DocumentCode :
1758984
Title :
Influence of Copper Shield Structure on 3-D Electromagnetic Field, Fluid and Temperature Fields in End Region of Large Turbogenerator
Author :
Huo Feiyang ; Han Jichao ; Li Weili ; Zhou Xingfu ; Zhang Yihuang ; Li Yong ; Guan Chunwei
Author_Institution :
Beijing Jiaotong Univ., Beijing, China
Volume :
28
Issue :
4
fYear :
2013
fDate :
Dec. 2013
Firstpage :
832
Lastpage :
840
Abstract :
A new kind of the copper shield structure called the empty solid copper shield structure (ESCSS) in the large turbogenerator is proposed in this paper. Based on the complex structure characteristics of a 330-MW water-hydrogen-hydrogen cooled turbogenerator, the flow network within a half of the generator is established, and the total flow rate, pressure, flow rates (boundary conditions) of the various ventilation ducts and the chambers in the generator are separately obtained after solving the equations of the flow network when the traditional copper shield structure and the ESCSS are adopted. The 3-D transient electromagnetic field of the generator end region is calculated by using the time-stepping FEM, and the electromagnetic loss distributions (heat sources) are determined separately. Then, the fluid and thermal analysis model for the whole end region is established. Through numerical calculating, the whole end region 3-D fluid and temperature distributions are obtained separately. The results show that the new copper shield structure makes the copper shield temperature much lower. Meanwhile, the copper shield material is saved. The obtained conclusions may provide useful reference for the optimal design and research of the large turbogenerator.
Keywords :
copper; electromagnetic fields; thermal analysis; turbogenerators; ventilation; 3D electromagnetic field; 3D fluid; 3D transient electromagnetic field; Cu; ESCSS; boundary conditions; complex structure; copper shield material; electromagnetic loss distributions; empty solid copper shield structure; flow network; flow rate; heat sources; power 330 MW; temperature distributions; temperature fields; thermal analysis; ventilation ducts; water-hydrogen-hydrogen cooled turbogenerator; Boundary conditions; Copper; Electromagnetic fields; Finite element analysis; Mathematical model; Turbogenerators; ESCSS; end region; flow network; temperature field; transient electromagnetic field; turbogenerator;
fLanguage :
English
Journal_Title :
Energy Conversion, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8969
Type :
jour
DOI :
10.1109/TEC.2013.2285180
Filename :
6664942
Link To Document :
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