Bolund B, Bernhoff H, Leijon M. Flywheel energy and power storage systems[J]. Renewable and Sustainable Energy Reviews, 2007, 11(2): 235-258.
[2]
Ray P K, Mohanty S R, Kishor N. Frequency regulation of hybrid renewable energy system for large band wind speed variation[C]. 2009 International Conference on Power Systems, 2010: 1-6.
[3]
Kweder J, Wildfire P, Panther C, et al. Design of a flywheel based energy storage and distribution system for rural villages in China[J]. SAE International Journal of Passenger Cars-Mechanical Systems, 2009, 2(1): 703-712.
[4]
Wang M H. Application of flywheel energy storage system to enhance transient stability of power systems[J]. Electric Power Components and Systems, 2005, 33(4): 463-479.
[5]
Samineni S, Johnson B K, Hess H L, et al. Modeling and analysis of a flywheel energy storage system for voltage sag correction[J]. IEEE Transactions on Industry Applications, 2006, 42(1): 42-52.
[6]
Brown D R, Chvala W D. Flywheel energy storage: an alternative to batteries for UPS systems[J]. Energy Engineering: Journal of the Association of Energy Engineering, 2005, 102(5): 7-26.
[7]
Swett D W, Blanche I V. Flywheel charging module for energy storage used in electromagnetic aircraft launch system[J]. IEEE Transactions on Magnetics, 2005, 41(1): 525-528.
[8]
Hara M, Yamamura N, Ishida M, et al. Compensation of power fluctuations of wind power generation by means of biomass gas turbine generator and flywheel energy storage equipment[J]. Electrical Engineering in Japan, 2010, 170(3): 1-8.
[9]
Takahashi R, Tamura J. Frequency control of isolated power system with wind farm by using flywheel energy storage system[C]. Proceedings of the 2008 International Conference on Electrical Machines, 2008.
[10]
Ryoman A, Nishio T, Futami M, et al. Certification of power system stabilizing by adjustable speed generator with flywheel effect[J]. Transactions of the Institute of Electrical Engineers of Japan B, 2002, 122(9): 985-995.
[11]
Tzeng J, Emerson R, Moy P. Composite flywheels for energy storage[J]. Composites Science and Technology, 2006, 66(1): 2520-2527.
[12]
Bailey C, Saban D M, Guedes P P. Design of high-speed direct-connected permanent-magnet motors and generators for the petrochemical industry[J]. IEEE Transactions on Industry Applications, 2009, 45(3): 1159-1165.
[13]
Pan Z, Bkayrat R A. Modular motor/converter system topology with redundancy for high-speed, high-power motor applications[J]. IEEE Transactions on Power Electronics, 2010, 25(2): 408-416.
[14]
Strasik M, Hull J R, Mittleider J A, et al. An overview of Boeing flywheel energy storage systems with high-temperature superconducting bearings[J]. Superconductor Science and Technology, 2010, 23(3): 383-390.
[15]
Werfel F N, Floegel Delor U, Riedel T, et al. A compact HTS 5kWh/250kW flywheel energy storage system[J]. IEEE Transactions on Applied Supercon- ductivity, 2007, 17(2): 2138-2141.
[16]
Sun X D, Koh K H, Yu B G, et al. Fuzzy-logic-based V/f control of an induction motor for a DC grid power-leveling system using flywheel energy storage equipment[J]. IEEE Transactions on Industrial Electronics, 2009, 56(8): 3161-3168.