Electrical Design of a 17 MW Class HTS Motor for Ship Propulsion

被引:0
|
作者
Seungkyu Baik
Youngkil Kwon
机构
[1] Korea Electrotechnology Research Institute,Superconducting Devices & Cryogenics Group
来源
Journal of Superconductivity and Novel Magnetism | 2013年 / 26卷
关键词
Superconducting motor; Ship propulsion; HTS; Conductor cost; Design accuracy; Efficiency;
D O I
暂无
中图分类号
学科分类号
摘要
A superconducting motor shows several advantages, such as smaller size and higher efficiency, over a conventional motor, especially utilized in ship propulsion applications. However, the size reduction merit appears for large capacity, more than several MW. We develop a large capacity synchronous motor with a rotating high-temperature superconducting (HTS) coil, that is aimed to be utilized for ship propulsion, so it has a low rotating speed of about 200 rpm. The ship propulsion motor must generate high electromagnetic torque instead of low speed. Therefore, the rotor (field) coils have to generate a large magnetic flux that results in a large amount of expensive HTS conductor for the field coil. In this paper a 17 MW HTS motor for ship propulsion is designed with a cost-effective method because the HTS conductor cost is a critical factor in the construction of an HTS motor. Unlike conventional rotating machines, the superconducting motor consists of an iron-coreless structure. Most conventional motors can be designed with small error based on two-dimensional magnetic field analysis. However, the superconducting motor shows an even larger error between the two- and three-dimensional based designs. Thus, in order to improve the design accuracy, we have calculated the back electromotive force (EMF) using 3D magnetic field analysis. An output performance evaluation has also been carried out to obtain a design with higher efficiency.
引用
收藏
页码:1283 / 1287
页数:4
相关论文
共 48 条
  • [1] Electrical Design of a 17 MW Class HTS Motor for Ship Propulsion
    Baik, Seungkyu
    Kwon, Youngkil
    JOURNAL OF SUPERCONDUCTIVITY AND NOVEL MAGNETISM, 2013, 26 (04) : 1283 - 1287
  • [2] A Design Study on HTS Halbach Array for Field Coil of 40 MW Ship Propulsion Motor
    Cha, JuKyung
    Yoon, Jonghoon
    Bong, Uijong
    Hahn, Seungyong
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2023, 33 (05)
  • [3] Design and test results of a novel quench protection circuit for a HTS ship propulsion motor
    Murase Y.
    Izumi M.
    Umemoto K.
    Oryu T.
    Yokoyama M.
    Yanamoto T.
    Engineering Research Express, 2021, 3 (02):
  • [4] Design and Optimisation of a 5 MW Permanent Magnet Vernier Motor for Podded Ship Propulsion
    Arish, Nima
    Kamper, Maarten J.
    Wang, Rong-Jie
    WORLD ELECTRIC VEHICLE JOURNAL, 2024, 15 (03):
  • [5] Design of HTS axial flux motor for aircraft propulsion
    Masson, Philippe J.
    Breschi, Marco
    Tixador, Pascal
    Luongo, Cesar A.
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2007, 17 (02) : 1533 - 1536
  • [6] The performance of a 5 MW high temperature superconductor ship propulsion motor
    Snitchler, G
    Gamble, B
    Kalsi, SS
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2005, 15 (02) : 2206 - 2209
  • [7] Design of Multi-phase Permanent Magnet Motor for Ship Propulsion
    Choi, Ho-Yong
    Park, Sun Jung
    Kong, Young Kyung
    Bin, Jae Goo
    2009 INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES AND SYSTEMS, VOLS 1-3, 2009, : 567 - +
  • [8] Interior Permanent-Magnet Motor for Ship Propulsion, Design and Testing
    Ruzojcic, Branimir
    Zarko, Damir
    Ban, Drago
    EPE: 2009 13TH EUROPEAN CONFERENCE ON POWER ELECTRONICS AND APPLICATIONS, VOLS 1-9, 2009, : 4428 - 4437
  • [9] Design of a 1000 HP Permanent Magnet Synchronous Motor for Ship Propulsion
    Bianchi, N.
    Bolognani, S.
    Ruzojcic, Branimir
    EPE: 2009 13TH EUROPEAN CONFERENCE ON POWER ELECTRONICS AND APPLICATIONS, VOLS 1-9, 2009, : 5834 - 5841
  • [10] A Superconducting Vernier Motor for Electric Ship Propulsion
    Li, Wenlong
    Ching, T. W.
    Chau, K. T.
    Lee, Christopher H. T.
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2018, 28 (03)