Analysis of the comprehensive physical field for a new flywheel energy storage motor/generator on ships

被引:3
作者
Yu Y. [1 ,2 ]
Wang Y. [1 ]
Zhang G. [1 ]
Sun F. [2 ]
机构
[1] Research Institute of Energy Storage Technology and Application, Harbin Engineering University
[2] Department of Automation, Harbin Engineering University
关键词
comprehensive physical field; finite element analysis; flywheel energy storage; Halbach array magnet structure; marine power system; motor/generator;
D O I
10.1007/s11804-012-1115-4
中图分类号
学科分类号
摘要
A novel flywheel energy storage (FES) motor/generator (M/G) was proposed for marine systems. The purpose was to improve the power quality of a marine power system (MPS) and strengthen the energy recycle. Two structures including the magnetic or non-magnetic inner-rotor were contrasted in the magnetostatic field by using finite element analysis (FEA). By optimally designing the size parameters, the average speed of FEA results of was 17 200 r/m, and the current was controlled between 62 and 68 A in the transient field. The electrical machine electromagnetism design was further optimized by the FEA in the temperature field, to find the local overheating point under the normal operation condition and provide guidance for the cooling system. Finally, it can be concluded from the comprehensive physical field analysis that the novel redundant structure M/G can improve the efficiency of the M/G and maintain the stability of the MPS. © 2012 Harbin Engineering University and Springer-Verlag Berlin Heidelberg.
引用
收藏
页码:134 / 142
页数:8
相关论文
共 20 条
[1]  
Ckdenas R., Peiia R., Ashe G., Clare J., Control strategies for energy recovery from a flywheel using a vector controlled induction machine, 2000 IEEE 31st Annual Power Electronics Specialists Conference, pp. 454-459, (2000)
[2]  
Jang S.M., You D.J., Ko K.J., Choi S.K., Design and experimental evaluation of synchronous machine without iron loss using double-sided Halbach magnetized PM rotor in high power FESS, IEEE Transactions on Magnetics, 44, 11, pp. 4337-4340, (2008)
[3]  
Jang S.M., You D.J., Ko K.J., Choi S.K., Analysis on operational power and eddy current losses for applying coreless double-sided permanent magnet synchronous motor/generator to high-power flywheel energy storage system, Journal of Applied Physics, 105, 7, pp. 105-107, (2009)
[4]  
Kato S., Takaku T., Sumitani H., Shimada H., Development of voltage sag compensator and UPS using a flywheel induction motor and an engine generator, Electrical Engineering in Japan (English Translation of Denki Gakkai Ronbunshi), 167, 1, pp. 844-850, (2009)
[5]  
Kohari Z., Test results of a compact superconducting flywheel energy storage with disk-type permanent magnet motor/generator unit, IEEE Transactions on Applied Superconductivity, 19, 3, pp. 2095-2098, (2009)
[6]  
Park J.D., Kalev C., Hofmann H.F., Control of high-speed solid-rotor synchronous reluctance motor/generator for flywheel-based uninterruptible power supplies, IEEE Transactions on Industrial Electronics, 55, 8, pp. 3038-3046, (2008)
[7]  
Rajapakshe A., Madawala U.K., Muthumani D., A model for a fly-wheel driven by a grid connected switch reluctance machine, 2008 IEEE International Conference on Sustainable Energy Technologies, pp. 1025-1030, (2008)
[8]  
Tang P., Research on Magnetic Suspension Flywheel Electric Machine for Energy Storage and Control of Drive System, pp. 2-6, (2009)
[9]  
Tang S., Research on Theory of Magnetic Suspension Supporting System and Application for Flywheel Battery, pp. 1-2, (2003)
[10]  
Upadhyay P., Mohan N., Design and FE analysis of surface mounted permanent magnet motor/generator for high-speed modular flywheel energy storage systems, Proceedings of the 2009 IEEE Energy Conversion Congress and Exposition, pp. 3630-3633, (2009)