed) and back again to 400 r/min;
2) sudden application of a 1.8-N · m load torque while the motor runs at 4000 r/min speed;
SIMULATION RESULT
1) When step change in motor speed from 400 up to 4000 r/min (nominal speed) and back again to 400 r/min,
the control block and the simulation s are shown
Fig 2.Real &estimated speed for step change in motor speed from 400 up to 4000rpm
Fig.3 Real& estimated position for step change in motor speed from 400 up to 4000rpm
Sensorless Control Algorithm For

www.theijes.com The IJES Page 71
2)During sudden application of a 1.8-N · m load torque while the motor runs at 4000 r/min speed , the control
block and the simulations are shown:
Fig.4 Real &estimated speed & position when the motor runs at 4000rpm
Fig.5 Real &estimated position when the motor runs at 4000rpm
V. CONCLUSION
Back EMF determination shows the high dynamic performance of the proposed algorithm. The
proposed scheme make the electrical drive cheaper and suitable for industrial drives both surface and internal
mounted PM. The algorithm is considered a very good alternative in terms of economy and precision without
lack of performances and exhibits an increase in reliability.
REFERENCES
[1] M. Rashed, P. F. A. MacConnell, A. Fraser, P. Stronach, and S. Acarnley, ―Sensorless indirect-rotor-field-orientation speed control
of a permanentmagnet synchronous motor with stator-resistance estimation,‖ IEEE Trans. Ind. Electron., vol. 54, no. 3, pp. 1664–
1675, Jun. 2007.
[2] T. D. Batzel and K. Y. Lee, ―Electric propulsion with the sensorless permanent magnet synchronous motor: Model and approach,‖
IEEE Trans. Energy Convers., vol. 20, no. 4, pp. 818–825, Dec. 2005.
[3] J.-K. Seok, J.-K. Lee, and D.-C. Lee, ―Sensorless speed control of nonsalient permanent magnet synchronous motor using rotor-
positiontracking PI controller,‖ IEEE Trans. Ind. Electron., vol. 53, no. 2, pp. 399– 405, Apr. 2006.
Sensorless Control Algorithm For

www.theijes.com The IJES Page 72
[4] O. Wallmark and L. Harnefors, ―Sensorless control of salient PMSM drives in the transition region,‖ IEEE Trans. Ind. Electron.,
vol. 53, no. 4, pp. 1179–1187, Jun. 2006.
[5] M. J. Corley and R. D. Lorenz, ―Rotor position and velocity estimation for a salient-pole permanent magnet synchronous machine at
standstill and high speed,‖ IEEE Trans. Ind. Appl., vol. 34, no. 4, pp. 784–789, Jul./Aug. 1998.
[6] S. Ogasawara and H. Akagi, ―Implementation and position control performance of a position-sensorless IPM motor drive system
based on magnetic saliency,‖ IEEE Trans. Ind. Appl., vol. 34, no. 4, pp. 806–812, Jul./ Aug. 1998.
[7] S. Ogasawara and H. Akagi, ―An approach to real-time position estimation at zero and low speed for PM motor based on saliency,‖
IEEE Trans. Ind. Appl., vol. 34, no. 1, pp. 163–168, Jan./Feb. 1998.
[8] G. Pesse and T. Paga, ―A permanent magnet synchronous motor flux control scheme without position sensor,‖ in Proc. EPE,
Trondheim, Norway, 1997, pp. 553–568.
[9] J. Barrenscheen, D. Flieller, D. Kalinowski, and J. P. Louis, ―A new sensorless speed and torque control for permanent magnet
synchronous motors: Realisation and modelling,‖ in Proc. EPE, Sevilla, Spain, 1995, pp. 839–844.
[10] J. Oyama, T. Abe, T. Higuchi, E. Yamada, and K. Shibahara, ―Position sensor-less control of half-wave rectified brushless
synchronous motor,‖ in Proc. EPE, Sevilla, Spain, 1995, pp. 149–153.
[11] Z. M. A. Peixoto, F. M. F. Sa, P. F. Seixas, B. R. Menezes, and P. C. Cortizo, ―Design of sliding observer for back electromotive
force, position and speed estimation of interior magnet motors,‖ in Proc. EPE, Sevilla, Spain, 1995, pp. 833–838.
[12] L. Ben-Brahim and A. Kawamura, ―A fully digitized field-oriented controlled induction motor drive using only current sensor,‖
IEEE Trans. Ind. Appl., vol. 39, no. 3, pp. 241–249, Jun. 1992.
[13] J. Holtz, ―pulsewidth modulation—A survey,‖ IEEE Trans. Ind. Electron., vol. 39, no. 5, pp. 410–420, Oct. 1992.
[14] A. Cataliotti, F. Genduso, A. Raciti, and G. R. Galluzzo, ―Generalized PWM–VSI control algorithm based on a universal duty-cycle
expression: Theoretical analysis, simulation results, and experimental validations,‖ IEEE Trans. Ind. Electron., vol. 54, no. 3, pp.
1569–1580, Jun. 2007.
[15] N. Matsui and M. Shigyo, ―Brushless dc motor control without sensors,‖ IEEE Trans. Ind. Appl., vol. 28, no. 1, pp. 120–127,
Jan./Feb. 1992.

