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LES of oxy-fuel jet flames using the Eulerian Stochastic Fields method with differential diffusion
Authors:Maximilian Hansinger  Michael Pfitzner  Vladimir A. Sabelnikov
Affiliation:1. Institute for Thermodynamics, Bundeswehr University Munich, Werner-Heisenberg-Weg 39, Neubiberg 85577, Germany;2. ONERA – The French Aerospace Lab, Department of Fundamental and Applied Energetics, Palaiseau F-91761, France;3. Central Aerohydrodynamic Institute (TsAGI), Zhukovsky 140180, Moscow Region, Russia
Abstract:The Eulerian Stochastic Fields (ESF) Monte Carlo method to solve the transported PDF (TPDF) equation is extended to account for differential diffusion effects by incorporating species individual molecular diffusivities. The method has been applied in Large Eddy simulation (LES) to non-piloted oxy-fuel jet flames at different Reynolds numbers experimentally investigated by Sevault et al. [1]. Due to the high H2 content in the fuel stream and CO2 in the oxidizer these flames pose new challenges to combustion modeling as the flame structures are different compared to CH4/air flames. The simulations show very good agreement with the experiments in terms of mixture fraction conditional mean values for temperature and mayor species on the fuel lean side and the reaction zone, deviations on the fuel rich side are discussed. The trend and location of localized extinction is reproduced well in the simulations, as well as differential diffusion effects in the near field. Additionally, it is shown that a neglect of differential diffusion in the combustion model leads to a lifted flame.
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