• DocumentCode
    3362299
  • Title

    The Structure Optimization of Flat Tube Fin in Direct-Cooled Condenser of Electric Power Plant

  • Author

    Zhang, Shuguo ; Zhao, Xinglou

  • Author_Institution
    Sch. of Environ. Eng. & Sci., North China Electr. Power Univ., Baoding
  • fYear
    2009
  • fDate
    27-31 March 2009
  • Firstpage
    1
  • Lastpage
    4
  • Abstract
    To improve the efficiency of direct air-cooled condenser and optimize the physical structure of the flat tube fin, the 3D physics-mathematics models are set up and a CFD (Computational Fluid Dynamics) solver is employed to perform the numerical simulation. The flat wave-fin tube and the flat vertical-fin tube are calculated separately. In six wind conditions, the heat transfer coefficients, flow losses, heat dissipation, and the average surface temperature changes of the two kinds of fins are analyzed. The following conclusions are drawn: in vertical-fin flat tube, air flow space is larger and the turbulence intensity is lower. The average surface heat transfer coefficient of vertical-fin flat tube is smaller than the wave-fin flat tube. The flow loss of vertical-fin flat tube is less than the wave-fin flat tube by about 28.3%. That will greatly reduce the power demand of the cooling fans and the energy loss of the whole power plant. The overall efficiency of the power plant will be improved. The heat dissipation amount of the vertical-fin flat tube is larger by about 8.82% than the wave-fin flat tube. The average surface temperature of the vertical-fin flat tube is higher than the wave- fin flat tube by 0.1%. The numerical simulation results revealed that the flat vertical-fin tube is more efficient than the wave-fin flat tube in vapor condensation process.
  • Keywords
    computational fluid dynamics; condensers (steam plant); cooling; numerical analysis; pipe flow; pipes; power plants; turbulence; CFD solver; computational fluid dynamics; direct-cooled condenser; electric power plant; flat tube fin; flow losses; heat dissipation; heat transfer coefficients; structure optimization; turbulence intensity; vapor condensation process; vertical-fin tube; Computational fluid dynamics; Cooling; Energy loss; Fans; Heat transfer; Numerical simulation; Power demand; Power generation; Surface waves; Temperature;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Power and Energy Engineering Conference, 2009. APPEEC 2009. Asia-Pacific
  • Conference_Location
    Wuhan
  • Print_ISBN
    978-1-4244-2486-3
  • Electronic_ISBN
    978-1-4244-2487-0
  • Type

    conf

  • DOI
    10.1109/APPEEC.2009.4918914
  • Filename
    4918914