Weitere Àhnliche Inhalte

Was ist angesagt?

Development of a low cost sensored control for high speed axial flux permanen...
Development of a low cost sensored control for high speed axial flux permanen...Development of a low cost sensored control for high speed axial flux permanen...
Development of a low cost sensored control for high speed axial flux permanen...
Alexander Decker
 
A PROJECT REPORT SIM & SPEED CONTROL OF INDUCTIO DRIVE
A PROJECT REPORT SIM & SPEED CONTROL OF INDUCTIO DRIVEA PROJECT REPORT SIM & SPEED CONTROL OF INDUCTIO DRIVE
A PROJECT REPORT SIM & SPEED CONTROL OF INDUCTIO DRIVE
Pawan Kumar
 
SPEED SYNCHRONIZATION OF MASTER –SLAVE D.C. MOTORS USING MICROCONTROLLER, FOR...
SPEED SYNCHRONIZATION OF MASTER –SLAVE D.C. MOTORS USING MICROCONTROLLER, FOR...SPEED SYNCHRONIZATION OF MASTER –SLAVE D.C. MOTORS USING MICROCONTROLLER, FOR...
SPEED SYNCHRONIZATION OF MASTER –SLAVE D.C. MOTORS USING MICROCONTROLLER, FOR...
Editor IJMTER
 
Direct torque control of induction motor using space vector modulation
Direct torque control of induction motor using space vector modulationDirect torque control of induction motor using space vector modulation
Direct torque control of induction motor using space vector modulation
IAEME Publication
 

Was ist angesagt? (19)

IRJET- Self-Tuning PID Controller with Genetic Algorithm Based Sliding Mo...
IRJET-  	  Self-Tuning PID Controller with Genetic Algorithm Based Sliding Mo...IRJET-  	  Self-Tuning PID Controller with Genetic Algorithm Based Sliding Mo...
IRJET- Self-Tuning PID Controller with Genetic Algorithm Based Sliding Mo...
 
Final thesis
Final thesisFinal thesis
Final thesis
 
Speed Control of The Three Phase Induction Motor via changing the line voltage
Speed Control of The Three Phase Induction Motor via changing the line voltageSpeed Control of The Three Phase Induction Motor via changing the line voltage
Speed Control of The Three Phase Induction Motor via changing the line voltage
 
Development of a low cost sensored control for high speed axial flux permanen...
Development of a low cost sensored control for high speed axial flux permanen...Development of a low cost sensored control for high speed axial flux permanen...
Development of a low cost sensored control for high speed axial flux permanen...
 
A PROJECT REPORT SIM & SPEED CONTROL OF INDUCTIO DRIVE
A PROJECT REPORT SIM & SPEED CONTROL OF INDUCTIO DRIVEA PROJECT REPORT SIM & SPEED CONTROL OF INDUCTIO DRIVE
A PROJECT REPORT SIM & SPEED CONTROL OF INDUCTIO DRIVE
 
Ce33493496
Ce33493496Ce33493496
Ce33493496
 
Speed and Torque Control Challenge of PMSM
Speed and Torque Control Challenge of PMSMSpeed and Torque Control Challenge of PMSM
Speed and Torque Control Challenge of PMSM
 
The maximum power point tracking based-control system for small-scale wind tu...
The maximum power point tracking based-control system for small-scale wind tu...The maximum power point tracking based-control system for small-scale wind tu...
The maximum power point tracking based-control system for small-scale wind tu...
 
