DOI QR코드

DOI QR Code

Design, analysis, and control of a variable electromotive-force generator with an adjustable overlap between the rotor and the stator

  • Zhu, W.D. (Department of Mechanical Engineering, University of Maryland) ;
  • Goudarzi, N. (Mechanical Engineering Technology Program, Department of Engineering Technology and Construction Management, University of North Carolina at Charlotte) ;
  • Wang, X.F. (Department of Mechanical Engineering, University of Maryland) ;
  • Kendrick, P. (Department of Mechanical Engineering, University of Maryland)
  • Received : 2017.05.02
  • Accepted : 2018.02.23
  • Published : 2018.08.25

Abstract

A variable electromotive-force generator (VEG), which is a modified generator with an adjustable overlap between the rotor and the stator, is proposed to expand the operational range of a regular generator through a simple and robust active control strategy. It has a broad range of applications in hybrid vehicles, wind turbines, water turbines, and similar technologies. A mathematical model of the VEG is developed, and a novel prototype is designed and fabricated. The performance of the VEG with an active control system, which adjusts the overlap ratio based on the desired output power at different rotor speeds for a specific application, is theoretically and experimentally studied. The results show that reducing the overlap between the rotor and the stator of the generator results in reduced torque loss of the generator and an increased rotational speed of the generator rotor. A VEG can improve the fuel efficiency of hybrid vehicles; it can also expand operational ranges of wind turbines and water turbines and harness more power.

