CFD study of non-premixed swirling burners: Effect of turbulence models
This research investigates a numerical simulation of swirling turbulent non-premixed combustion. The effects on the combustion characteristics are examined with three turbulence models: namely as the Reynolds stress model, spectral turbulence analysis and Re-Normalization Group. In addition, the P-1...
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Veröffentlicht in: | Chinese journal of chemical engineering 2020-04, Vol.28 (4), p.1029-1038 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | This research investigates a numerical simulation of swirling turbulent non-premixed combustion. The effects on the combustion characteristics are examined with three turbulence models: namely as the Reynolds stress model, spectral turbulence analysis and Re-Normalization Group. In addition, the P-1 and discrete ordinate (DO) models are used to simulate the radiative heat transfer in this model. The governing equations associated with the required boundary conditions are solved using the numerical model. The accuracy of this model is validated with the published experimental data and the comparison elucidates that there is a reasonable agreement between the obtained values from this model and the corresponding experimental quantities. Among different models proposed in this research, the Reynolds stress model with the Probability Density Function (PDF) approach is more accurate (nearly up to 50%) than other turbulent models for a swirling flow field. Regarding the effect of radiative heat transfer model, it is observed that the discrete ordinate model is more precise than the P-1 model in anticipating the experimental behavior. This model is able to simulate the subcritical nature of the isothermal flow as well as the size and shape of the internal recirculation induced by the swirl due to combustion.
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•A PDF approach is used to predict the turbulent non-premixed combustion.•Three turbulent models (RSM, STA and RNG) are employed for modeling the swirling flows.•P-1 and DO models are implemented for the simulation of the radiative heat transfer.•The use of the RSM and DO models to predict turbulence and radiative heat transfer, respectively, show better accuracy.•Increasing the swirl number augments the turbulence intensity and fluid recirculation. |
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ISSN: | 1004-9541 2210-321X 2210-321X |
DOI: | 10.1016/j.cjche.2020.02.016 |