A compact HTS 5 kWh/250 kW flywheel energy storage system

被引:74
|
作者
Werfel, Frank N. [1 ]
Floegel-Delor, Uta
Riedel, Thomas
Rothfeld, Rolf
Wippich, Dieter
Goebel, Bernd
Reiner, Gerhard
Wehlau, Niels
机构
[1] Adelwitz Technol Zentrum GmbH ATZ, Arzberg, Germany
[2] L 3 Commun Magnet Motor GmbH, D-82319 Starnberg, Germany
关键词
damping; flywheel; HTS bearing; losses; stiffness;
D O I
10.1109/TASC.2007.899252
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Flywheel energy storage systems (FESS) are expected to contribute to uninterruptible power supplies (UPS) and power quality tasks significantly. We present design and the component results of a compact 5 kWh/250 kW HTS flywheel whereby the rotor will be totally magnetically stabilized. The design is optimized for highly integrated functionality of rotor body, generator/motor and bearings. The heart of the FESS is an ironless; high power PM generator/motor delivering 250 kW. An advanced flywheel body manufactured from graphite fiber is stabilized by two magnetic bearings. A prototype 200 mm HTS bearing has been constructed and tested up to a load of 1 ton axially and 0.47 ton radially capable to carry the rotor weight of about 0.5 t. With a coefficient of friction (COF) of about 10(-6) the rotational drag was low. A passive PM bearing giving 80 N/mm radial stiffness/per pole was studied. HTS-PM damping response dependent on the temperature shows Lehr factors of 5-10% damping between 50 and 80 K. Eddy current dampers. could support rotor dynamic stability.
引用
收藏
页码:2138 / 2141
页数:4
相关论文
共 50 条
  • [21] A 0.5 kWh flywheel energy storage system using a high-Tc superconducting magnetic bearing
    Miyagawa, Y
    Kameno, H
    Takahata, R
    Ueyama, H
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 1999, 9 (02) : 996 - 999
  • [22] A compact and efficient flywheel energy storage system with integrated magnetic bearings
    Zhang, C
    Tseng, KJ
    Zhou, J
    IPEMC 2004: THE 4TH INTERNATIONAL POWER ELECTRONICS AND MOTION CONTROL CONFERENCE, VOLS 1-3, CONFERENCE PROCEEDINGS, 2004, : 294 - 299
  • [23] HTS-magnet levitation bearing for flywheel energy storage
    Xia, ZL
    Ma, K
    Cooley, R
    Chu, WK
    CHINESE JOURNAL OF PHYSICS, 1996, 34 (02) : 455 - 461
  • [24] Flywheel for energy storage system
    Takahata, R
    JOURNAL OF JAPANESE SOCIETY OF TRIBOLOGISTS, 2004, 49 (05) : 416 - 421
  • [25] Double-Evaporator Thermosiphon for Cooling 100 kWh Class Superconductor Flywheel Energy Storage System Bearings
    Jung, Seyong
    Lee, Jisung
    Park, Byungjun
    Jeong, Sangkwon
    Ko, Junseok
    Lee, Jeonghyun
    Han, Younghee
    Lee, Jeongphil
    Park, Byungchul
    Kim, Hyerim
    Sung, Taehyun
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2009, 19 (03) : 2103 - 2106
  • [26] Analyses and Tests of HTS Bearing For Flywheel Energy System
    Yu, Zhiqiang
    Zhang, GuoMin
    Qiu, Qingquan
    Hu, Lei
    Zhuang, Biao
    Qiu, Ming
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2014, 24 (03)
  • [27] Advanced flywheel energy storage system
    不详
    AIRCRAFT ENGINEERING AND AEROSPACE TECHNOLOGY, 2006, 78 (02): : 163 - 164
  • [28] Review of flywheel energy storage system
    Zhou Long
    Qi Zhiping
    PROCEEDINGS OF ISES SOLAR WORLD CONGRESS 2007: SOLAR ENERGY AND HUMAN SETTLEMENT, VOLS I-V, 2007, : 2815 - 2819
  • [29] A Flywheel Cell for Energy Storage System
    Nguyen, T. D.
    Tseng, K. J.
    Zhang, S.
    Zhang, C.
    2008 IEEE INTERNATIONAL CONFERENCE ON SUSTAINABLE ENERGY TECHNOLOGIES (ICSET), VOLS 1 AND 2, 2008, : 214 - 219
  • [30] A flywheel variator energy storage system
    Jefferson, CM
    Ackerman, M
    ENERGY CONVERSION AND MANAGEMENT, 1996, 37 (10) : 1481 - 1491