Page 189 - Renewable Energy Devices and System with Simulations in MATLAB and ANSYS
P. 189

176             Renewable Energy Devices and Systems with Simulations in MATLAB  and ANSYS ®
                                                                                ®

              10.  R. O’Donnell, N. Schofield,  A.C. Smith, and J. Cullen, Design concepts for high-voltage
                  variable-capacitance DC generators. IEEE Transactions on Industry Applications, 45(5), 1778–1784,
                September–October 2009.
              11.  E. Spooner, P. Gordon, J.R. Bumby, and C.D. French, Lightweight ironless-stator PM generators for direct-
                drive wind turbines. Proceedings of IEE Electrical Power Applications, 152(1), 17–26, January 2005.
              12.  Small wind electric systems,  http://energy.gov/energysaver/articles/small-wind-electric-systems, last
                accessed November 2014.
              13.  J. Ojeda, M. Godoy Simões, G. Li, and M. Gabsi, Design of a flux switching electrical generator for wind
                turbine systems. IEEE Transactions on Industry Applications, 48(6), 1808–1816, November–December
                2012.
              14.  J. Soens, Impact of wind energy in a future, PhD dissertation, Katholieke Universiteit Leuven, Faculteit
                Wetenschappen, Leuven (Heverlee), Belgium, ISBN 90-5682-652-2, Wettelijk depot, UDC 621.548,
                December 2005.
              15.  H. Polinder, D.J. Bang, H. Li, Z. Chen, M. Mueller, and A. McDonald, Concept report on generator
                topologies, mechanical and electromagnetic optimization. Project UpWind, Part 1 (TUD, AAU), pp. 1–51;
                Part 2 (EDIN), pp. 52–79, Project UpWind, Contract No. 019945 (SES6), “Integrated Wind Turbine
                Design,” project funded by the European Commission under the 6th EC Research and Technological
                Development, December 2007.
              16.  N.M. Bychkov, A.V. Dovgal, and V.V. Kozlov, Magnus wind turbines as an alternative to the blade ones.
                Journal of Physics: Conference Series, 75, 012004, 2007. doi:10.1088/1742-6596/75/1/012004.
              17.  H. Rouse, Elementary Mechanics of Fluids, Dover Publications Inc., New York, pp. 275–376, 1946.
              18.  A. Barbeiro, J.A. Garcia-Matos, A. Cantizano, and A. Arenas, Numerical tool for the optimization of
                wind turbines based on Magnus effect. Ninth World Wind Energy Conference and Exhibition (WWEC
                2010), Istanbul, Turkey, 2010.
              19.  J. Maro, J.R. Cardoso, F.A. Farret, D.L. Hoss, and J.R. Dreher, Magnus wind turbine with DC servo-drive
                for the cylinders and boost converter. Proceedings of the IEEE Industrial Electronics Society IECON,
                Dallas, TX, 2014.
              20.  M. Godoy Simões, B.K. Bose, and R.J. Spiegel, Design and performance evaluation of a fuzzy-logic
                based variable-speed wind  generation system.  IEEE Transactions  on  Industry Applications, 33(2),
                956–965, July/August 1997.
              21.  M. Godoy Simões, B.K. Bose, and R.J. Spiegel, Fuzzy logic based intelligent control of a variable speed
                cage machine wind generation system. IEEE Transactions on Power Electronics, 12(1), 87–95, January
                1997.

            FURTHER READING

            N.M. Bychkov, A.V. Dovgal, and A.M. Sorokin, Parametric optimization of the Magnus wind turbine. 16th
                International Conference on Methods of Aerophysical Research (ICMAR), Kazan, Russia, 2008.
            L.C. Corrêa, J.M. Lenz, C.G. Trapp, and F.A. Farret, Maximum power point tracking for Magnus wind tur-
                bines. Proceedings of the 39th Annual Conference of the IEEE Industrial Electronics Society, pp. 1716–
                1720, Vienna, Austria, November 2013.
            B.C. Doxey, Theory and application of the capacitor-excited induction generator. The Engineer Magazine,
                pp. 893–897, November 1963.
            F.A. Farret, J.R. Gomes, and C.R. Rodrigues, Sensorless speed measurement associated to electronic control
                by the load for induction turbo generators. Proceedings of SOBRAEP V Brazilian Power Electronics
                Conference, pp. 88–93, Foz de Iguaçu, Brazil, September 1999.
            R. Gono, S. Rusek, and M. Hrabcik, Wind Turbine Cylinders with Spiral Fins, Czech Science Foundation,
                Czech Republic, 2009.
            D. Luo, D. Huang, and G. Wu, Analytical solution on Magnus wind turbine power performance based on the
                blade element momentum theory. Journal of Renewable and Sustainable Energy, 3(3), 033104, 2011.
            S.S. Murthy, H.S. Nagaraj, and A. Kuriyan, Design-based computer procedures for performance prediction and
                analysis of self-excited induction generators using motor design packages. Proceedings of IEEE, 135(1),
                8–16, January 1988.
            T.K. Sengupta and S.B. Talla, Robins-magnus effect: The continuing saga. Current Science, 86(7), 2004.
            J. Zhao, Q. Hou, H. Jin, Y. Zhu, and G. Li, CFD analysis of ducted-fan UAV based on Magnus effect. Proceedings
                of IEEE International Conference on Mechatronics and Automation, pp. 1722–1726, Chengdu, China,
                August 2012.
   184   185   186   187   188   189   190   191   192   193   194