Robust Sensorless Model-Predictive Torque Flux Control for High-Performance Induction Motor Drives

被引:14
作者
Aziz, Ahmed G. Mahmoud A. [1 ,2 ]
Rez, Hegazy [3 ]
Diab, Ahmed A. Zaki [1 ]
机构
[1] Minia Univ, Dept Elect Engn, Fac Engn, Al Minya 61111, Egypt
[2] El Minia High Inst Engn & Technol, Al Minya 61111, Egypt
[3] Prince Sattam Bin Abdulaziz Univ, Coll Engn Wadi Addawaser, Wadi Aldawaser 11991, Saudi Arabia
关键词
induction motor; model predictive; sensorless; high performance; VECTOR CONTROL; OPTIMIZATION; OBSERVER; SCHEMES;
D O I
10.3390/math9040403
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
This paper introduces a novel sensorless model-predictive torque-flux control (MPTFC) for two-level inverter-fed induction motor (IM) drives to overcome the high torque ripples issue, which is evidently presented in model-predictive torque control (MPTC). The suggested control approach will be based on a novel modification for the adaptive full-order-observer (AFOO). Moreover, the motor is modeled considering core losses and a compensation term of core loss applied to the suggested observer. In order to mitigate the machine losses, particularly at low speed and light load operations, the loss minimization criterion (LMC) is suggested. A comprehensive comparative analysis between the performance of IM drive under conventional MPTC, and those of the proposed MPTFC approaches (without and with consideration of the LMC) has been carried out to confirm the efficiency of the proposed MPTFC drive. Based on MATLAB(R) and Simulink(R) from MathWorks(R) (2018a, Natick, MA 01760-2098 USA) simulation results, the suggested sensorless system can operate at very low speeds and has the better dynamic and steady-state performance. Moreover, a comparison in detail of MPTC and the proposed MPTFC techniques regarding torque, current, and fluxes ripples is performed. The stability of the modified adaptive closed-loop observer for speed, flux and parameters estimation methodology is proven for a wide range of speeds via Lyapunov's theorem.
引用
收藏
页码:1 / 29
页数:27
相关论文
共 47 条
[21]   Model Predictive Torque and Flux Control Minimizing Current Distortions [J].
Karamanakos, Petros ;
Geyer, Tobias .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2019, 34 (03) :2007-2012
[22]   DSP-BASED SPEED ADAPTIVE FLUX OBSERVER OF INDUCTION-MOTOR [J].
KUBOTA, H ;
MATSUSE, K ;
NAKANO, T .
IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 1993, 29 (02) :344-348
[23]  
Kubota K., 1992, Proceedings of the 1992 International Conference on Industrial Electronics, Control, Instrumentation, and Automation. Power Electronics and Motion Control (Cat. No.92CH3137-7), P67, DOI 10.1109/IECON.1992.254603
[24]  
Kumar Purushottam, 2021, Nanoelectronics, Circuits and Communication Systems. Proceeding of NCCS 2019. Lecture Notes in Electrical Engineering (LNEE 692), P441, DOI 10.1007/978-981-15-7486-3_40
[25]   Comparative assessment of two different model reference adaptive system schemes for speed-sensorless control of induction motor drives [J].
Kumar, Rakesh ;
Das, Sukanta ;
Chattopadhyay, Ajit Kumar .
IET ELECTRIC POWER APPLICATIONS, 2016, 10 (02) :141-154
[26]   An Efficient Predictive Current Control Strategy for a Four-Level Open-End Winding Induction Motor Drive [J].
Lakhimsetty, Suresh ;
Somasekhar, V. T. .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2020, 35 (06) :6198-6207
[27]  
Matsuse K, 1995, IEEE IND APPLIC SOC, P327, DOI 10.1109/IAS.1995.530318
[28]   Predictive Torque Control of Induction Machines Based on State-Space Models [J].
Miranda, Hernan ;
Cortes, Patricio ;
Yuz, Juan I. ;
Rodriguez, Jose .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2009, 56 (06) :1916-1924
[29]   DTFC versus MPC for induction motor control reconfiguration after inverter faults [J].
Nacusse, Matias A. ;
Romero, Monica ;
Haimovich, Hernan ;
Seron, Maria M. .
2010 CONFERENCE ON CONTROL AND FAULT-TOLERANT SYSTEMS (SYSTOL'10), 2010, :759-764
[30]   A modified duty-modulated predictive current control for permanent magnet synchronous motor drive [J].
Parvathy, M. L. ;
Eshwar, Kusuma ;
Thippiripati, Vinay Kumar .
IET ELECTRIC POWER APPLICATIONS, 2021, 15 (01) :25-38