Superconducting energy storage flywheel - An attractive technology for energy storage

被引:3
|
作者
Tang J.-Q. [1 ]
Liu G. [1 ]
Fang J.-C. [1 ]
机构
[1] School of Instrumentation and Optoelectronic Engineering, Beijing University of Aeronautics and Astronautics
基金
中国博士后科学基金;
关键词
Energy storage; Rotor; Superconducting energy storage flywheel; Superconducting journal bearing; Superconducting thrust bearing;
D O I
10.1007/s12204-010-7151-9
中图分类号
学科分类号
摘要
Flywheel energy storage (FES) can have energy fed in the rotational mass of a flywheel, store it as kinetic energy, and release out upon demand. The superconducting energy storage flywheel comprising of magnetic and superconducting bearings is fit for energy storage on account of its high efficiency, long cycle life, wide operating temperature range and so on. According to the high temperature superconducting (HTS) cooling mode, there are zero field cooling (ZFC) bearings and field cooling (FC) bearings. In practice, the superconducting bearings are formed by field-cooled superconductors and permanent magnets (PMs) generally. With respect to the forces between a permanent magnet and a superconductor, there are axial (thrust) bearings and radial (journal) bearings. Accordingly, there are two main types of high-temperature superconducting energy storage flywheels, and if a system comprising both the thrust bearing and the radial bearing will have the characteristics of both types of bearings. Magnetic force, magnetic stiffness and damping are these three main parameters to describe the levitation characteristics. Arrangement and shape of superconductors, thickness of superconductor, superconducting flux creep and critical current density of the superconductor affect the magnetic levitation force of these superconducting bearings. The key factors of FES technology, such as flywheel material, geometry, length and its support system were described, which directly influence the amount of energy storage and flywheel specific energy. All these results presented in this paper indicate that the superconducting energy storage flywheel is an ideal form of energy storage and an attractive technology for energy storage. © Shanghai Jiaotong University and Springer-Verlag Berlin Heidelberg 2010.
引用
收藏
页码:76 / 83
页数:7
相关论文
共 50 条
  • [21] Ring-shaped flywheel energy storage systems with superconducting levitation
    Teshima, H
    Tawara, T
    Kobuchi, J
    Suzuki, T
    Shimada, R
    PROCEEDINGS OF THE POWER CONVERSION CONFERENCE - NAGAOKA 1997, VOLS I AND II, 1997, : 701 - 706
  • [22] Halbach array superconducting magnetic bearing for a flywheel energy storage system
    Sotelo, GG
    Ferreira, AC
    de Andrade, R
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2005, 15 (02) : 2253 - 2256
  • [23] Voltage sags compensation using a superconducting flywheel energy storage system
    de Andrade, R
    Ferreira, AC
    Sotelo, GG
    Neto, JLS
    Rolim, LGB
    Suemitsu, WI
    Bessa, MF
    Stephan, RM
    Nicolsky, R
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2005, 15 (02) : 2265 - 2268
  • [24] Magnetic field simulations in flywheel energy storage system with superconducting bearing
    Samoh, Asma
    Sirisathitkul, Chitnarong
    Cheedket, Sampart
    Danworaphong, Sorasak
    UPB Scientific Bulletin, Series C: Electrical Engineering and Computer Science, 2019, 81 (03): : 227 - 236
  • [25] Study of Magnetic Coupler With Clutch for Superconducting Flywheel Energy Storage System
    Wu, Yilong
    Zhang, Guomin
    Wu, Yue
    Zhang, Dong
    Jing, Liwei
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2024, 34 (05) : 1 - 5
  • [26] Flywheel Energy Storage System Using Superconducting Magnetic Bearing(SMB)
    Komori M.
    Seimitsu Kogaku Kaishi/Journal of the Japan Society for Precision Engineering, 2023, 89 (11): : 808 - 811
  • [27] Improving the dynamics of a flywheel energy storage system with superconducting magnetic bearings
    Komori, M
    Kawashima, T
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2004, 14 (02) : 1655 - 1658
  • [28] Commercialization of flywheel energy storage technology on the international space station
    Wagner, RC
    Boyle, DR
    Decker, K
    2002 37TH INTERSOCIETY ENERGY CONVERSION ENGINEERING CONFERENCE (IECEC), 2002, : 146 - 150
  • [29] Energy Storage in a Motor Combined High Temperature Superconductor and Flywheel Energy Storage
    Doffing, John
    Aravinthan, Visvakumar
    Mehraein, Hootan
    Cluff, Kim
    2014 INTERNATIONAL CONFERENCE ON RENEWABLE ENERGY RESEARCH AND APPLICATION (ICRERA), 2014, : 401 - 405
  • [30] Advanced flywheel energy storage system
    不详
    AIRCRAFT ENGINEERING AND AEROSPACE TECHNOLOGY, 2006, 78 (02): : 163 - 164