Keywords

Acknowledgement

Supported by : National Science Foundation

References

  1. Advanced Wind Turbine Drivetrain Concepts (2010), U.S. Dept. of Energy, DOE/GO-102010-3198, USA.
  2. Al-Adsani, A.S. and Schofield, N. (2009), "Hybrid permanent magnet generators for electric vehicle applications", Proceedings of the IEEE International Electric Machines and Drives Conference, May 3-6, Miami, USA, 1754-1761.
  3. Automotive World (2013), Allison Transmission to Unveil Fully-Automatic Hybrid for Commercial Vehicles. Available: http://www.automotiveworld.com/news-releases/allison-transmission-to-unveil-fully-automatic-hybrid-for-commercialvehicles/
  4. Baumann, B.M., Washington, G., Glenn, B.C. and Rizzoni, G. (2000), "Mechatronic design and control of hybrid electric vehicles", IEEE/ASME Trans. Mechatron., 5(1), 58-72. https://doi.org/10.1109/3516.828590
  5. Bishop, R.S. (2008), Mechatronic Systems, Sensors, And Actuators, 2nd Ed., CRC press, ch. 21.
  6. Boldea, I. (2006), "Synchronous Generators", 1st Ed., FL, CRC press.
  7. Bywaters, G., John, V., Lynch, J., Mattila, P., Norton, G., Stowell, J., Salata, M., Labath, O., Chertok, A. and Hablanian, D. (2004), "Northern power systems windPACT drive train alternative design study report," National Renewable Energy Laboratory (NREL), Golden, CO, Rep. NREL/SR-500-35524.
  8. Caricchi, F., Crescimbini, F., Giulii Capponi, F. and Solero, L. (2001), "Permanent-magnet, direct-drive, starter/alternator machine with flux linkage for constant-power operation over extremely wide speed range", Proceedings of the Ind. Appl. Conference, 36th IAS Annual Meeting, October.
  9. Chau, K.T., Li, Y.B., Jiang, J.Z. and Liu, C.H. (2006), "Design and analysis of a stator-doubly-fed doubly-salient permanentmagnet machine for automotive engines", IEEE T. Magn., 42(10), 3470-3472. https://doi.org/10.1109/TMAG.2006.879440
  10. Chen, Y.C., Pillay, P. and Khan, A. (2005), "PM wind generator topologies", IEEE T. Ind. Appl., 41(6), 1619-1626. https://doi.org/10.1109/TIA.2005.858261
  11. Chen, Z., Guerrero, J.M. and Blaabjerg, F. (2009), "A review of the state of the art of power electronics for wind turbines", IEEE T. Power Electr., 24(8), 1859-1875. https://doi.org/10.1109/TPEL.2009.2017082
  12. Concordia, C. (1951), "Synchronous machines, theory and performance", 1st Ed., London, UK, Chapman and Hall.
  13. Crescimbini, F., Di Napoli, A., Solero, L. and Caricchi, F. (2005), "Compact permanent-magnet generator for hybrid vehicle Applications", IEEE T. Ind. Appl., 41(5), 1168-1177. https://doi.org/10.1109/TIA.2005.855048
  14. Del Ferraro, L., Capponi, F.G., Terrigi, R., Caricchi, F. and Honorati, O. (2006), "Ironless axial flux PM machine with active mechanical flux weakening for automotive applications", Proceedings of the Ind. Appl. Conference, 41th IAS Annual Meeting, Oct. 08-12, Tampa, USA.
  15. Deng, F.J. and Chen, Z. (2010), "Variable speed wind turbine based on multiple generators drive-train configuration", Proceedings of the IEEE Innovative Smart Grid Technologies Conference Europe, Oct. 11-13, , Gothenberg, Sweden.
  16. Dubois, M. (2004), "Optimized permanent magnet generator topologies for direct drive wind turbines", Ph.D. dissertation, Delft University of Technology, Delft, NL.
  17. Emadi, A., Rajashekara, K., Williamson, S.S. and Lukic, S.M. (2005), "Topologies overview of hybrid electric and fuel cell vehicular power system architectures and configurations", IEEE T. Veh. Technol., 54(3), 763-770. https://doi.org/10.1109/TVT.2005.847445
  18. Gaussens, B., De La Barriere, O., Hoang, E., Saint-Michel, J., Manfe, P., Lecrivine, M. and Gabsi, M. (2013), "Magnetic field solution in doubly slotted airgap of conventional and alternate field-excited switched-flux topologies", IEEE T. Magn., 49(9), 5083-5096. https://doi.org/10.1109/TMAG.2013.2254122
  19. Goudarzi, N. and Zhu, W.D. (2013), "A review on the development of the wind turbine generators across the world", Int. J. Dynam. Control, 1(2), 192-202. https://doi.org/10.1007/s40435-013-0016-y
  20. Goudarzi, N., Zhu, W.D. and Bahari, H. (2014), "An assessment of the potential of a novel ducted turbine for harvesting wind power", J. Intel. Mat. Syst. Str., 26(9), 1059-1070. https://doi.org/10.1177/1045389X14533438
  21. Goudarzi, N. and Zhu, W.D. (2013), "Offshore and onshore wind energy conversion: The potential of a novel multiple-generator drivetrain", Key Eng. Mater., 569-570, 644-651, Available: http://www.ttp.net/978-3-03785-796-0.html. https://doi.org/10.4028/www.scientific.net/KEM.569-570.644