Speed control of three phase im by vf open and close loop method
Speed control of three phase im by vf open and close loop methodSpeed control of three phase im by vf open and close loop method
Speed control of three phase im by vf open and close loop method
 
1 s2.0-s0957415814001354-main
1 s2.0-s0957415814001354-main1 s2.0-s0957415814001354-main
1 s2.0-s0957415814001354-main
 
Da33612620
Da33612620Da33612620
Da33612620
 
Induction motor modelling and applications report
Induction motor modelling and applications reportInduction motor modelling and applications report
Induction motor modelling and applications report
 
Speed Control of PMSM by Sliding Mode Control and PI Control
Speed Control of PMSM by Sliding Mode Control and PI ControlSpeed Control of PMSM by Sliding Mode Control and PI Control
Speed Control of PMSM by Sliding Mode Control and PI Control
 
FPGA-Based Implementation Nonlinear Backstepping Control of a PMSM Drive
FPGA-Based Implementation Nonlinear Backstepping Control of a PMSM DriveFPGA-Based Implementation Nonlinear Backstepping Control of a PMSM Drive
FPGA-Based Implementation Nonlinear Backstepping Control of a PMSM Drive
 
High Speed SRM Using Vector Control for Electric Vehicle
High Speed SRM Using Vector Control for Electric VehicleHigh Speed SRM Using Vector Control for Electric Vehicle
High Speed SRM Using Vector Control for Electric Vehicle
 
DSP-Based Sensorless Speed Control of a Permanent Magnet Synchronous Motor us...
DSP-Based Sensorless Speed Control of a Permanent Magnet Synchronous Motor us...DSP-Based Sensorless Speed Control of a Permanent Magnet Synchronous Motor us...
DSP-Based Sensorless Speed Control of a Permanent Magnet Synchronous Motor us...
 
Field oriented control of induction motor based on
Field oriented control  of induction motor based onField oriented control  of induction motor based on
Field oriented control of induction motor based on
 
SPEED SYNCHRONIZATION OF MASTER –SLAVE D.C. MOTORS USING MICROCONTROLLER, FOR...
SPEED SYNCHRONIZATION OF MASTER –SLAVE D.C. MOTORS USING MICROCONTROLLER, FOR...SPEED SYNCHRONIZATION OF MASTER –SLAVE D.C. MOTORS USING MICROCONTROLLER, FOR...
SPEED SYNCHRONIZATION OF MASTER –SLAVE D.C. MOTORS USING MICROCONTROLLER, FOR...
 
Direct torque control of induction motor using space vector modulation
Direct torque control of induction motor using space vector modulationDirect torque control of induction motor using space vector modulation
Direct torque control of induction motor using space vector modulation
 

Andere mochten auch

Andere mochten auch (19)

Developing Accident Avoidance Program for Occupational Safety and Health
Developing Accident Avoidance Program for Occupational Safety and HealthDeveloping Accident Avoidance Program for Occupational Safety and Health
Developing Accident Avoidance Program for Occupational Safety and Health
 
Development of a power factor model for power sysytem loads
Development of a power factor model for power sysytem loadsDevelopment of a power factor model for power sysytem loads
Development of a power factor model for power sysytem loads
 
I0364050056
I0364050056I0364050056
I0364050056
 
Using the Physicochemical Properties and the Thermo-oxidation Degradation Pro...
Using the Physicochemical Properties and the Thermo-oxidation Degradation Pro...Using the Physicochemical Properties and the Thermo-oxidation Degradation Pro...
Using the Physicochemical Properties and the Thermo-oxidation Degradation Pro...
 
F0364032036
F0364032036F0364032036
F0364032036
 
Determination of the Cost of Production from the Raw Dung to the Final Outpu...
	Determination of the Cost of Production from the Raw Dung to the Final Outpu...	Determination of the Cost of Production from the Raw Dung to the Final Outpu...
Determination of the Cost of Production from the Raw Dung to the Final Outpu...
 
C0365025029
C0365025029C0365025029
C0365025029
 
A03620109
A03620109A03620109
A03620109
 
The International Journal of Engineering and Science (IJES)
The International Journal of Engineering and Science (IJES)The International Journal of Engineering and Science (IJES)
The International Journal of Engineering and Science (IJES)
 
The International Journal of Engineering and Science (IJES)
The International Journal of Engineering and Science (IJES)The International Journal of Engineering and Science (IJES)
The International Journal of Engineering and Science (IJES)
 
Implementing a Robust Network-Based Intrusion Detection System
Implementing a Robust Network-Based Intrusion Detection SystemImplementing a Robust Network-Based Intrusion Detection System
Implementing a Robust Network-Based Intrusion Detection System
 
