DocumentCode
46159
Title
Calculation and Analysis of the Surface Heat-Transfer Coefficient and Temperature Fields on the Three-Dimensional Complex End Windings of a Large Turbogenerator
Author
Jichao Han ; Weili Li ; Likun Wang ; Xingfu Zhou ; Xiaochen Zhang ; Yong Li
Author_Institution
Harbin Univ. of Sci. & Technol., Harbin, China
Volume
61
Issue
10
fYear
2014
fDate
Oct. 2014
Firstpage
5222
Lastpage
5231
Abstract
With increased turbogenerator capacity and electromagnetic load, overheating of the complex end parts has become one of the main problems affecting safe and stable turbogenerator operation. In this research, a flow network was built representing the structural and ventilation characteristics of a 330-MW turbogenerator. The fan inlet velocity and pressures (boundary conditions) of each end-region outlet were obtained by the flow network method. The 3-D transient electromagnetic field in the turbogenerator end was calculated, and the eddy current losses (heat sources) of the end parts were obtained by the finite-element method. To study the surface heat-transfer coefficient distribution on the stator-end winding surface, fluid and thermal mathematical and geometric models of the whole turbogenerator end region were given. Using the finite-volume method, the surface heat-transfer coefficient distribution on the complex 3-D stator-end winding surface, fluid-flow distribution, and temperature distribution of the end parts were investigated under rated-load conditions. The calculated temperature results match well with measured data. This research can provide a theoretical basis for calculating the heat-transfer coefficients of the outer surfaces of large turbogenerators.
Keywords
flow; heat transfer; machine windings; temperature distribution; thermal analysis; turbogenerators; 3D stator end winding surface; 3D transient electromagnetic field; boundary conditions; eddy current loss; fan inlet velocity; flow network; fluid flow distribution; fluid model; geometric model; heat source; large turbogenerator; power 330 MW; structural characteristic; surface heat transfer coefficient; temperature distribution; temperature fields; thermal mathematical model; three dimensional complex end windings; ventilation characteristic; Fluids; Heating; Stator cores; Stator windings; Turbogenerators; Windings; End region; flow network; fluid-flow distribution; surface heat-transfer coefficient; temperature distribution; transient electromagnetic field; turbogenerator;
fLanguage
English
Journal_Title
Industrial Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0278-0046
Type
jour
DOI
10.1109/TIE.2013.2297293
Filename
6701174
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