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Discrimination between Supply Unbalance and Stator Short-Circuit of an Induction Motor Using Neural Network


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DOI: https://doi.org/10.15866/ireaco.v10i5.11912

Abstract


The objective of this paper is to investigate the contribution and effectiveness of the use of a Neural Network (NN) Multi-Layer Perceptron (MLP) of feed-forward type technique to discriminate between the Supply Voltage Unbalance (SVU) and the stator Inter Turn Short-Circuit (ITSC) of an induction motor. The proposed approach in this paper is based on the exploitation of any useful information existing in both the current and the voltage quantities simultaneously provided by the various instantaneous powers such as the active and the reactive powers as well as the power factor. The merits of the proposed approach using the NN technique as an effective solution to the problem of discrimination is assessed by a simulation work and then validated by an experimental work conducted by the Diagnosis Group of the LDEE Laboratory.
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Keywords


Voltage Unbalance; Inter-Turn Short-Circuit; Induction Motor; Active Power; Reactive Power; Neural Networks

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References


R. S. Duvvuri and K. Detroja, Model-based stator interturn short-circuit fault detection and diagnosis in induction motors, 2015 7th International Conference on Information Technology and Electrical Engineering (ICITEE), Chiang Mai, 2015, pp. 167-172.
http://dx.doi.org/10.1109/iciteed.2015.7408935

Aimer, F., Boudinar, A., Bendiabdellah, A., Use of the Short Time Fourier Transform for Induction Motor Broken Bars Detection, (2013) International Review on Modelling and Simulations (IREMOS), 6 (6), pp. 1879-1883..

N. Lashkari and J. Poshtan, Detection and discrimination of stator interturn fault and unbalanced supply voltage fault in induction motor using neural network, Power Electronics, Drives Systems & Technologies Conference (PEDSTC), 2015 6th, Tehran, 2015, pp. 275-280.
http://dx.doi.org/10.1109/pedstc.2015.7093287

A. Bendiabdellah, N. Benouzza and D. Toumi, Cage motor faults detection by speed estimation and spectral current analysis, Power Electronics, Machines and Drives, 2006. PEMD 2006. The 3rd IET International Conference on, 2006, pp. 47-51.
http://dx.doi.org/10.1049/cp:20060070

Mohanraj, K., Paramasivam, S., Dash, S., Zobaa, A., Open and Short Circuit Diagnosis of a VSI Fed Three Phase Induction Motor Drive Using Fuzzy Logic Technique, (2013) International Review on Modelling and Simulations (IREMOS), 6 (6), pp. 1858-1864.
http://dx.doi.org/10.15866/iremos.v6i6.2674

Cherif, B., Bendiabdellah, A., Khelif, M., Detection of Open-Circuit Fault in a Three-Phase Voltage Inverter Fed Induction Motor, (2016) International Review of Automatic Control (IREACO), 9 (6), pp. 374-382.
http://dx.doi.org/10.15866/ireaco.v9i6.10268

A. K. Mishra and B. S. Rajpurohit, Modeling of 3-phase induction motor including slot effects and winding harmonics, Power India International Conference (PIICON), 2014 6th IEEE, Delhi, 2014, pp. 1-6.
http://dx.doi.org/10.1109/poweri.2014.7117740

S. S. Refaat, H. Abu-Rub, M. S. Saad, E. M. Aboul-Zahab and A. Iqbal, Detection, diagnoses and discrimination of stator turn to turn fault and unbalanced supply voltage fault for three phase induction motors, 2012 IEEE International Conference on Power and Energy (PECon), Kota Kinabalu, pp. 910-915.
http://dx.doi.org/10.1109/pecon.2012.6450347

S. Das, P. Purkait and S. Chakravorti, Separating induction Motor Current Signature for stator winding faults from that due to supply voltage unbalances, 2012 1st International Conference on Power and Energy in NERIST (ICPEN), Nirjuli, 2012, pp. 1-6.
http://dx.doi.org/10.1109/icpen.2012.6492315

M. Drif, J. O. Estima and A. J. M. Cardoso, The use of the stator instantaneous complex apparent impedance signature analysis for discriminating stator winding faults and supply voltage unbalance in three-phase induction motors, 2013 IEEE Energy Conversion Congress and Exposition, Denver, CO, 2013, pp. 4403-4411.
http://dx.doi.org/10.1109/ecce.2013.6647289