H0365061066
H0365061066H0365061066
H0365061066
 
G0364037040
G0364037040G0364037040
G0364037040
 
E0366030040
E0366030040E0366030040
E0366030040
 
H03601043050
H03601043050H03601043050
H03601043050
 
D0365030036
D0365030036D0365030036
D0365030036
 
N0364080089
N0364080089N0364080089
N0364080089
 
C0366018024
C0366018024C0366018024
C0366018024
 
E03601027031
E03601027031E03601027031
E03601027031
 

Ähnlich wie L0364068072

Speed and position estimator of for sensorless PMSM drives using adaptive con...
Speed and position estimator of for sensorless PMSM drives using adaptive con...Speed and position estimator of for sensorless PMSM drives using adaptive con...
Speed and position estimator of for sensorless PMSM drives using adaptive con...
International Journal of Power Electronics and Drive Systems
 
Control of Four Switch Three Phase Inverter Fed Induction Motor Drives Based ...
Control of Four Switch Three Phase Inverter Fed Induction Motor Drives Based ...Control of Four Switch Three Phase Inverter Fed Induction Motor Drives Based ...
Control of Four Switch Three Phase Inverter Fed Induction Motor Drives Based ...
IJPEDS-IAES
 
14. a variable speed, sensorless, induction motor drive
14. a variable speed, sensorless, induction motor drive14. a variable speed, sensorless, induction motor drive
14. a variable speed, sensorless, induction motor drive
satya_m
 

Ähnlich wie L0364068072 (20)

Speed Sensor less Control and Estimation Based on Mars for Pmsm under Sudden ...
Speed Sensor less Control and Estimation Based on Mars for Pmsm under Sudden ...Speed Sensor less Control and Estimation Based on Mars for Pmsm under Sudden ...
Speed Sensor less Control and Estimation Based on Mars for Pmsm under Sudden ...
 
Ce33493496
Ce33493496Ce33493496
Ce33493496
 
A Novel Technique for Tuning PI-controller in Switched Reluctance Motor Drive...
A Novel Technique for Tuning PI-controller in Switched Reluctance Motor Drive...A Novel Technique for Tuning PI-controller in Switched Reluctance Motor Drive...
A Novel Technique for Tuning PI-controller in Switched Reluctance Motor Drive...
 
Da33612620
Da33612620Da33612620
Da33612620
 
Induction motor harmonic reduction using space vector modulation algorithm
Induction motor harmonic reduction using space vector modulation algorithmInduction motor harmonic reduction using space vector modulation algorithm
Induction motor harmonic reduction using space vector modulation algorithm
 
Speed and position estimator of for sensorless PMSM drives using adaptive con...
Speed and position estimator of for sensorless PMSM drives using adaptive con...Speed and position estimator of for sensorless PMSM drives using adaptive con...
Speed and position estimator of for sensorless PMSM drives using adaptive con...
 
International Journal of Engineering Research and Development (IJERD)
International Journal of Engineering Research and Development (IJERD)International Journal of Engineering Research and Development (IJERD)
International Journal of Engineering Research and Development (IJERD)
 
Speed Tracking of Field Oriented Control Permanent Magnet Synchronous Motor U...
Speed Tracking of Field Oriented Control Permanent Magnet Synchronous Motor U...Speed Tracking of Field Oriented Control Permanent Magnet Synchronous Motor U...
Speed Tracking of Field Oriented Control Permanent Magnet Synchronous Motor U...
 
Speed Sensor less DTC of VSI fed Induction Motor with Simple Flux Regulation ...
Speed Sensor less DTC of VSI fed Induction Motor with Simple Flux Regulation ...Speed Sensor less DTC of VSI fed Induction Motor with Simple Flux Regulation ...
Speed Sensor less DTC of VSI fed Induction Motor with Simple Flux Regulation ...
 
Design of H_∞ for induction motor
Design of H_∞ for induction motorDesign of H_∞ for induction motor
Design of H_∞ for induction motor
 
Control of Four Switch Three Phase Inverter Fed Induction Motor Drives Based ...
Control of Four Switch Three Phase Inverter Fed Induction Motor Drives Based ...Control of Four Switch Three Phase Inverter Fed Induction Motor Drives Based ...
Control of Four Switch Three Phase Inverter Fed Induction Motor Drives Based ...
 
Fuzzy Controlled Permanent Magnet Synchronous Motor Drive by Space Vector Pul...
Fuzzy Controlled Permanent Magnet Synchronous Motor Drive by Space Vector Pul...Fuzzy Controlled Permanent Magnet Synchronous Motor Drive by Space Vector Pul...
Fuzzy Controlled Permanent Magnet Synchronous Motor Drive by Space Vector Pul...
 
