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Large Eddy Simulations of a Low-Swirl Gaseous Partially Premixed Lifted Flame in Presence of Wall Heat Losses

Leonardo Langone, Matteo Amerighi and Antonio Andreini
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Leonardo Langone: Department of Industrial Engineering, University of Florence, 50139 Florence, Italy
Matteo Amerighi: Department of Industrial Engineering, University of Florence, 50139 Florence, Italy
Antonio Andreini: Department of Industrial Engineering, University of Florence, 50139 Florence, Italy

Energies, 2022, vol. 15, issue 3, 1-24

Abstract: The use of lifted flames presents some very promising advantages in terms of pollutant emissions and flame stability. The focus here is on a specific low-swirl injection system operated with methane and derived from an air-blast atomizer for aero-engine applications, which is responsible for flame lift-off. The key feature of this concept is the interaction between the swirling jet and the confinement walls, leading to a strong outer recirculation zone and thus to an upstream transport of combustion products from the main reaction region to the flame base. Here, the representation of the physics involved is challenging, since finite-rate effects govern the lift-off occurrence, and only a few numerical studies have been carried out on this test case so far. The aim of the present work is therefore to understand the limits of some state-of-the-art combustion models within the context of LES. Considering this context, two different strategies are adopted: the Flamelet-Generated Manifold (FGM) approach and the Thickened Flame (TF) model. A modified version of the FGM model including stretch and heat loss effects is also applied as an improvement of the standard model. Numerical results are compared with the available experimental data in terms of temperature and chemical species concentration maps, showing that the TF model can better reproduce the lift-off than the FGM approach.

Keywords: combustion modeling; Flamelet-Generated Manifold; Thickened Flame; lifted flames; partially premixed combustion; Large Eddy Simulation; heat loss; stretch (search for similar items in EconPapers)
JEL-codes: Q Q0 Q4 Q40 Q41 Q42 Q43 Q47 Q48 Q49 (search for similar items in EconPapers)
Date: 2022
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