Study on the Fluid-Solid Coupling Heat Transfer in the Stator of Large Synchronous Condenser Considering Complex Transposition Structure

被引:2
作者
Bian, Xu [1 ,2 ,3 ]
Sun, Yutian [1 ]
Zou, Jibin [3 ]
Li, Jiaze [2 ]
机构
[1] Harbin Elect Machinery Co Ltd, Harbin 150040, Peoples R China
[2] Harbin Inst Technol, Sch Elect Engn & Automat, Harbin 150080, Peoples R China
[3] Harbin Univ Sci & Technol, Coll Elect & Elect Engn, Harbin 150006, Peoples R China
基金
中国博士后科学基金;
关键词
Stator windings; Stators; Stator cores; Couplings; Insulation; Heat transfer; Fluids; Large synchronous condenser; complex transposition structure; fluid-solid coupling; heat transfer; stator; TEMPERATURE-FIELD; TURBOGENERATOR; FAULT; MODEL; BAR;
D O I
10.1109/ACCESS.2024.3363911
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
To solve the problem in which it is difficult to consider the complex transposition structure of the stator winding in the stator fluid-solid coupling analysis of a large synchronous condenser, a three-dimensional stator fluid-solid coupling model considering the transposition structure of the stator winding is established in this paper. Based on the heat transfer characteristics of the transposition insulation in the slot portion and involute insulation in the end portion, a non-uniform grid division method is proposed to solve the three-dimensional fluid-solid coupling model. Then, taking a 300 Mvar synchronous condenser as an example, the stator fluid distribution and temperature distribution were calculated and analyzed, and the results were compared with the non-transposition model and short-circuit type test data. The results show that the transposition structure affects the temperature distribution trend, temperature value and location of the highest temperature of the stator winding. The calculated results obtained using the transposition model were closer to the test data. Finally, the stator temperatures under no-load, over-excited, and no-excited operating conditions were calculated and compared. The results show that the stator temperature distribution trends and values are significantly affected by operating conditions. The stator temperature under the over-excited condition was the highest, and that under the no-load condition was the lowest.
引用
收藏
页码:26110 / 26118
页数:9
相关论文
共 20 条
[1]  
Bian Xu, 2022, 2022 IEEE 5th International Electrical and Energy Conference (CIEEC), P689, DOI 10.1109/CIEEC54735.2022.9846078
[2]  
Bian X., 2023, P CSEE, P1
[3]   Temperature estimation of water cooling stator windings considering twisted structure and resistance distribution [J].
Bian, Xu ;
Zhao, Yan ;
Liang, Yanping .
IET ELECTRIC POWER APPLICATIONS, 2022, 16 (03) :315-327
[4]   Thermal Optimization of a High-Power Salient-Pole Electrical Machine [J].
Bornschlegell, Augusto Salomao ;
Pelle, Julien ;
Harmand, Souad ;
Fasquelle, Aurelie ;
Corriou, Jean-Pierre .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2013, 60 (05) :1734-1746
[5]  
Fan SX, 2018, C IND ELECT APPL, P210, DOI 10.1109/ICIEA.2018.8397716
[6]   3D Transient Electromagnetic-Temperature Field Analysis of the Loss and Heat of the Damper Bars of a Large Tubular Hydro-Generator During Short Circuit Faults [J].
Hu, Qing-Ling ;
Xiao, Ke ;
Zhou, Zhi-Ting ;
Fan, Zhen-Nan ;
Yang, Yong ;
Bian, Zu-Ying ;
Li, Jing-Can ;
Yao, Bing .
IEEE ACCESS, 2020, 8 :135963-135974
[7]   Analysis of magnetic pole loss and heat in a tubular hydro-generator based on 3D electromagnetic field-thermal network modelling [J].
Hu, Wen-hao ;
Xie, Jia-qi ;
Zhou, Zhi-ting ;
Fan, Zhen-nan ;
Yang, Yong ;
Dong, Xiu-cheng ;
Gu, Shi-fu ;
Li, Jing-can .
IET ELECTRIC POWER APPLICATIONS, 2023, 17 (05) :730-742
[8]  
Kaboli S, 2016, IEEE IND ELEC, P1501, DOI 10.1109/IECON.2016.7793194
[9]   Calculation of a Complex 3-D Model of a Turbogenerator With End Region Regarding Electrical Losses, Cooling, and Heating [J].
Li Weili ;
Guan Chunwei ;
Zheng Ping .
IEEE TRANSACTIONS ON ENERGY CONVERSION, 2011, 26 (04) :1073-1080
[10]  
Liang Y.-p., 2012, PROC 6 INT C ELECTRO, P1