• 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