The Comparative Analysis of the Performances of Four and Six Pole Pairs Permanent Magnet Synchronous Generator
Abstract
Wind power applications using multi-poles permanent magnet generators have become very attractive especially in small ratings. Low-speed multi-pole PM generators are maintenance-free and may be used in different climate conditions. Most of the low speed wind turbine generators presented is permanent magnet machines, which have advantages of high efficiency and reliability since there is no need of external excitation and conductor losses are removed from the rotor. From the study two types of PM AC generator are designed with 6 pole pairs and the other one with 4 pole pairs. These generators were designed and analysed using Maxwell software. The results were compared for the best performance determination. The 6 poles generator was found to have good power output with less Total Harmonic Distortion (THD) and high efficiency of over 92% that could be achieved at low wind speed of 2 m/s.
Keywords: Comparisons, Performance, Permanent Magnet Wind Generator, Pole Pairs.
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Abeywardena H., Atputharajah A. and Ekanayake J. (2011). Novel
Technique to Smooth Power Output of a Wound Rotor Induction
Generator Based Wind Turbine, 6 th International Conference on
Industrial and Information Systems, ICIIS, Peradeniya, Sri Lanka, 517- 521.
Aleksander K. and Oleg K. (2012). Study and Verification of a Slow Speed PM Generator with Outer Rotor for Small Scale Wind
Turbines. In Proceedings of Electric Power Quality and Supply
Reliability Conference (PQ), Tartu, Estonia, 1–6.
Amirat, Y., Benbouzid, M., Bensaker, B. and Wamkeue, R. (2007). The State of the Art of Generators for Wind Energy Conversion Systems, Electromotion, Mediamira Science Publisher, 14(4): 163-172. Ansoft Maxwell Field Simulator v12 (2008). Ansoft Electrical Machine Design Reference, Revision, June 2008.
Cao J., Yang X. and Zhu W. (2010). Design and Airgap Flux Density Calculation of Dual-Rotor Permanent-Magnet Wind
Generator. Power and Energy Engineering Conference
(APPEEC), Asia-Pacific, 1-4.
Cistelecan M., Ferreira F. and Popescu M. (2010). Adjustable Flux Three - Phase AC Machines with Combined Multiple-Step Star-Delta Winding Connections. IEEE Transactions on Energy Conversions, 25(2): 348-355.
Chapadel P., Bikdash M., Kateeb I. and Kelkar A. (2011). Reactive Power Management and Voltage Control Of Large Transmission System Using SVC (Static VAR Compensator). Proceedings of the
IEEE Southeastcon Conference, Nashville, Tennessee, USA, 85-90.
Dong-Choon L. and Ahmed G. (2008). Optimal Efficiency Control of Induction Generators in Wind Energy Conversion Systems using
Support Vector Regression. Journal of Power Electronics, 8(4): 345- 353.
Dosiek L. and Pillay P. (2007). Cogging Torque Reduction in Permanent Magnet Machines. IEEE Transactions on Industry
Applications, 43(6): 1565-1571.
Guo Y., Dou Y., Zhu J., Lu and Jin J. (2008). Numerical Magnetic Field Analysis and Computation of a PM Synchronous Generator. International Conference on Electrical Machines and Systems. ICEMS, Wuhan, China, 2866-2869.
Kolar J., Friedli T., Krismer F., Looser A., Schweizer M, Steimer P. and Bevirt J. (2013). Conceptualization and Multi-Objective Optimization of the Electric System of an Airborne Wind Turbine, IEEE Journal of Emerging and Selected Topics in Power Electronics, 1(2): 73-103.
Ocak C., Uygun D., Cetinceviz Y., Demir E. and Gungor Y. (2012).
Performance Aspects and Verifications of In-Runner and Out- Runner Permanent Magnet Synchronous Generator Designs of the Same Magnet Structure for Low Speed Wind Systems. IEEE
International Conference on Environment and Electrical
Engineering, Turkey, 1-6.
Sittisrijan N. and Ruangsinchaiwanich S. (2013). Synthesis of Stator Current Waveform of Induction Motor with Broken Bar Conditions, International Conference on Electrical Machines and Systems (ICEMS), Busan, Korea, 3441- 3445.
Tamura J. and Muyeen S. (2012). Wind Energy Conversion Systems, Green Energy and Technology. Springer- Verlag, London, UK.
Tcheslavski G. (2008). Fundamentals of Power Engineering. Larmar University, Texas, USA.
Zhang L., Sun Y. and Lv X. (2011). Design on Pitch-control Wind
Turbine System Based on Bladed. Proceedings of the IEEE
Conference, Mianyang, China, 3921-3923.
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