references - Shodhganga

advertisement
155
REFERENCES
1.
Abdellfattah, B. R., Cheriti, A., Olivier, G. and Sicard, P. “FieldOriented Control of Induction Motors Using Neural-Network
Decouplers”, IEEE Trans. Power Electronics, Vol. 12, No. 4, pp. 752-763,
1997.
2.
Abdesh Khan, M. and Azizur Rahman, M. “Real-Time Implementation
of a Wavelet based Speed Controller for Induction Motor Drives”, in
Proc. IEEE Canadian Conference on Electrical and Computer
Engineering, Vancouver, Canada, 2007.
3.
Abdesh Khan, M. and Azizur Rahman, M. A. “New Wavelet Based
Diagnosis and Protection of Faults in Induction Motor Drives”, in
Proc. IEEE International Conference on Power Electronics Specialists
Conference, Rhodes, Greece, 2008.
4.
Abdesh Khan, M., Nasir Uddin, M. and Aziz Rahman, M. “A Novel
Wavelet Neural Network Based Robust Control of Interior Permanent
Magnet Motor Drives” in Proc. IEEE Industry Applications Society
Annual Meeting, Orlando, USA, 2011.
5.
Addison, P. S. “The illustrated Wavelet Transform Handbook”,
Institute of Physics Publishing, Bristol, 2002.
6.
Adnan, D., Mustafa, K. G., Habibur Rehman, Nihat, I. and Longya, X.
“Design and Implementation of a New sliding Mode Observer for
Speed Sensorless Control of Induction Machine”, IEEE Trans.
Industrial Electronics, Vol. 49, No. 5, pp. 1177-1182, 2002.
7.
Alanis, A. Y., Sanchez, E. N. and Loukianov, A. G. “Real-time
Discrete Backstepping Neural Control for Induction Motors”, IEEE
Trans. Control Systems Technology, Vol. 19, No. 2, pp. 359-366,
2011.
8.
Balda, J. C. and Pillay, P. “Speed Controller design for a VectorControlled Permanent Magnet Synchronous Motor Drive with
Parameter Variation”, in Proc. IEEE Industry Applications Society
Annual Meeting, Seattle, USA, 1990.
156
9.
Bose, B. K. “Adjustable Speed AC drives - A Technical status
review”, Proceedings of the IEEE, Vol. 70, No. 2, pp.116-135, 1982.
10.
Bose, B. K. “Technological trends in Microcomputer control of
Electrical Machines”, IEEE Trans. Industrial Electronics, Vol. 35,
No. 1, pp.160-177, 1988.
11.
Bose, B. K. “Expert System, Fuzzy Logic, and Neural Network
Applications in Power Electronics and Motion Control”, Proceedings
of the IEEE, Vol. 82, No. 8, pp.1303-1323, 1994.
12.
Bose, B. K. “Modern power electronics and ac drives,” PearsonPrentice Hall Publications, New Delhi, 2006.
13.
Bose, B. K. “Power electronics and Motor drives - Recent progress and
perspective”, IEEE Trans. Industrial Electronics, Vol. 56, No. 2, pp.
581-588, 2009.
14.
Bose, B. K. “Control and Estimation Techniques of High power
Variable Speed AC Drives”, IEEE Power Electronics Society
Newsletter, Third Quarter, pp. 26-37, 2011.
15.
Calcev. G., Goreza, R. and De Neyera, M. “Passivity Approach to
Fuzzy Control Systems”, Automatica, Vol. 34, No. 3, pp. 339-344,
1998.
16.
Calcev, G. “Some Remarks on the Stability of Mamdani Fuzzy Control
Systems”, IEEE Trans. Fuzzy Systems, Vol. 6, No. 3, 436-442, 1998.
17.
Chao, K. H. and Liaw, C.M. “Fuzzy robust speed controller for
detuned field-oriented induction motor drive”, IEE proceedingsElectric Power Applications, Vol. 147, No. 1, pp. 29-36, 2000.
18.
