Design of a 35 kV high-temperature superconducting synchronous machine with optimized field winding

被引:0
|
作者
Luo, Chao [1 ]
Xu, Bowen [1 ]
Ma, Jien [1 ]
Zhang, Jiancheng [2 ]
Shou, Jiabo [1 ]
Fang, Youtong [1 ]
机构
[1] Zhejiang Univ, Coll Elect Engn, Hangzhou 310027, Peoples R China
[2] State Grid Zhejiang Elect Power Corp, Elect Power Res Inst, Hangzhou 310014, Peoples R China
来源
关键词
High-voltage stator-cable windings; Superconducting machines; Inverted trapezoidal field winding; Total harmonic distortion; (sic)(sic)(sic)(sic); (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic); (sic)(sic)(sic)(sic)(sic)(sic)(sic); (sic)(sic)(sic)(sic)(sic); GENERATOR;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This paper proposes the application of high-voltage stator-cable windings in superconducting machines, based on the characteristics of strong magnetic fields and large air gaps. Cross-linked polyethylene cable winding can be employed to achieve a rated voltage of 35 kV in direct-current (DC)-field superconducting machines, thereby enabling a direct connection between the superconducting machine and the power grid, eliminating the need for transformers. We first, through finite element analysis, demonstrate that the proposed high-voltage high-temperature superconducting machine not only meets the requirement of a 35 kV-rated voltage, but also exhibits minimal flux leakage, torque fluctuation, and harmonic distortion. We then compare three candidate types to discuss the tradeoff between the multi-group superconducting field winding arrangement and machine performances. We propose inverted trapezoidal superconducting field winding as a promising candidate, because it has minimal superconductivity material usage, the largest safety margin for the superconducting coils (SCs), low thrust ripple, and low total harmonic distortion with the desired 35 kV-rated voltage. Finally, through large-scale design parameter sweeping, we show how we selected the optimal parameters for field winding and validated them by the finite element method. (sic) (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic). (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic),(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).(sic)(sic)(sic)1. (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)35 kV(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic); 2. (sic)35 kV(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic),(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).(sic) (sic)1. (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)35 kV(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic); 2. (sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)35 kV(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic); 3. (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).(sic) (sic)1. (sic)(sic)(sic)(sic)35 kV(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic): (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic). 2. (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)3.8 T, (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)1840, (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)92.4%(sic)90.8%. 3. (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)0.3%; (sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).
引用
收藏
页码:687 / +
页数:30
相关论文
共 50 条
  • [1] Design of a 35 kV high-temperature superconducting synchronous machine with optimized field winding
    Luo, Chao
    Xu, Bowen
    Ma, Jien
    Zhang, Jiancheng
    Shou, Jiabo
    Fang, Youtong
    JOURNAL OF ZHEJIANG UNIVERSITY-SCIENCE A, 2024, 25 (09): : 687 - +
  • [2] Topology Optimization of a High-Temperature Superconducting Field Winding of a Synchronous Machine
    Pozzi, Matias
    Mijatovic, Nenad
    Jensen, Bogi Bech
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2013, 23 (06)
  • [3] Advances in the development of synchronous machines with high-temperature superconducting field winding at Siemens AG
    Klaus, Gunar
    Nick, Wolfgang
    Neumuelller, Hemiz-Werner
    Nerowski, Georg
    McCown, William
    2006 POWER ENGINEERING SOCIETY GENERAL MEETING, VOLS 1-9, 2006, : 3226 - +
  • [4] Armature reaction effects on a high temperature superconducting field winding of an synchronous machine: Experimental results
    Mijatovic, Nenad
    Jensen, Bogi Bech
    11TH EUROPEAN CONFERENCE ON APPLIED SUPERCONDUCTIVITY (EUCAS2013), PTS 1-4, 2014, 507
  • [5] Field optimisation in a synchronous generator with high temperature superconducting field winding and magnetic core
    Ship, KS
    Goddard, KF
    Sykulski, JK
    IEE PROCEEDINGS-SCIENCE MEASUREMENT AND TECHNOLOGY, 2002, 149 (05) : 194 - 198
  • [6] Opportunities for energy storing in magnetic field of high-temperature superconducting winding
    Kondratowicz-Kucewicz B.
    Acta Physica Polonica A, 2020, 138 (05): : 705 - 709
  • [7] Opportunities for Energy Storing in Magnetic Field of High-Temperature Superconducting Winding
    Kondratowicz-Kucewicz, B.
    ACTA PHYSICA POLONICA A, 2020, 138 (05) : 705 - 709
  • [8] System of Equations for a Synchronous Machine with Superconducting Field Winding.
    Krenkova, Olga
    Elektrotechnicky obzor, 1984, 73 (02): : 100 - 109
  • [9] ON THE DESIGN OF ARMATURE WINDING OF LARGE SUPERCONDUCTING SYNCHRONOUS MACHINE.
    Ushio, Kazuhiro
    Bulletin of the Electrotechnical Laboratory, Tokyo, 1977, 41 (2-3): : 236 - 241
  • [10] THE MAGNETIC REACTION FIELD IN THE END REGION OF A SYNCHRONOUS MACHINE WITH SUPERCONDUCTING FIELD WINDING
    KOFLER, H
    SOMMERHUBER, C
    ZEROBIN, F
    IEEE TRANSACTIONS ON MAGNETICS, 1981, 17 (05) : 1970 - 1973