Thermal Performance Analysis of Jet Cooling Method in a High-Power Permanent Magnet Synchronous Motor

被引:3
|
作者
Wang, Weishu [1 ]
Shang, Mengyuan [1 ]
Li, Yunze [2 ]
Yao, Zikun [1 ]
Niu, Jingzun [1 ]
Juan, Zhen [1 ]
机构
[1] North China Univ Water Resources & Electr Power, Sch Elect Power, Zhengzhou 450045, Henan, Peoples R China
[2] Beihang Univ, Sch Aeronaut Sci & Engn, Beijing 100191, Peoples R China
关键词
permanent magnet synchronous motor; gas-liquid two phase; jet cooling; numerical simulation; electronic cooling; heat transfer enhancement; jets; impingement cooling; two-phaseflow and heat transfer; DESIGN;
D O I
10.1115/1.4055525
中图分类号
O414.1 [热力学];
学科分类号
摘要
Permanent magnet synchronous motor (PMSM) is compact and has high-power density. Heat dissipation conditions introduce new challenges and opportunities for further improvement of its power, efficiency, and reliability. In this article, a jet cooling method was proposed. The feasibility of jet cooling method was studied by taking a 600 kW PMSM as a prototype. Based on the Euler two-phase model, the effect of thermal performance was numerically studied, varying different inlet velocity, inlet liquid volume fraction, and jet cone angle. Also, the influence of the revolution speed and number of nozzles on the cooling effect was analyzed. The distribution of temperature and liquid phase was discussed. The numerical results illustrate that the maximum temperature of PMSM is only 370 K, which proves the heat dissipation capacity of the cooling system. At the air gap entrance, the temperature and liquid phase are distributed periodically. Under standard conditions, three nozzles, inlet velocity of 60 m/s, and 0.3 inlet liquid volume fraction can achieve high efficiency cooling. Heat dissipation depends largely on liquid. The cooling effect is enhanced by increasing the inlet liquid volume fraction. The optimal jet cone angle is 0 deg, which allows more liquid phase to enter the air gap. At high rotational speed, to avoid hindering the liquid phase from entering the air gap, the inlet velocity should not be less than 60 m/s.
引用
收藏
页数:15
相关论文
共 50 条
  • [31] Design and analysis of a novel hybrid cooling method of high-speed high-power permanent magnet assisted synchronous reluctance starter/generator in aviation applications
    Hong GUO
    Xu HE
    Jinquan XU
    Wei TIAN
    Xiaofeng DING
    Laicai JU
    Dehong LI
    Chinese Journal of Aeronautics, 2023, 36 (03) : 285 - 302
  • [32] Power-angle detection method for permanent magnet synchronous motor
    Li, Bing-Qiang
    Lin, Hui
    Xing, Hua-Ling
    Dianji yu Kongzhi Xuebao/Electric Machines and Control, 2013, 17 (12): : 27 - 32
  • [33] Loss Analysis of High Speed Permanent Magnet Synchronous Motor
    Xu, Zhenyong
    Geng, Haipeng
    2022 IEEE International Conference on Mechatronics and Automation, ICMA 2022, 2022, : 698 - 703
  • [34] Loss Analysis of High Speed Permanent Magnet Synchronous Motor
    Xu, Zhenyong
    Geng, Haipeng
    PROCEEDINGS OF 2022 IEEE INTERNATIONAL CONFERENCE ON MECHATRONICS AND AUTOMATION (IEEE ICMA 2022), 2022, : 698 - 703
  • [35] Analysis of High Performance Multilevel Converter Fed Permanent Magnet Synchronous Motor drive
    Bhaskar, P. Udaya
    Nethala, D. Manoj
    Mulpuri, Vamsi
    2015 INTERNATIONAL CONFERENCE ON ELECTRICAL, ELECTRONICS, SIGNALS, COMMUNICATION AND OPTIMIZATION (EESCO), 2015,
  • [36] Design and Performance Analysis of High-Speed Cryogenic Permanent Magnet Synchronous Motor
    Lv, Xinyuan
    Sun, Dongyang
    Sun, Lizhi
    2019 22ND INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES AND SYSTEMS (ICEMS 2019), 2019, : 2311 - 2316
  • [37] Thermal-hydraulic performance optimization of the spiral cooling channel in surface type permanent magnet synchronous motor
    Zhao, Hongshuo
    Zuo, Wei
    Li, Qingqing
    Cheng, Qianju
    Pan, Ni
    Zhou, Kun
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2023, 148 (19) : 10345 - 10355
  • [38] Online Estimation Method for Permanent Magnet Temperature of High-Density Permanent Magnet Synchronous Motor
    Shi, Wei
    Zhou, Xuan
    IEEJ TRANSACTIONS ON ELECTRICAL AND ELECTRONIC ENGINEERING, 2020, 15 (05) : 751 - 756
  • [39] Interior permanent magnet linear synchronous motor for high performance drives
    Sanada, M
    Morimoto, S
    Takeda, Y
    IAS '96 - CONFERENCE RECORD OF THE 1996 IEEE INDUSTRY APPLICATIONS CONFERENCE, THIRTY-FIRST IAS ANNUAL MEETING, VOLS 1-4, 1996, : 15 - 20
  • [40] Water Cold Plates Cooling in a Permanent Magnet Synchronous Motor
    Fasquelle, Aurelie
    Laloy, Daniel
    IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 2017, 53 (05) : 4406 - 4413