Chen, T. C. and Sheu, T. T. “Model Reference Neural Network
Controller for Induction Motor Speed Control”, IEEE Trans. Energy
Conversion, Vol. 17, No. 2, pp. 157-163, 2002.
19.
Chou, A. M. G. R. and Soltani, J. “Robust Direct torque and flux
control of adjustable speed sensorless Induction machine Drive based
on Space Vector Modulation using a PI predictive Controller”,
Electrical Engineering, Vol. 88, pp. 485-496, 2006.
20.
Cristian, L., Ion, B. and Frede, B. “Comparative study of Adaptive and
Inherently sensorless observers for Variable Speed Induction Motor
Drives”, IEEE Trans. Industrial Electronics, Vol. 53, No. 1, pp. 57-65,
2006.
157
21.
Da Zhang, Hui Li and Emmanuel G. Collins, “Digital Anti-Windup PI
Controllers for Variable Speed Motor Drives using FPGA and
Stochastic Theory”, IEEE Trans. Power Electronics, Vol. 21, No. 5,
pp. 1496-1501, 2006.
22.
Dragan, D. K., Slobodan, B. K. and Emil Levi, “Design of a PID-like
compound fuzzy logic controller”, Engineering Applications of
Artificial Intelligence, Vol. 14, No. 6, pp. 785-803, 2001.
23.
Fabrice, J., Francois, M., Javier, M. V. and Rodolphe, S. “Adaptive
regulation of Vector Controlled Induction Motors”, IEEE Trans.
Control Systems Technology, Vol. 17, No. 3, pp. 646-657, 2009.
24.
Fonseca, J., Afonso, J. L., Martins, J. S. and Couto, C. “Fuzzy logic
speed control of an induction motor”, Microprocessors and
Microsystems, Vol. 22, No. 9, pp. 523-534, 1999.
25.
Gi-Won Chang, Gerardo Espinosa-Perez, Eduardo Mendis and Romeo
Ortega, “Tuning rules for the PI gains of Field oriented Controllers of
Induction Motors”, IEEE Trans. Industrial Electronics, Vol. 47, No. 3,
pp. 592-602, 2000.
26.
Hamid, E. Y. and Kawasaki, Z. I. “Wavelet-Based Data Compression
of Power System Disturbances Using the Minimum Description
Length Criterion”, IEEE Trans. Power Delivery, Vol. 17, No. 2,
pp. 460-466, 2002.
27.
Hang, C. C. and Sin, K. K. “On-Line Auto Tuning of PID Controllers
based on the Cross-Correlation Technique”, IEEE Trans. Industrial
Electronics, Vol. 38, No. 6, pp. 428-437, 1991.
28.
Hazzab, A., Bousserhane, I. K., Zerbo, M. and Sicard, P. “Real Time
Implementation of Fuzzy Gain Scheduling of PI Controller for
Induction Motor Machine Control”, Neural Processing Letters,
Vol. 24, No. 3, pp. 203-215, 2006.
29.
Heredia, J. R., Perez Hidalgo, F. and Duran Paz, J. L. “Sensorless
Control of Induction Motors by Artificial Neural Networks”, IEEE
Trans. Industrial Electronics, Vol. 48, No. 5, pp.1038-1040, 2001.
30.
Hu, C. F., Hong, R. B. and Liu, C. H. “Stability Analysis and PI
Controller tuning for a Speed Sensorless Vector Controlled Induction
motor Drive”, in Proc. 30th Annual Conference of Industrial
Electronics Society, Busan, Korea, 2004.
158
31.
Ian Shaw, “Fuzzy Control of Industrial Systems: Theory and
Applications”, Kluwer Academic Publishers, Massachusetts, 1998.
32.
Jie, Z. and Thomas, H. B. “A Fast Variable Structure Current
Controller for an Induction Machine Drive”, IEEE Trans. Industry
Applications, Vol. 26, No. 3, pp. 415-419, 1990.
33.