Total Harmonic Distortion Analysis of a Four Switch 3-Phase Inverter Fed Spee...
Total Harmonic Distortion Analysis of a Four Switch 3-Phase Inverter Fed Spee...Total Harmonic Distortion Analysis of a Four Switch 3-Phase Inverter Fed Spee...
Total Harmonic Distortion Analysis of a Four Switch 3-Phase Inverter Fed Spee...
 
14. a variable speed, sensorless, induction motor drive
14. a variable speed, sensorless, induction motor drive14. a variable speed, sensorless, induction motor drive
14. a variable speed, sensorless, induction motor drive
 
IRJET - Vector Control of Permenant Magnet Synchronous Motor
IRJET -  	  Vector Control of Permenant Magnet Synchronous MotorIRJET -  	  Vector Control of Permenant Magnet Synchronous Motor
IRJET - Vector Control of Permenant Magnet Synchronous Motor
 
Simulation and Analysis of Modified DTC of PMSM
Simulation and Analysis of Modified DTC of PMSMSimulation and Analysis of Modified DTC of PMSM
Simulation and Analysis of Modified DTC of PMSM
 
F05613947
F05613947F05613947
F05613947
 
A Robust EKF Based Speed Estimator and Fuzzy Optimization Technique for Senso...
A Robust EKF Based Speed Estimator and Fuzzy Optimization Technique for Senso...A Robust EKF Based Speed Estimator and Fuzzy Optimization Technique for Senso...
A Robust EKF Based Speed Estimator and Fuzzy Optimization Technique for Senso...
 
(1 4) nandhini iisrt
(1 4) nandhini iisrt(1 4) nandhini iisrt
(1 4) nandhini iisrt
 
IRJET-Investigation of Three Phase Induction Speed Control Strategies using N...
IRJET-Investigation of Three Phase Induction Speed Control Strategies using N...IRJET-Investigation of Three Phase Induction Speed Control Strategies using N...
IRJET-Investigation of Three Phase Induction Speed Control Strategies using N...
 

KĂŒrzlich hochgeladen

XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
ssuser89054b
 
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
9953056974 Low Rate Call Girls In Saket, Delhi NCR
 
notes on Evolution Of Analytic Scalability.ppt
notes on Evolution Of Analytic Scalability.pptnotes on Evolution Of Analytic Scalability.ppt
notes on Evolution Of Analytic Scalability.ppt
MsecMca
 
Kuwait City MTP kit ((+919101817206)) Buy Abortion Pills Kuwait
Kuwait City MTP kit ((+919101817206)) Buy Abortion Pills KuwaitKuwait City MTP kit ((+919101817206)) Buy Abortion Pills Kuwait
Kuwait City MTP kit ((+919101817206)) Buy Abortion Pills Kuwait
jaanualu31
 

KĂŒrzlich hochgeladen (20)

kiln thermal load.pptx kiln tgermal load
kiln thermal load.pptx kiln tgermal loadkiln thermal load.pptx kiln tgermal load
kiln thermal load.pptx kiln tgermal load
 
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
 
COST-EFFETIVE and Energy Efficient BUILDINGS ptx
COST-EFFETIVE  and Energy Efficient BUILDINGS ptxCOST-EFFETIVE  and Energy Efficient BUILDINGS ptx
COST-EFFETIVE and Energy Efficient BUILDINGS ptx
 
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
 
Introduction to Serverless with AWS Lambda
Introduction to Serverless with AWS LambdaIntroduction to Serverless with AWS Lambda
Introduction to Serverless with AWS Lambda
 
notes on Evolution Of Analytic Scalability.ppt
notes on Evolution Of Analytic Scalability.pptnotes on Evolution Of Analytic Scalability.ppt
notes on Evolution Of Analytic Scalability.ppt
 
data_management_and _data_science_cheat_sheet.pdf
data_management_and _data_science_cheat_sheet.pdfdata_management_and _data_science_cheat_sheet.pdf
data_management_and _data_science_cheat_sheet.pdf
 
HOA1&2 - Module 3 - PREHISTORCI ARCHITECTURE OF KERALA.pptx
HOA1&2 - Module 3 - PREHISTORCI ARCHITECTURE OF KERALA.pptxHOA1&2 - Module 3 - PREHISTORCI ARCHITECTURE OF KERALA.pptx
HOA1&2 - Module 3 - PREHISTORCI ARCHITECTURE OF KERALA.pptx
 