N. Lashkari and J. Poshtan, Detection and discrimination of stator interturn fault and unbalanced supply voltage fault in induction motor using neural network, The 6th Power Electronics, Drive Systems & Technologies Conference (PEDSTC 2015), Tehran, 2015, pp. 275-280.
http://dx.doi.org/10.1109/pedstc.2015.7093287

C. Gerada, K. J. Bradley, M. Summer and P. Wheeler, Operating induction motor drives with turn-to-turn faults, IEEE International Conference on Electric Machines and Drives, 2005., San Antonio, TX, pp. 770-776.
http://dx.doi.org/10.1109/iemdc.2005.195809

H. Su and K. T. Chong, Induction Machine Condition Monitoring Using Neural Network Modeling, in IEEE Transactions on Industrial Electronics, vol. 54, no. 1, pp. 241-249, Feb. 2007.
http://dx.doi.org/10.1109/tie.2006.888786

P. J. Broniera, W. S. Gongora, A. Goedtel and W. F. Godoy, Diagnosis of stator winding inter-turn short circuit in three-phase induction motors by using artificial neural networks, 2013 9th IEEE International Symposium on Diagnostics for Electric Machines, Power Electronics and Drives (SDEMPED), Valencia, 2013, pp. 281-287.
http://dx.doi.org/10.1109/demped.2013.6645729

B. Bessam, A. Menacer, M. Boumehraz and H. Cherif, A novel method for induction motors stator inter-turn short circuit fault diagnosis based on wavelet energy and neural network, 2015 IEEE 10th International Symposium on Diagnostics for Electrical Machines, Power Electronics and Drives (SDEMPED), Guarda, 2015, pp. 143-149.
http://dx.doi.org/10.1109/demped.2015.7303682

S. Bachir, S. Tnani, J. C. Trigeassou and G. Champenois, Diagnosis by parameter estimation of stator and rotor faults occurring in induction machines, in IEEE Transactions on Industrial Electronics, vol. 53, no. 3, pp. 963-973, June 2006.
http://dx.doi.org/10.1109/tie.2006.874258

Jawad Faiz, H. Ebrahimpour, Precise derating of three phase induction motors with unbalanced voltages, Industy application conference 40th IEEE/IAS annual meeting Kawloon Hongkong pp. 485-491, 2-5 October 2005.
http://dx.doi.org/10.1109/ias.2005.1518352

Lee, C.Y, Effects of unbalanced voltage on the operation performance of a three-phase induction motor, IEEE Trans.Energy Conversion, vo1.14, v01.2, pp.202 - 208, Jun.1999.
http://dx.doi.org/10.1109/60.766984

Wang, Y.J, Analysis of effects of three-phase voltage unbalance on induction motors with emphasis on the angle of the complex voltage unbalance factor, IEEE Tram Energy Conversion, vo1. 16, no. 3,pp. 270-275, Sep 2001.
http://dx.doi.org/10.1109/60.937207

Babaa, F., Khezzar, A., A More Sensitive Indicator of Inter-Turn Short-Circuits Fault in Stator Windings Including Unbalanced Supply Voltage, (2013) International Journal on Engineering Applications (IREA), 1 (1), pp. 21-26.
http://dx.doi.org/10.1109/acemp.2007.4510504

Kersting, W.H, Causes and effects of unbalanced voltages sewing an induction motor, IEEE Transhd Applicant., vo1. 37, no. 1, pp. 165- 170, Jan/Feb. 2001.
http://dx.doi.org/10.1109/28.903142

Lee, C.Y., Chin, B.W., Lee, W.J. and Hsu, Y.F, Effects of various unbalanced voltages on the operation performance of an induction motor under the same voltage unbalance factor condition, IEEE Conf. Industrial and Commercial Power Systems Technical Conference, 11-16 May 1997, pp SI -59.
http://dx.doi.org/10.1109/icps.1997.595989

NEMA Standard MGI 12.45-1987, Voltage Unbalance.
http://dx.doi.org/10.1049/pe:19870028

Meo, S., Ometto, A., Rotondale, N., Diagnostic-oriented modelling of induction machines with stator short circuits, (2012) International Review on Modelling and Simulations (IREMOS), 5 (3), pp. 1202-1209.

