DocumentCode :
737601
Title :
Thermal Optimization for a HSPMG Used for Distributed Generation Systems
Author :
Li, Weili ; Zhang, Xiaochen ; Cheng, Shukang ; Cao, Junci
Author_Institution :
Beijing Jiaotong Univ., Beijing, China
Volume :
60
Issue :
2
fYear :
2013
Firstpage :
474
Lastpage :
482
Abstract :
High-speed permanent-magnet generators (HSPMGs) are common and important power generation equipment used in distributed generation systems. A 100-kW-level HSPMG is investigated in this paper, and its cooling system is optimized through electromagnetic-fluid-thermal analysis. First, the 2-D electromagnetic field of the machine is calculated by using the time-stepping finite element method, and the electromagnetic performance and loss distributions (heat sources) are determined, particularly the eddy loss of the rotor sleeve. Then, a thermal analysis model of the fluid for the HSPMG is established. Through numerical calculating, the whole region 3-D temperature distribution in the HSPMG is obtained, in which the influence of temperature on material properties is considered. Considering the variations of heat transfer abilities of the cooling medium, the temperatures in machines with different cooling structures are comparatively analyzed, and new cooling grooves with variable cross sections are proposed, which make the temperatures in the machine lower and more evenly distributed. The obtained conclusions may provide useful reference for the optimal design and research of HSPMGs.
Keywords :
distributed power generation; finite element analysis; heat transfer; permanent magnet generators; thermal analysis; 2D electromagnetic field; 3D temperature distribution; FEM; HSPMG; cooling grooves; cooling medium; cooling structures; distributed generation systems; eddy loss; electromagnetic performance; electromagnetic-fluid-thermal analysis; heat sources; heat transfer abilities; high-speed permanent-magnet generators; loss distributions; material properties; power 100 kW; power generation equipment; rotor sleeve; temperature properties; thermal optimization; time-stepping finite element method; variable cross sections; Cooling; Fluids; Rotors; Stator cores; Temperature; Windings; Groove; high-speed permanent-magnet generators (HSPMG); optimization; thermal;
fLanguage :
English
Journal_Title :
Industrial Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0046
Type :
jour
DOI :
10.1109/TIE.2012.2187418
Filename :
6151131
Link To Document :
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