Joao, O. P. P., Bose, B. K., Borges da Silva, L. E. and Kazmierkowski,
M. P. “A Neural Network Based Space Vector PWM Controller for
Voltage-Fed Inverter Induction Motor Drive”, IEEE Trans. Industry
Applications, Vol. 36, No. 6, pp. 1628-1636, 2000.
34.
Jung, J., Lim, S. and Nam, K. “PI type Decoupling scheme for High
Speed Operation of Induction Motors” in Proc. 28th Annual IEEE
Power Electronics Specialties Conference, MO, USA,1997.
35.
Khan, M. A. S. K. and Rahman, A. M. “Implementation of a New
Wavelet Controller for Interior Permanent-Magnet Motor Drives”,
IEEE Trans. Industry Applications, Vol. 44, No. 6, pp. 1957-1965,
2008.
36.
Khan, M. A. S. K. and Rahman, A. M. “A Novel Neuro-Wavelet
Based Self-tuned Wavelet Controller for IPM Motor Drives”, IEEE
Trans. Industry Applications, Vol. 46, No. 3, pp. 1194-1203, 2010.
37.
Kim, S. H., Park, T. S., Yoo, J. Y. and Park, G. T. “Speed-Sensorless
Vector Control of an Induction Motor using Neural Network Speed
Estimation”, IEEE Trans. Industrial Electronics, Vol. 48, No. 3,
pp. 609-614, 2001.
38.
Krishnan, R. “Electric Motor Drives: Modeling, Analysis and
Control”, Prentice Hall Publications, New Delhi, 2001.
39.
Kung, Y.S., Liaw, C. M. and Ouyang, M. S. “Adaptive Speed Control
for Induction Motor Drives using Neural Networks”, IEEE Trans.
Industrial Electronics, Vol. 42, No. 1, pp. 25-32, 1995.
40.
Kwan, C. M. and Lewis, F. L. “Robust Back stepping Control of
Induction Motors using Neural Networks”, IEEE Trans. Neural
Networks, Vol. 11, No. 5, pp. 1178-1187, 2000.
41.
Lai, Y. S. and Lin, J. C. “New Hybrid Fuzzy Controller for Direct
Torque Control Induction Motor Drives”, IEEE Trans. Power
Electronics, Vol. 18, No. 5, pp. 1211-1219, 2003.
159
42.
Laroussi, K. and Zelmat, M. “Fuzzy Adaptation of the PI Controller
Parameters Applied for Induction Motor”, in proc. IEEE International
Conference on Industrial Technology, Hammamet, Tunisia, 2004.
43.
Liaw, C. M., Pan, C. T. and Chen, Y. C. “ Design and Implementation
of an Adaptive Controller for Current-fed Induction Motor”, IEEE
Trans. Industrial Electronics, Vol. 35, No. 3, pp. 393-401, 1988.
44.
Liaw, C. M. and Lin, F. J. “A Discrete Adaptive Induction Position
Servo Drive”, IEEE Trans. Energy Conversion, Vol. 8, No. 3,
pp. 350-356, 1993.
45.
Lin, F. J. “A Digital Processor base robust Integral-Proportional
Controller for an Induction Motor Servo Drive”, Electric Power
System Research, Vol. 37, pp. 129-136, 1996.
46.
Lin, F. J. “Robust speed Controlled Induction Motor Drive using EKF
and RLS estimators”, IEE proceedings of Electric Power Applications,
Vol. 43, No. 3, pp. 186-192, 1996.
47.
Lin, F. J. and Su, H. M. “A High-Performance Induction Motor Drive
with On-line Rotor Time Constant Estimator”, IEEE Trans. Energy
Conversion, Vol. 12, No. 4, pp. 297-303, 1997.
48.
Lin, F. J., Chou, W. D. and Huang, P. K. “Adaptive sliding-mode
controller based on real-time genetic algorithm for induction motor
servo drive”, IEE Proceedings-Electric Power Applications, Vol. l5,
No. 1, pp. 1-13, 2003.
49.
