• Title of article

    Composition dependent model for the prediction of syngas ash deposition in turbine gas hotpath

  • Author/Authors

    Sreedharan، نويسنده , , Sai Shrinivas and Tafti، نويسنده , , Danesh K.، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2011
  • Pages
    11
  • From page
    201
  • To page
    211
  • Abstract
    An improved physical model to predict flyash deposition is developed and discussed in this paper. This model differs from its predecessor (Rozati et al., in press; Sreedharan and Tafti, 2009) by accounting for deposition of syngas ash particles below the ash softening temperature. The modified deposition model is based on the critical viscosity approach. To test this model, deposition of ash particles impacted on a flat, 45° wedge shape geometry is computed and the results obtained from the numerical model are compared to Crosby et al. (2007). Large Eddy Simulation (LES) is used to model the flow field and flyash particles are modeled using a discrete Lagrangian framework. Results quantify deposition for 4 μm particles of various ash composition samples. Most of the deposition occurs at the stagnation region of the target plate. At 1456 K, out of all the ash samples considered in this study, WY and ND ash sample show the highest capture efficiency (15%) and KL1 ash sample exhibits the lowest capture efficiency (0.02%). In general, capture efficiencies for all ash samples followed an exponential trend with temperature. Additionally, this model is also compared to results obtained from the flat plate deposition experiments conducted here at Virginia Tech using PVC particles (Wood et al., 2010). In the case of PVC particles, the sticking probability in the deposition model assumed an exponential increase in deposition rate with temperature and was calibrated with one experimental data point. The results obtained from this model for PVC particles showed excellent agreement with the experimental measurements over a range of temperatures.
  • Keywords
    Ash viscosity , Large Eddy Simulations (LES) , Probabilistic model for deposition , Ash composition , Syngas ash deposition
  • Journal title
    International Journal of Heat and Fluid Flow
  • Serial Year
    2011
  • Journal title
    International Journal of Heat and Fluid Flow
  • Record number

    2381933