Combustion Characteristics of a Non-Premixed Oxy-Flame Applying a Hybrid Filtered Eulerian Stochastic Field/Flamelet Progress Variable Approach

The oxidation of methane under oxy-fuel combustion conditions with carbon capture is attractive and deserves huge interest towards reducing CO<sub>2</sub> and NO<sub>x</sub> emissions. The current paper reports on the predictions and analysis of combustion characteristics of...

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Main Authors: Rihab Mahmoud, Mehdi Jangi, Florian Ries, Benoit Fiorina, Johannes Janicka, Amsini Sadiki
Format: Article
Language:English
Published: MDPI AG 2019-03-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/9/7/1320
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author Rihab Mahmoud
Mehdi Jangi
Florian Ries
Benoit Fiorina
Johannes Janicka
Amsini Sadiki
author_facet Rihab Mahmoud
Mehdi Jangi
Florian Ries
Benoit Fiorina
Johannes Janicka
Amsini Sadiki
author_sort Rihab Mahmoud
collection DOAJ
description The oxidation of methane under oxy-fuel combustion conditions with carbon capture is attractive and deserves huge interest towards reducing CO<sub>2</sub> and NO<sub>x</sub> emissions. The current paper reports on the predictions and analysis of combustion characteristics of a turbulent oxy-methane non-premixed flame operating under highly diluted conditions of CO<sub>2</sub> and H<sub>2</sub> in oxidizer and fuel streams, respectively. These are achieved by applying a novel, well-designed numerical combustion model. The latter consists of a large eddy simulation (LES) extension of a recently suggested hybrid model in Reynolds averaging-based numerical simulation (RANS) context by the authors. It combines a transported joint scalar probability density function (T-PDF) following the Eulerian Stochastic Field methodology (ESF) on the one hand, and a flamelet progress variable (FPV) turbulent combustion model under consideration of detailed chemical reaction mechanism on the other hand. This novel hybrid ESF/FPV approach removes the weaknesses of the presumed-probability density function (P-PDF)-based FPV modeling, along with the solving of associated additional modeled transport equations while rendering the T-PDF computationally less affordable. First, the prediction capability of the LES hybrid ESF/FPV was appraised on the well-known air-piloted methane jet flame (Sandia Flame D). Then, it was assessed in analyzing the combustion properties of a non-premixed oxy-flame and in capturing the CO<sub>2</sub> dilution effect on the oxy-fuel flame behavior. To this end, the so-called oxy-flame B3, already numerically investigated in a RANS context, was analyzed. Comparisons with experimental data in terms of temperature, scalar distributions, and scatter plots agree satisfactorily. Finally, the impact of generating the FPV chemistry table under condition of unity Lewis number, even with CO<sub>2</sub> dilution, was investigated on the general prediction of the oxy-fuel flame structure, stability and emissions. In particular, it turns out that 68% molar percentage of CO<sub>2</sub> leads to 0.39% of CO formation near the burner fuel nozzle and 0.62% at 10 d<sub>fuel</sub> above the nozzle.