AIRCANVAS[1].pdf mini project for btech students
AIRCANVAS[1].pdf mini project for btech studentsAIRCANVAS[1].pdf mini project for btech students
AIRCANVAS[1].pdf mini project for btech students
 
Thermal Engineering -unit - III & IV.ppt
Thermal Engineering -unit - III & IV.pptThermal Engineering -unit - III & IV.ppt
Thermal Engineering -unit - III & IV.ppt
 
School management system project Report.pdf
School management system project Report.pdfSchool management system project Report.pdf
School management system project Report.pdf
 
DC MACHINE-Motoring and generation, Armature circuit equation
DC MACHINE-Motoring and generation, Armature circuit equationDC MACHINE-Motoring and generation, Armature circuit equation
DC MACHINE-Motoring and generation, Armature circuit equation
 
Unleashing the Power of the SORA AI lastest leap
Unleashing the Power of the SORA AI lastest leapUnleashing the Power of the SORA AI lastest leap
Unleashing the Power of the SORA AI lastest leap
 
Thermal Engineering-R & A / C - unit - V
Thermal Engineering-R & A / C - unit - VThermal Engineering-R & A / C - unit - V
Thermal Engineering-R & A / C - unit - V
 
Computer Lecture 01.pptxIntroduction to Computers
Computer Lecture 01.pptxIntroduction to ComputersComputer Lecture 01.pptxIntroduction to Computers
Computer Lecture 01.pptxIntroduction to Computers
 
Kuwait City MTP kit ((+919101817206)) Buy Abortion Pills Kuwait
Kuwait City MTP kit ((+919101817206)) Buy Abortion Pills KuwaitKuwait City MTP kit ((+919101817206)) Buy Abortion Pills Kuwait
Kuwait City MTP kit ((+919101817206)) Buy Abortion Pills Kuwait
 
Learn the concepts of Thermodynamics on Magic Marks
Learn the concepts of Thermodynamics on Magic MarksLearn the concepts of Thermodynamics on Magic Marks
Learn the concepts of Thermodynamics on Magic Marks
 
Generative AI or GenAI technology based PPT
Generative AI or GenAI technology based PPTGenerative AI or GenAI technology based PPT
Generative AI or GenAI technology based PPT
 
Online food ordering system project report.pdf
Online food ordering system project report.pdfOnline food ordering system project report.pdf
Online food ordering system project report.pdf
 
BhubaneswarđŸŒčCall Girls Bhubaneswar ❀Komal 9777949614 💟 Full Trusted CALL GIRL...
BhubaneswarđŸŒčCall Girls Bhubaneswar ❀Komal 9777949614 💟 Full Trusted CALL GIRL...BhubaneswarđŸŒčCall Girls Bhubaneswar ❀Komal 9777949614 💟 Full Trusted CALL GIRL...
BhubaneswarđŸŒčCall Girls Bhubaneswar ❀Komal 9777949614 💟 Full Trusted CALL GIRL...
 

