• Title of article

    Coherent structures in trailing-edge cooling and the challenge for turbulent heat transfer modelling

  • Author/Authors

    Schneider، نويسنده , , Hayder and Von Terzi، نويسنده , , Dominic A. and Bauer، نويسنده , , Hans-Jِrg and Rodi، نويسنده , , Wolfgang، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2015
  • Pages
    10
  • From page
    110
  • To page
    119
  • Abstract
    The present paper tests the capability of a standard Reynolds-Averaged Navier–Stokes (RANS) turbulence model for predicting the turbulent heat transfer in a generic trailing-edge situation with a cutback on the pressure side of the blade. The model investigated uses a gradient-diffusion assumption with a scalar turbulent-diffusivity and constant turbulent Prandtl number. High-fidelity Large-Eddy Simulations (LES) were performed for three blowing ratios to provide reliable target data and the mean velocity and eddy viscosity as input for the heat transfer model testing. Reasonably good agreement between the LES and recent experiments was achieved for mean flow and turbulence statistics. The LES yielded coherent structures which were analysed, in particular with respect to their effect on the turbulent heat transfer. For increasing blowing ratio, the LES replicated an also experimentally observed counter-intuitive decrease of the cooling effectiveness caused by the coherent structures becoming stronger. In contrast, the RANS turbulent heat transfer model failed in predicting this behaviour and yielded significantly too high cooling effectiveness. It is shown that the model cannot predict the strong upstream and wall-directed turbulent heat fluxes caused by large coherent structures, which were found to be responsible for the counter-intuitive decrease of the cooling effectiveness.
  • Keywords
    Turbulence simulation , Coherent structures , Film cooling , Turbulent heat transfer
  • Journal title
    International Journal of Heat and Fluid Flow
  • Serial Year
    2015
  • Journal title
    International Journal of Heat and Fluid Flow
  • Record number

    2382408