DocumentCode :
53815
Title :
Influence of the End Ventilation Structure Change on the Temperature Distribution in the End Region of Large Water–Hydrogen–Hydrogen Cooled Turbogenerator
Author :
Li Weili ; Han Jichao ; Huo Feiyang ; Zhou Xingfu ; Zhang Yihuang ; Li Yong
Author_Institution :
Beijing Jiaotong Univ., Beijing, China
Volume :
28
Issue :
2
fYear :
2013
fDate :
Jun-13
Firstpage :
278
Lastpage :
288
Abstract :
Flow network was built according to the ventilation structural characteristics of a 330 MW large water-hydrogen-hydrogen cooled turbogenerator. The variation of the fan inlet velocities, and the flow rates and pressures (boundary conditions) of each end region outlet were obtained, respectively, with different air gap spacer heights and different shelter board widths between the long press fingers by flow network method, and the relative law was analyzed. In order to study the influence of the changed end ventilation structures on the temperature distribution of the end parts, 3-D transient electromagnetic field in the turbogenerator end was calculated, and the eddy current losses (heat sources) of the end parts were gained by the finite-element method. Meanwhile, the fluid and thermal mathematics and physical models of the end region were given. Using the finite-volume method, the influence of the changed end ventilation structures on the surface heat transfer coefficient and the temperature of end parts was researched. It shows that the proper changes in the air gap spacer height and shelter board width decrease the copper shield temperature and result in a reasonable temperature distribution in the end parts. It provides the useful reference for the further design of the large turbogenerators.
Keywords :
air gaps; eddy current losses; electromagnetic field theory; finite element analysis; finite volume methods; heat transfer; temperature distribution; turbogenerators; ventilation; 3D transient electromagnetic field; air gap spacer heights; copper shield temperature; eddy current losses; end parts temperature; end region outlet; end ventilation structure; end ventilation structures; fan inlet velocities; finite-element method; finite-volume method; flow network; flow network method; flow rates; fluid mathematics; large water-hydrogen-hydrogen cooled turbogenerator; long press fingers; physical models; power 330 MW; shelter board widths; surface heat transfer coefficient; temperature distribution; thermal mathematics; ventilation structural characteristics; ventilation structures; Air gap spacer; end region; flow network; shelter board; temperature field; transient electromagnetic field; turbogenerators;
fLanguage :
English
Journal_Title :
Energy Conversion, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8969
Type :
jour
DOI :
10.1109/TEC.2013.2253104
Filename :
6514896
Link To Document :
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