L0364068072

  • 1. The International Journal Of Engineering And Science (IJES) || Volume || 3 || Issue || 6 || Pages || 68-72|| 2014 || ISSN (e): 2319 – 1813 ISSN (p): 2319 – 1805 www.theijes.com The IJES Page 68 Sensorless Control Algorithm For High Dynamic Performance PMSM Shruthi N M, Dr. Shivanna S, Prof.K.V.Devadas Department of Electrical and Electronics Engineering KVG College of Engineering, Sullia, D.K Karnataka, India -------------------------------------------------------ABSTRACT---------------------------------------------------- A low-time-consuming and low-cost sensorless-control algorithm for high-dynamic performance permanent-magnet synchronous motors, both surface and internal permanent-magnet mounted for position and speed estimation is introduced. This control algorithm is based on the estimation of rotor speed and angular position starting from the back electromotive force space-vector determination without voltage sensors by using the reference voltages given by the current controllers instead of the actual ones. This choice obviously introduces some errors that must be vanished by means of a compensating function. The novelties of the proposed estimation algorithm are the position-estimation equation and the process of compensation of the inverter phase lag that also suggests the final mathematical form of the estimation. The mathematical structure of the estimation guarantees a high degree of robustness against parameter variation. The proposed low-cost sensorless-control algorithm shows the high dynamic performances of the sensorless-control system also with reduced equipment. --------------------------------------------------------------------------------------------------------------------------------------- Date of Submission: 08 June 2014 Date of Publication: 25 June 2014 --------------------------------------------------------------------------------------------------------------------------------------- I. INTRODUCTION Permanent magnet synchronous motor drives are becoming more popular in industrial applications, machine tools and residential applications. In a PMSM the excitation is provided by means of using permanent magnets mounted on the rotor. PMSM present numerous advantages such as high efficiency, high torque to inertia ratio, high power density, reliability and long life. Industrial applications require variable speed drive systems. In order to optimally control a PMSM, the position and or the speed of the shaft must be known. The position and speed of the shaft is usually determined using a position transducer or encoder. By knowing the rotor position, the PMSM can be controlled in such a way that it provides full torque at zero speed. This is achieved by maintaining an appropriate angle between the stator and rotor magnetic fields. However the use of a position encoder adds some important disadvantages to the PMSM drive system including increased drive system cost, increased complexity and maintenance, reduced reliability and increased size of the drive system. In order to solve these problems related to the use of position transducers, the sensor-less control of PMSM has been proposed. The idea is to get rid of the position transducer and try to determine the actual rotor position by measuring other variables such as voltages and currents in the PMSM. In the proposed scheme, a low-time-consuming and low-cost sensorless-control algorithm for high- dynamic performance permanent- magnet synchronous motors, both surface and internal permanent-magnet mounted for position and speed estimation is introduced. The sensorless-control system is based on the back EMF space-vector estimation. The use of the back EMF space vector is advantageous with respect to any other system using flux estimation because of the integrator elimination avoiding the problem of integration drift that requires opportune devices or subsystems for its compensation. The mathematical structure of the estimation guarantees a high degree of robustness against parameter variation.
  • 2. Sensorless Control Algorithm For
 www.theijes.com The IJES Page 69 II. PROBLEM DEFINITION High performance control of AC machines requires the information of several electromagnetic and mechanical variables including currents, voltages, fluxes, speed and position. Current and voltage sensors are robust and give sufficiently accurate measurements, and so are adopted for closed loop control. The speed and position sensors are more delicate and often pose serious threats to control issues, so speed sensorless operation is sought in many applications that require open loop control. To extract speed and position information without using speed sensors, back emf sensorless control algorithm has been proposed. III. METHODOLOGY Description of the Estimator : Fig. 1. Electrical-drive machine block diagram with sensorless control for PMSM. The proposed sensorless-control technique is the determination of the back EMF space vector without voltage measurements by using the reference voltages instead of the actual ones so that the system is a low-cost and reliable one. In the control system, whose block scheme is shown in Fig. 1, the motor supply voltage values that constitute some inputs of the estimator are replaced with reference-voltage signals (va* ,vb* and vc*) generated by the current regulator. Considering the inverter reference-voltage signals instead of the real supply voltages implies, obviously, some approximations in the back EMF determination. It is worthwhile to observe that better performances are obtained if the rotor position and speed determination would be committed directly to