Lin, F. J., Shen, P. H. and Kung, Y. S. “Adaptive Wavelet Neural
Network Control for Linear Synchronous Motor Servo Drive”, IEEE
Trans. Magnetics, Vol. 41, No. 12, 4401-4412, 2005.
50.
Li, Z. and Ruan, Y. “A Novel Control Method Based on Wavelet
Neural Networks for Direct Torque Control in Induction Motor
Drives”, in Proc. International Conference on Electrical Machines and
Systems, Wuhan, China, 2008.
51.
Li, H. and Hikihara, T. “Limit Cycle of Induction Motor Drive and its
Control”, IEICE Trans. Fundamentals, Vol. 88A, No. 10, pp. 25212526, 2005.
52.
Liu, T. H., Wang, K. L. and Chen, C. G. “Frequency-domain optimal
Controller design for Permanent linear synchronous Motor”, in Proc.
IEEE Electrical Machines and Drives Conference, Wisconsin, USA,
2003.
160
53.
Madadi Kojabadi, H. “Simulation and Experimental Studies of Model
reference Adaptive system for Sensorless Induction Motor Drive”,
Simulation Modeling Practice and Theory, Vol. 13, pp. 451-464, 2005.
54.
Malik, E., Nikola, L. and David Kankam, M. “Design and
Implementation of a Closed-Loop Observer and Adaptive Controller
for Induction Motor Drives”, IEEE Trans. Industry Applications,
Vol. 34, No. 3, pp. 435-433, 1998.
55.
Mallat, S. G. “A Theory for Multiresolution Signal Decomposition:
The Wavelet Representation”, Technical Report, University of
Pennsylvania, 1987.
56.
Martins, F. G. “Tuning PID Controller using ITAE Criterion”,
International Journal of Engineering. Education”, Vol. 21, No. 3,
pp. 1-7, 2005.
57.
Masiala, M., Vafakhah, B., Salmon, J. and Andrew, M. K. “Fuzzy
Self-Tuning Speed Control of an Indirect Field-Oriented Control
Induction Motor Drive”, IEEE Trans. Industry Applications, Vol. 44,
No. 6, pp. 1732-1740, 2008.
58.
Mermoud, M. A. D., Miran, F. J., Pelissier, I. S. and Juan, C. T. T.
“Evaluation of a Fractional Order PI Controller applied to Induction
Motor Speed Control”, in Proc. 8th IEEE Conference on Control and
Automation, Xiamen, 2010.
59.
Moallem, M., Mirzaeian, B., Mohammed, O. A. and Lucas, C. “MultiObjective Genetic-Fuzzy Optimal Design of PI Controller in the
Indirect Field Oriented Control of an Induction Motor”, IEEE Trans.
Magnetics, Vol. 37, No. 5, pp. 3608-3612, 2001.
60.
Mustafa, M., Nowicki, E., Ashrafzadeh, F., Chu, A., Sachdeva, R. and
Evanik, E. “A Novel Neural Network Controller and its Efficient DSP
Implementation for Vector-Controlled Induction Motor Drives”, IEEE
Trans. Industry Applications, Vol. 39, No. 6, pp. 1622- 1629, 2003.
61.
Mutoh, N., Ueda, A., Sakai, K., Hattori, M. and Nandoh, K.
“Stabilizing control method for suppressing oscillation of induction
motors driven by PWM inverters,” IEEE Trans. Ind. Electron., vol.37,
no.1, pp.48– 56, 1990.
161
62.
Nasir Uddin, M., Radwan, T. S. and Rahman, A. M. “Performances
of Fuzzy-Logic-Based Indirect Vector Control for Induction
Motor Drive”, IEEE Trans. Industry Applications, Vol. 38, No. 5,
pp. 1219-1225, 2002.
63.
Nasir Uddin, M. and Wen, H. “Development of a Self-Tuned NeuroFuzzy Controller for Induction Motor Drives”, IEEE Trans. Industry
Applications, Vol. 43, No. 4, pp. 1108-1116, 2007.
64.
Nejadpak, A., Mohamed, A., Mohammed, O. A. and Khan, A.A.