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spelling doaj.art-88abb6f5f5dc40bd9516ccf9e35b649a2022-12-21T18:24:21ZengMDPI AGApplied Sciences2076-34172019-03-0197132010.3390/app9071320app9071320Combustion Characteristics of a Non-Premixed Oxy-Flame Applying a Hybrid Filtered Eulerian Stochastic Field/Flamelet Progress Variable ApproachRihab Mahmoud0Mehdi Jangi1Florian Ries2Benoit Fiorina3Johannes Janicka4Amsini Sadiki5Institute of Energy and Power Plant Technology, TU, 64287 Darmstadt, GermanyDepartment of Mechanical Engineering, University of Birmingham, Birmingham B15 2TT, UKInstitute of Energy and Power Plant Technology, TU, 64287 Darmstadt, GermanyLaboratoire EM2C, CNRS, CentraleSupélec, Université Paris-Saclay, 91190 Gif-sur-yvette, FranceInstitute of Energy and Power Plant Technology, TU, 64287 Darmstadt, GermanyInstitute of Energy and Power Plant Technology, TU, 64287 Darmstadt, GermanyThe oxidation of methane under oxy-fuel combustion conditions with carbon capture is attractive and deserves huge interest towards reducing CO<sub>2</sub> and NO<sub>x</sub> emissions. The current paper reports on the predictions and analysis of combustion characteristics of a turbulent oxy-methane non-premixed flame operating under highly diluted conditions of CO<sub>2</sub> and H<sub>2</sub> in oxidizer and fuel streams, respectively. These are achieved by applying a novel, well-designed numerical combustion model. The latter consists of a large eddy simulation (LES) extension of a recently suggested hybrid model in Reynolds averaging-based numerical simulation (RANS) context by the authors. It combines a transported joint scalar probability density function (T-PDF) following the Eulerian Stochastic Field methodology (ESF) on the one hand, and a flamelet progress variable (FPV) turbulent combustion model under consideration of detailed chemical reaction mechanism on the other hand. This novel hybrid ESF/FPV approach removes the weaknesses of the presumed-probability density function (P-PDF)-based FPV modeling, along with the solving of associated additional modeled transport equations while rendering the T-PDF computationally less affordable. First, the prediction capability of the LES hybrid ESF/FPV was appraised on the well-known air-piloted methane jet flame (Sandia Flame D). Then, it was assessed in analyzing the combustion properties of a non-premixed oxy-flame and in capturing the CO<sub>2</sub> dilution effect on the oxy-fuel flame behavior. To this end, the so-called oxy-flame B3, already numerically investigated in a RANS context, was analyzed. Comparisons with experimental data in terms of temperature, scalar distributions, and scatter plots agree satisfactorily. Finally, the impact of generating the FPV chemistry table under condition of unity Lewis number, even with CO<sub>2</sub> dilution, was investigated on the general prediction of the oxy-fuel flame structure, stability and emissions. In particular, it turns out that 68% molar percentage of CO<sub>2</sub> leads to 0.39% of CO formation near the burner fuel nozzle and 0.62% at 10 d<sub>fuel</sub> above the nozzle.https://www.mdpi.com/2076-3417/9/7/1320oxy-fuel combustionnon-premixed flamelarge eddy simulationfiltered Eulerian stochastic field methodflamelet progress variable approach
spellingShingle Rihab Mahmoud
Mehdi Jangi
Florian Ries
Benoit Fiorina
Johannes Janicka
Amsini Sadiki
Combustion Characteristics of a Non-Premixed Oxy-Flame Applying a Hybrid Filtered Eulerian Stochastic Field/Flamelet Progress Variable Approach
Applied Sciences
oxy-fuel combustion
non-premixed flame
large eddy simulation
filtered Eulerian stochastic field method
flamelet progress variable approach
title Combustion Characteristics of a Non-Premixed Oxy-Flame Applying a Hybrid Filtered Eulerian Stochastic Field/Flamelet Progress Variable Approach
title_full Combustion Characteristics of a Non-Premixed Oxy-Flame Applying a Hybrid Filtered Eulerian Stochastic Field/Flamelet Progress Variable Approach
title_fullStr Combustion Characteristics of a Non-Premixed Oxy-Flame Applying a Hybrid Filtered Eulerian Stochastic Field/Flamelet Progress Variable Approach
title_full_unstemmed Combustion Characteristics of a Non-Premixed Oxy-Flame Applying a Hybrid Filtered Eulerian Stochastic Field/Flamelet Progress Variable Approach
title_short Combustion Characteristics of a Non-Premixed Oxy-Flame Applying a Hybrid Filtered Eulerian Stochastic Field/Flamelet Progress Variable Approach
title_sort combustion characteristics of a non premixed oxy flame applying a hybrid filtered eulerian stochastic field flamelet progress variable approach
topic oxy-fuel combustion
non-premixed flame
large eddy simulation
filtered Eulerian stochastic field method
flamelet progress variable approach
url https://www.mdpi.com/2076-3417/9/7/1320
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