A. K. Mishra and B. S. Rajpurohit, Modeling of 3-phase induction motor including slot effects and winding harmonics, Power India International Conference (PIICON), 2014 6th IEEE, Delhi, 2014, pp. 1-6.
http://dx.doi.org/10.1109/poweri.2014.7117740

M. Drif and A. J. M. Cardoso, Rotor cage fault diagnostics in three phase induction motors, by the instantaneous non-active power signature analysis, in Proc. ISIE, pp. 1050–1055, Vigo, Spain, Jun. 4–7, 2007.
http://dx.doi.org/10.1109/isie.2007.4374743

M. B. K. Bouzid and G. Champenois, Neural network based method for the automatic detection of the stator faults of the induction motor, Electrical Engineering and Software Applications (ICEESA), 2013 International Conference on, Hammamet, 2013, pp. 1-7.
http://dx.doi.org/10.1109/iceesa.2013.6578393

M. Rayyam, M. Zazi, Y. Hajji and I. Chtouki, Stator and rotor faults detection in Induction Motor (IM) using the Extended Kaman Filter (EKF), 2016 International Conference on Electrical and Information Technologies (ICEIT), Tangiers, 2016, pp. 148-152.
http://dx.doi.org/10.1109/eitech.2016.7519579

F. Zidani, M.E.H. Benbouzid, D. Diallo, M.S. Nait-Said, Induction motor stator faults diagnosis by a current Concordia pattern-based fuzzy decision system, IEEE Trans. Energy Convers., (2003), pp. 469–475.
http://dx.doi.org/10.1109/tec.2003.815832

Sarkhanloo, M.S., Ghalledar, D., Danandeh, A., Ghorbani, M., A new method for stator winding turn-fault diagnosis of induction motor by space vector model based on neural network, (2011) International Review on Modelling and Simulations (IREMOS), 4 (5), pp. 2182-2189.

H. Akagi and A. Nabae, The p–q theory in three-phase systems under non-sinusoidal conditions, ETEP, vol. 3, no. 1, pp. 27–31, Jan. 1993.
http://dx.doi.org/10.1002/etep.4450030106

Czarnecki.L, On some misinterpretations of the instantaneous reactive power p-q theory, IEEE Trans. on power electronics vol. 19, n° 3, pp. 828-836, 2004.
http://dx.doi.org/10.1109/tpel.2004.826500

F. Z. Peng, G. W. Ott, and D. J. Adams, Harmonic and reactive power compensation based on the generalized instantaneous reactive power theory for three-phase four-wire systems, IEEE Trans. Power Electron., vol. 13, no. 6, pp. 1174–1181, Nov. 1998.
http://dx.doi.org/10.1109/63.728344

M. Karpenko, N. Sepehri, Neural network classifiers applied to condition monitoring of a pneumatic process valve actuator, Engineering Applications of Artificial Intelligence, Vol. 15, no. 3-4, pp. 273- 283, June-August 2002.
http://dx.doi.org/10.1016/s0952-1976(02)00068-4

S. Rajakarunakaran, P. Venkumar, K. Devaraj, K.S.P. Rao, Artificial neural network approach for fault detection in rotary system, Applied Soft Computing, Vol. 8, Issue 1, pp. 740-748, January 2008.
http://dx.doi.org/10.1016/j.asoc.2007.06.002

Y.M. Chen, M.L. Lee, Neural networks-based scheme for system failure detection and diagnosis, Mathematics and Computers in Simulation, Vol. 58, Issue 2, pp. 101-10, January 2002.
http://dx.doi.org/10.1016/s0378-4754(01)00330-5

V. Venkatasubramanian, R.Rengaswamy, S.N. Kavuri, K. Yin, A review of process fault detection and diagnosis Part III: Process history based methods Computers & Chemical Engineering, Vol. 27, pp. 327-346, 2003.
http://dx.doi.org/10.1016/s0098-1354(02)00162-x

M. Bouzid, N. Mrabet, S. Moreau, L. Signag, Accurate Detection of Stator and Rotor Fault by Neural Network in Induction Motor, IEE Multi-conference on System Signal and Devises, SSD’07, Tunisia, 21 March 2007.
http://dx.doi.org/10.1109/ssd.2011.5767433

Meo, S., Ometto, A., Rotondale, N., Influence of closed-loop control operations on detecting induction machine stator faults, (2012) International Review of Electrical Engineering (IREE), 7 (3), pp. 4359-4365.

Filippetti, F., Franceschini, G., Ometto, A., Meo, S., Survey of neural network approach for induction machine on-line diagnosis, (1996) Proceedings of the Universities Power Engineering Conference, 1, pp. 17-20.

Filippetti, F., Franceschini, G., Tassoni, C., Meo, S., Ometto, A., Neural network aided on-line diagnostics of induction machine stator faults, (1995) Proceedings of the Universities Power Engineering Conference, 1, pp. 148-151.


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