“Online Gain Scheduling of Multiresolution Wavelet based Controller
for acoustic noise and Vibration reduction in sensorless control of PM
synchronous motor at low speed”, in Proc. IEEE Power and Energy
meeting, Michigan, USA, 2011.
65.
Nichols, N. B. and Ziegler, J. G. "Optimal settings for automatic
controllers," Journal of Dynamic Systems Measurements and Control,
Vol. 115, No. 2B, pp. 220-222, 1993.
66.
Pan, C. T., Chang, T. Y. and Hong, C. M. “A fixed Structure Discrete
time Sliding Mode Controller for Induction Motor Drives”, IEEE
Trans. Energy Conversion, Vol. 9, No. 4, pp. 645-651, 1994.
67.
Park, C. W. and Kwon, W. H. “Simple and Robust Speed Sensorless
Vector control of Induction motor using stator current based MRCA”,
Electric Power System Research, Vol. 71, pp. 257-266, 2004.
68.
Parvez, S. and Gao, Z. “A wavelet based Multiresolution PID
controller”, IEEE Trans. Industry Applications, Vol. 41, No. 2,
pp. 537-543, 2005.
69.
Ramadan, A. A., Faheem, M. T., Amer, A. F. and Sallam, S. A. “New
Genetic-Based Design of a Pi-Like Fuzzy Logic Speed Controller for
an Induction Motor”, in Proc. 2nd IEEE International Conference on
Computational Cybernetics, Vienna, Austria, 2004.
70.
Rashed, M., Maconnell, P. F. A. and Fraser Stronach, A. “Nonlinear
Adaptive State-Feedback Speed control of a Voltage-fed Induction
Motor with varying Parameters”, IEEE Trans. Industry Applications,
Vol. 42, No. 3, pp. 723-732, 2006.
71.
Ravi Teja, A. V. and Chandan, C., Suman, M. and Yoichi, H. “A New
Model Reference Adaptive Controller for Four Quadrant Vector
Controlled Induction Motor Drives”, IEEE Trans. Industrial
Electronics, Vol. 59, No. 10, pp. 3757-3767, 2012.
162
72.
Rehman, H. “Fuzzy logic enhanced robust torque controlled induction
motor drive system”, IEE Proceedings-Control Theory Applications,
Vol. 151, No. 6, pp. 754-762, 2004.
73.
Ren, T. J. and Chen, T. C. “Robust speed-controlled induction motor
drive based on recurrent neural network”, Electric Power Systems
Research, Vol. 76, No. 12, pp. 1064-1074, 2006.
74.
Rizwan Khan, M. Atif Iqbal and Ahmad, M. “A Wavelet Based DeNoising Scheme for Induction Motor Drives”, in Proc. IET-UK
International Conference on Information and Communication
Technology in Electrical Sciences, Chennai, India, 2007.
75.
Robert, D. L. and Donald, B. L. “A simplified Approach to Continuous
On-Line Tuning of Field Oriented Induction Machine Drives”, IEEE
Trans. Industry Applications, Vol. 26, No. 3, pp. 420-424, 1990.
76.
Robyns, B., Berthereau, F., Hautier, J. P. and Buyse, H. “A FuzzyLogic-Based Multimodel Field Orientation in an Indirect FOC of an
Induction Motor”, IEEE Trans. Industrial Electronics, Vol. 47, No. 2,
pp. 380-388, 2000.
77.
Rubaai, A. and David Kankam, M. “Adaptive Tracking Controller for
Induction Motor Drives using online Training of Neural Networks”,
IEEE Trans. Industry Applications, Vol. 36, No. 5, pp. 1285-1294,
2000.
78.
Rubaai, A., Sitiriche, M. J. C. and Ofoli, A. R. “DSP-Based Laboratory
Implementation of Hybrid Fuzzy-PID Controller Using Genetic
Optimization for High-Performance Motor Drives”, IEEE Trans.
Industry Applications, Vol. 44, No. 6, pp. 1977-1986, 2008.