the determination of the back EMF space vector eS and not to the determination of the flux space vector. This is essentially due to the absence of flux signal integrator. Furthermore, elimination of analog integrators improves the benefits in analog circuitry due to the absence of components suffering from thermal drift. In the proposed estimator, the error signal is processed by the PI compensator to derive the speed of the rotor and the angle of the rotor is calculated by integrating the estimated speed. This makes the vulnerable to noise. The experimental research has shown that the proposed estimator provides very accurate and robust speed information for the application. But at zero and low speed, the back emf voltage is not enough for the proposed vector control. Hence for the seamless operation from zero speed, the current has been controlled with a constant magnitude and a pre-patterned frequency. Here the synchronous reference frame is derived by integrating the frequency. MACHINE DETAILS
  • 3. Sensorless Control Algorithm For
 www.theijes.com The IJES Page 70 IV. MATLAB MODEL Simulations been made in order to validate the proposed estimation algorithm under two conditions; 1) step change in motor speed from 400 up to 4000 r/min (nominal speed) and back again to 400 r/min; 2) sudden application of a 1.8-N · m load torque while the motor runs at 4000 r/min speed; SIMULATION RESULT 1) When step change in motor speed from 400 up to 4000 r/min (nominal speed) and back again to 400 r/min, the control block and the simulation s are shown Fig 2.Real &estimated speed for step change in motor speed from 400 up to 4000rpm Fig.3 Real& estimated position for step change in motor speed from 400 up to 4000rpm
  • 4. Sensorless Control Algorithm For
 www.theijes.com The IJES Page 71 2)During sudden application of a 1.8-N · m load torque while the motor runs at 4000 r/min speed , the control block and the simulations are shown: Fig.4 Real &estimated speed & position when the motor runs at 4000rpm Fig.5 Real &estimated position when the motor runs at 4000rpm V. CONCLUSION Back EMF determination shows the high dynamic performance of the proposed algorithm. The proposed scheme make the electrical drive cheaper and suitable for industrial drives both surface and internal mounted PM. The algorithm is considered a very good alternative in terms of economy and precision without lack of performances and exhibits an increase in reliability. REFERENCES [1] M. Rashed, P. F. A. MacConnell, A. Fraser, P. Stronach, and S. Acarnley, ―Sensorless indirect-rotor-field-orientation speed control of a permanentmagnet synchronous motor with stator-resistance estimation,‖ IEEE Trans. Ind. Electron., vol. 54, no. 3, pp. 1664– 1675, Jun. 2007. [2] T. D. Batzel and K. Y. Lee, ―Electric propulsion with the sensorless permanent magnet synchronous motor: Model and approach,‖ IEEE Trans. Energy Convers., vol. 20, no. 4, pp. 818–825, Dec. 2005. [3] J.-K. Seok, J.-K. Lee, and D.-C. Lee, ―Sensorless speed control of nonsalient permanent magnet synchronous motor using rotor- positiontracking PI controller,‖ IEEE Trans. Ind. Electron., vol. 53, no. 2, pp. 399– 405, Apr. 2006.
  • 5. Sensorless Control Algorithm For
 www.theijes.com The IJES Page 72 [4] O. Wallmark and L. Harnefors, ―Sensorless control of salient PMSM drives in the transition region,‖ IEEE Trans. Ind. Electron., vol. 53, no. 4, pp. 1179–1187, Jun. 2006. [5] M. J. Corley and R. D. Lorenz, ―Rotor position and velocity estimation for a salient-pole permanent magnet synchronous machine at standstill and high speed,‖ IEEE Trans. Ind. Appl., vol. 34, no. 4, pp. 784–789, Jul./Aug. 1998. [6] S. Ogasawara and H. Akagi, ―Implementation and position control performance of a position-sensorless IPM motor drive system based on magnetic saliency,‖ IEEE Trans. Ind. Appl., vol. 34, no. 4, pp. 806–812, Jul./ Aug. 1998. [7] S. Ogasawara and H. Akagi, ―An approach to real-time position estimation at zero and low speed for PM motor based on saliency,‖ IEEE Trans. Ind. Appl., vol. 34, no. 1, pp. 163–168, Jan./Feb. 1998. [8] G. Pesse and T. Paga, ―A permanent magnet synchronous motor flux control scheme without position sensor,‖ in Proc. EPE, Trondheim, Norway, 1997, pp. 553–568. [9] J. Barrenscheen, D. Flieller, D. Kalinowski, and J. P. Louis, ―A new sensorless speed and torque control for permanent magnet synchronous motors: Realisation and modelling,‖ in Proc. EPE, Sevilla, Spain, 1995, pp. 839–844. [10] J. Oyama, T. Abe, T. Higuchi, E. Yamada, and K. Shibahara, ―Position sensor-less control of half-wave rectified brushless synchronous motor,‖ in Proc. EPE, Sevilla, Spain, 1995, pp. 149–153. [11] Z. M. A. Peixoto, F. M. F. Sa, P. F. Seixas, B. R. Menezes, and P. C. Cortizo, ―Design of sliding observer for back electromotive force, position and speed estimation of interior magnet motors,‖ in Proc. EPE, Sevilla, Spain, 1995, pp. 833–838. [12] L. Ben-Brahim and A. Kawamura, ―A fully digitized field-oriented controlled induction motor drive using only current sensor,‖ IEEE Trans. Ind. Appl., vol. 39, no. 3, pp. 241–249, Jun. 1992. [13] J. Holtz, ―pulsewidth modulation—A survey,‖ IEEE Trans. Ind. Electron., vol. 39, no. 5, pp. 410–420, Oct. 1992. [14] A. Cataliotti, F. Genduso, A. Raciti, and G. R. Galluzzo, ―Generalized PWM–VSI control algorithm based on a universal duty-cycle expression: Theoretical analysis, simulation results, and experimental validations,‖ IEEE Trans. Ind. Electron., vol. 54, no. 3, pp. 1569–1580, Jun. 2007. [15] N. Matsui and M. Shigyo, ―Brushless dc motor control without sensors,‖ IEEE Trans. Ind. Appl., vol. 28, no. 1, pp. 120–127, Jan./Feb. 1992.