  22. Goudarzi, N., Zhu, W.D. and Bowers, R. (2012), "Aerodynamic and electromagnetic analysis of a variable electromotive-force generator for a wind turbine", Proceedings of the ASME International Mechanical Engineering Congress & Exposition, Nov. 9-15, Houston, TX, USA.
  23. Hau, E. (2006), "Wind turbines; fundamentals, technologies, application, economics", 2nd Ed., Berlin, Germany, Springer.
  24. Idzotic, T., Erceg, G. and Sumina, D. (2004), "Synchronous generator load angle measurement and estimation", Automatica, 45(3-4), 179-186.
  25. Kendrick, P. (2012), "Development and Analysis of a Variable Electromotive Force Generator for Use in Wind Turbine Applications," M.S. Thesis, Dept. Mech. Eng, Univ. Maryland, Baltimore County, MD.
  26. Lewis, C. and Muller, J. (2007), "A direct drive wind turbine HTS generator", IEEE Power Eng. Soc. General Meeting, June 24-28, Tampa, USA
  27. Li, H., Chen, Z. and Polinder, H. (2006), "Research report on numerical evaluation of various variable speed wind generator systems", Inst. of Energy Techno., Aalborg Uni., Delft Uni. of Technol., Rep. D 1B2. b.3.
  28. Manwell, J.F., McGowan, J.G. and Rogers, A.L. (2009), "Wind energy explained; Theory, design, and application", 2nd Ed., Wiltshire, UK, John Wiley & Sons.
  29. Mbayed, R., Salloum, G., Vido, L., Monmasson, E. and Gabsi, M. (2012), "Hybrid excitation synchronous machine control in electric vehicle application with copper losses minimization", Proceedings of the Power Electronics, Machines and Drives (PEMD), 6th IET International Conference on, Bristol, UK, March.
  30. Mikhail, A. (2011), "Distributed generation drivetrain for high torque wind turbine applications", Clipper Windpower Technol. Inc., Rep. CEC-500-2011-002.
  31. Nasar, S.A. and Boldea, I. (1990), "Electric machines, steady-state Operation", Hemisphere Publishing Corp., ch. 2-4, 19-160.
  32. Owen, R.L., Zhu, Z.Q., Wang, J.B., Stone, D.A. and Urquhart, I. (2011), "Review of variable-flux permanent magnet machines," Proceedings of the Int. Conf. on Elec. Machines and Syst., Aug. 20-23, Beijing, China.
  33. Owen, R.L., Zhu, Z.Q., Wang, J.B., Stone, D.A. and Urquhart, I. (2011), "Mechanically adjusted variable-flux concept for switched-flux permanent-magnet machines", Proceedings of the International Conference on Electrical Machines and Systems, Aug. 20-23, Beijing, China.
  34. Polinder, H., Pijl, F.F.A., De Vilder, G.J. and Tavner, P. (2006), "Comparison of direct-drive and geared generator concepts for wind turbine", IEEE T. Eng. Conver., 21(3), 725-733. https://doi.org/10.1109/TEC.2006.875476
  35. Rafiee, M., Siadatan, A. and Afjei, E. (2012), "Improving the hybrid electric vehicles efficiency, using Si0.7Ge0.3 and Bi2Te3 thermoelectric materials", Proceedings of the 4th International Conference on Intelligent and Advanced Systems (ICIAS), June 12-14, Kuala Lumpur, Malaysia.
  36. Schiferl, R., Flory, A., Livoti, W.C. and Umans, S.D. (2008), "High-temperature superconducting synchronous motors: Economic issues for industrial applications", IEEE T. Ind. Appl., 44(5), 1376-1384. https://doi.org/10.1109/TIA.2008.2002219
  37. Somayajula, D., Meintz, A. and Ferdowsi, M. (2009), "Designing efficient hybrid electric vehicles", IEEE Veh. Technol. Mag., 4(2), 65-72. https://doi.org/10.1109/MVT.2009.932546
  38. Variable Torque Motors LLC (2009), "Transit Applications of the Variable Torque Motors Parallel Hybrid Drive System", Fort Wayne, IN, 1-13.
  39. Wentworth, S.M. (2005), "Fundamentals of electromagnetic with engineering applications", 1st Ed., NJ, John Wiley & Sons, Part I, 9-258.
  40. Williamson, S.S., Wirasingha, S.G. and Emadi, A. (2006), "Comparative investigation of series and parallel hybrid electric drive trains for heavy-duty transit bus applications", Proceedings of the IEEE Vehicle Power and Propulsion Conference, Sep. 06-08, Windsor, UK.
  41. Zepp, L.P. (2011), "Brushless permanent magnet motor/generator with axial rotor decoupling to eliminate magnet induced torque losses", U.S. Patent 7863789B2, Jan. 04.
  42. Zhou, G., Miyazaki, T., Kawamat, S., Kaneko, D. and Hino, N. (2010), "Development of variable magnetic flux motor suitable for electric vehicle", Proceedings of the International Power Electronic Conference, June 21-24, Sapporo, Japan.