79.
Sazali, Y. and Faisal, A. M. “Real Time self Tuning Controller for
Induction Motor based on PI method”, in proc. 38th SICE Annual
Conference, Tokyo, Japan1999.
80.
Saleh, S. A. and Rahman, A. M. “Analysis and Real-Time Testing of a
Controlled Single-Phase Wavelet-Modulated Inverter for CapacitorRun Induction
Motors”, IEEE Trans. Energy Conversion, Vol.
24, No. 1, pp. 21-29, 2009.
81.
Seok, J. K. and Sul, S. K. “Induction Parameter tuning for High
Performance Drives”, IEEE Trans. Industry Applications, Vol. 37,
No. 1, pp. 35-41, 2001.
163
82.
Shanlin, K. and Yuzhe, K. “Optimization Design of Wavelet Network
for Estimation of Flux and Torque in Induction Motor Control
System”, in Proc. 8th IEEE International Conference on Electronic
Measurement and Instruments, Xian, China, 2007.
83.
Sheu, T. T. and Chen, T. C. “Self-tuning Control of Induction Motor
Drive using Neural Network Identifier”, IEEE Trans. Energy
Conversion, Vol. 14, No. 4, December, pp. 881-886, 1999.
84.
Shi, K. L., Chan, T. F., Wong, Y. K. and Ho, S. L. “Direct Self Control
of Induction Motor Based on Neural Network”, IEEE Trans. Industry
Applications, Vol. 37, No. 5, pp. 1290-1298, 2001.
85.
Shin, E. C., Park, T. S., Oh, W. H. and Yoo, J. Y. “A Design method of
PI Controller for an Induction Motor with Parameter Variation”, in
Proc. 29th Annual Conference of IEEE Industrial Electronics Society,
Roanoke, USA, 2003.
86.
Shin, H. B, “New Anti Windup PI Controller for Variable Speed Motor
Drives”, IEEE Trans. Industrial Electronics, Vol. 45, No. 3,
pp. 445-450, 1998.
87.
Shin, H. B. and Park, J. G. “Anti Windup PID Controller with integral
State predictor for Variable Speed Motor Drives”, IEEE Trans.
Industrial Electronics, Vol. 59, No. 3, pp. 1509-1516, 2012.
88.
Shyu, K. K, Shieh, H. J. and Fu, S. S. “Model Reference Adaptive
Speed Control for Induction Motor Drive Using Neural Networks”,
IEEE Transactions on Industrial Electronics, Vol. 45, No. 1, pp. 180-182,
1998.
89.
Shyu, K. K., Lin, F. J., Shieh, H. J. and Juang, B. S. “Robust Variable
Structure Control for Induction Motor Drive”, IEEE Trans. Aerospace
and Electronics Systems, Vol. 35, No. 1, pp. 215-224, 1999.
90.
Singh, B. N., Bhim Singh and Singh, B. P. “Fuzzy Control of
Integrated Current-Controlled Converter–Inverter-Fed Cage Induction
Motor Drive”, IEEE Trans. Industry Applications, Vol. 35, No. 2,
pp. 405-412, 1999.
91.
Slobodan, N. V. and Milic, R. S. “On-Line Tuning of the Rotor Time
Constant for Vector Controlled Induction Motor in Position Control
Applications”, IEEE Trans. Industrial Electronics, Vol. 40, No. 1,
pp. 130-138, 1993.
164
92.
Stang, G. and Nguyen, T. “Wavelet and wavelet filter Banks”
Wellesley-Cambridge Press, Wellesley, 1997.
93.
Stemmler, H. “High-Power Industrial Drives”, Proceedings of the
IEEE, Vol. 82, No. 8, pp. 1266-1286, 1994.
94.
Tag Eldin, E. M. “A New Algorithm for the Classification of Different
Transient Phenomena in Power Transformers Combining Wavelet
Transforms and Fuzzy Logic”, in Proc. IEEE 46th Midwest
Symposium on Circuits and Systems, Cairo, Egypt, 2003.
