Scaling studies of High Speed High Temperature Superconducting Generator

被引:0
|
作者
Lokhandwalla, M. [1 ]
Haran, K. S. [2 ]
Alexander, J. P. [2 ]
机构
[1] Hamilton Sundstrand, 1 Hamilton Rd, Windsor Locks, CT 06074 USA
[2] Global Res Ctr, Elect Machines Lab, Gen Elect, Niskayuna 12309, NY USA
关键词
high-temperature superconductors; homopolar generators; inductor alternators; superconducting rotating machines;
D O I
暂无
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
The sizing of a high speed, high power density, high temperature superconducting (HTS) electric generator is discussed here. Previous work discussed the advantages of a homopolar inductor alternator (HIA) machine topology for the high speed, high power density application - i.e., the enhanced magneto-motive force (MMF) capability of the HTS coil combined with high rotor tip velocity and a liquid cooled 'air gap' wound armature. In this work we present the sizing/scaling of a family of machines based on this topology. The goal of this exercise is to obtain power entitlement and power density of the machine for a given physical size within mechanical, thermal and electrical constraints. A prototype machine was designed and tested [1] validating the assumptions used in this sizing/scaling model. Effects of some key design changes are also discussed. Power densities in the range of 4.2-8.8 kW/kg can be obtained depending on the rotor material, and HTS wire, for 3-5MW rating. Comparison is made with high speed permanent magnet (PM) machines indicating a significant weight reduction - at least 500 kg for a 5MW machine or 1000 kg for a 15.6MW machine.
引用
收藏
页码:751 / 756
页数:6
相关论文
共 50 条
  • [41] Photoemission studies of the normal and high-temperature superconducting states
    Margaritondo, G
    Onellion, M
    CZECHOSLOVAK JOURNAL OF PHYSICS, 1996, 46 : 1075 - 1076
  • [42] Analytical studies of the thermal stability of a high temperature superconducting tube
    Lévêque, J
    Netter, D
    Masson, P
    Rezzoug, A
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2001, 11 (01) : 1836 - 1839
  • [43] HIGH-TEMPERATURE SUPERCONDUCTING CUPRATES - SUBSTITUTIONAL AND RELATED STUDIES
    NARLIKAR, AV
    AGARWAL, SK
    RAO, CVN
    SYNTHETIC METALS, 1989, 33 (02) : 141 - 169
  • [44] High Speed Generator in a CHP Unit
    Chysky, Jan
    Novak, Martin
    Novak, Jaroslav
    IECON 2014 - 40TH ANNUAL CONFERENCE OF THE IEEE INDUSTRIAL ELECTRONICS SOCIETY, 2014, : 3831 - 3836
  • [45] High speed gated clock generator
    An, Qi
    Chen, Hucheng
    Zhang, Pengjie
    Wang, Yanfang
    Hedianzixue Yu Tance Jishu/Nuclear Electronics & Detection Technology, 1998, 18 (02): : 113 - 115
  • [46] High-speed demonstration of a superconducting pseudo-random bit-sequence generator
    Wang, ZQ
    Jeffery, MJ
    Perold, WJ
    Van Duzer, T
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2000, 10 (02) : 1593 - 1597
  • [47] HIGH-POWER-DENSITY SUPERCONDUCTING GENERATOR
    GAMBLE, BB
    KEIM, TA
    JOURNAL OF ENERGY, 1982, 6 (01): : 38 - 44
  • [48] Characteristics of superconducting generator at high response excitation
    Nitta, Tanzo
    Tanaka, Shoichi
    Okada, Takao
    Electrical Engineering in Japan (English translation of Denki Gakkai Ronbunshi), 1992, 112 (05): : 26 - 35
  • [49] HIGH-SPEED SUPERCONDUCTING ROTOR
    PARKER, JH
    BLAUGHER, RD
    PATTERSON, A
    VECCHIO, PD
    MCCABRIA, JL
    IEEE TRANSACTIONS ON MAGNETICS, 1975, MA11 (02) : 640 - 645
  • [50] Design and Test of a High-Speed Double-Winding High Temperature Superconducting Synchronous Motor
    Cao Jiwei
    Han Zhengnan
    Song Yuchen
    Li Liyi
    IEEE ACCESS, 2020, 8 : 77470 - 77481