DocumentCode :
67484
Title :
Electrothermal Combined Optimization on Notch in Air-Cooled High-Speed Permanent-Magnet Generator
Author :
Xiaochen Zhang ; Weili Li ; Baoquan Kou ; Junci Cao ; Haichuan Cao ; Gerada, C. ; He Zhang
Author_Institution :
Sch. of Electr. Eng., Beijing Jiaotong Univ., Beijing, China
Volume :
51
Issue :
1
fYear :
2015
fDate :
Jan. 2015
Firstpage :
1
Lastpage :
10
Abstract :
A 30 kVA, 96000 r/min, air-cooled high-speed permanent-magnet generator (HSPMG) is investigated in this paper. Considering effects on both the magnetic circuit and heat transfer paths comprehensively, the stator slot notch in this HSPMG is optimized. First, using the time-stepping finite-element method, the transient electromagnetic fields of HSPMG are numerically calculated, and the electromagnetic losses in different components are obtained. Then, after the determination of other mechanical losses in such a machine, a 3-D fluid-thermal coupling calculation model is established, and the working temperature distribution in the HSPMG is studied. Thus, the electromagnetic-fluid-thermal coupling analysis method on the HSPMG is proposed, and the use of the influences of machine notch height on machine magnetic circuit and cooling air flowing path are investigated. Meanwhile, both the electromagnetic performance and the temperature distribution in HSPMG with different stator notch height are studied, and a series of analytical equations is deduced to describe the variations of machine performances with stator notch. Using the proposed unbalance relative weighting method, the notch height is optimized to enhance the performance of HSPMG. The obtained conclusion could provide reference for HSPMG electromagnetic calculation, cooling system design, and optimization design.
Keywords :
electromagnetic fields; finite element analysis; magnetic circuits; permanent magnet generators; stators; temperature distribution; 3-D fluid-thermal coupling calculation model; air-cooled high-speed permanent-magnet generator; apparent power 30 kVA; cooling air flowing path; cooling system design; electromagnetic losses; electromagnetic-fluid-thermal coupling analysis; electrothermal combined optimization; heat transfer paths; machine magnetic circuit; machine notch height; mechanical losses; optimization design; stator notch height; stator slot notch; time-stepping finite-element method; transient electromagnetic fields; unbalance relative weighting method; working temperature distribution; Cooling; Couplings; Electromagnetics; Fluids; Rotors; Stators; Temperature distribution; Electromagnetic; fluid; high-speed permanent-magnet generator (HSPMG); optimization; thermal;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2014.2332437
Filename :
6842635
Link To Document :
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