95.
Thuillard, M. “Fuzzy logic in the wavelet framework”, in Proc. 3rd
International Symposium on Tool Environments and Development
Methods for Intelligent Systems, Oulu, Finland, 2000.
96.
Tista, B., Sumana, C., Jitendranath, B. and Abisek, M. “Off-line
optimization of PI and PID Controller for a Vector controlled
Induction Motor Drive using PSO”, in Proc. of 6th International
Conference on Electrical and Computer Engineering, Dhaka,
Bangladesh, 2010.
97.
Vas, P., Stronach, A. F. and Neuroth, M. “Full fuzzy control of a DSPbased high performance induction motor drive”, IEE ProceedingsControl Theory Applications, Vol. 144, No. 5, pp. 361-368, 1997.
98.
Wai, R. J., Duan, R. Y., Lee, J. D. and Chang, H. H. “Wavelet Neural
Network Control for Induction Motor Drive using Sliding-Mode
Design Technique”, IEEE Trans. Industrial Electronics, Vol. 50,
No. 4, pp. 733-748, 2003.
99.
Wai, R. J. and Chang, J. M. “Implementation of Robust WaveletNeural-Network Sliding-Mode Control for Induction Servo Motor
Drive”, IEEE Trans. Industrial Electronics, Vol. 50, No. 6, pp. 1317-1334,
2003.
100.
Wai, R. J. “Development of New Training Algorithms for
Neuro-Wavelet Systems on the Robust Control of Induction Servo
Motor Drive”, IEEE Trans. Industrial Electronics, Vol. 49, No. 6,
pp. 1323-1341, 2002.
101.
Wai, R. J. and Chang, H. H. “Back stepping Wavelet Neural Network
Control for Indirect Field-Oriented Induction Motor Drive”, IEEE
Trans. Neural Networks, Vol. 15, No. 2, pp. 367-382, 2004.
165
102.
Wang, H. P., Chang, Y. F. and Fang, S. J. “Weighted Tuning of a PI
Speed Controller for Induction Motor”, in Proc. International
Conference on Electrical and Control Engineering, Yichang, China,
2011.
103.
Wlas, M., Krzeminski, Z., Guzinski, J., Haithem A. R. and Toliyat, H.
A. “Artificial-Neural-Network-Based Sensorless Nonlinear Control of
Induction Motors”, IEEE Trans. Energy Conversion, Vol. 20, No. 3,
pp. 520-528, 2005.
104.
Xu, C. and Shin, Y. C. “Design of a Multilevel Fuzzy Controller for
Nonlinear Systems and Stability Analysis”, IEEE Trans. Fuzzy
Systems, Vol. 13, No. 6, pp. 761-778, 2005.
105.
Yang, H. T., Huang, K. Y. and Huang, C. L. “An Artificial Neural
Network based Identification and Control approach for the FieldOriented Induction Motor” Electric Power Systems Research, Vol. 30,
No. 1, pp. 35-45. 1994.
106.
Yousef, H. A, Elkhatib, M. E. and Sebakhy, O. A. “Wavelet Networkbased Motion Control of DC Motors”, Expert Systems with
Applications, Vol. 37, No. 2, pp. 1522-1527, 2010.
107.
Zhang, Y., Changxi, J. and Vadim, I. U. “Sensorless Sliding Mode
Control of Induction Motors”, IEEE Trans. Industrial Electronics,
Vol. 47, No. 6, pp. 1286-1297, 2000.
108.
Zhen, L. and Xu, L. “Fuzzy Learning Enhanced Speed Control of an
Indirect Field-Oriented Induction Machine Drive”, IEEE Trans.
Control Systems Technology, Vol. 8, No. 2, 270-278, 2000.
109.
Ziqian, L., “Hybrid Speed Control with Sliding Mode plus Self-Tuning
PI for Induction Motor Drive”, in Proc. 49th IEEE International
Midwest Symposium on Circuits and Systems, Puerto Rico, 2006.
Download