LES of n-Dodecane Spray Combustion Using a Multiple Representative Interactive Flamelets Model

A single-hole n-dodecane spray flame is studied in a Large-Eddy Simulation (LES) framework under Diesel-relevant conditions using a Multiple Representative Interactive Flamelets (MRIF) combustion model. Diesel spray combustion is strongly affected by the mixture formation process, which is dominated...

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Main Authors: Davidovic Marco, Falkenstein Tobias, Bode Mathis, Cai Liming, Kang Seongwon, Hinrichs Jörn, Pitsch Heinz
Format: Article
Language:English
Published: EDP Sciences 2017-09-01
Series:Oil & Gas Science and Technology
Online Access:https://doi.org/10.2516/ogst/2017019
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spelling doaj-fcaa0ab956494c509ee63fd47200e8c52021-02-02T00:41:23ZengEDP SciencesOil & Gas Science and Technology1294-44751953-81892017-09-017252910.2516/ogst/2017019ogst170019LES of n-Dodecane Spray Combustion Using a Multiple Representative Interactive Flamelets ModelDavidovic MarcoFalkenstein TobiasBode MathisCai LimingKang SeongwonHinrichs JörnPitsch HeinzA single-hole n-dodecane spray flame is studied in a Large-Eddy Simulation (LES) framework under Diesel-relevant conditions using a Multiple Representative Interactive Flamelets (MRIF) combustion model. Diesel spray combustion is strongly affected by the mixture formation process, which is dominated by several physical processes such as the flow within the injector, break-up of the liquid fuel jet, evaporation and turbulent mixing with the surrounding gas. While the effects of nozzle-internal flow and primary breakup are captured within tuned model parameters in traditional Lagrangian spray models, an alternative approach is applied in this study, where the initial droplet conditions and primary fuel jet breakup are modeled based on results from highly resolved multiphase simulations with resolved interface. A highly reduced chemical mechanism consisting of 57 species and 217 reactions has been developed for n-dodecane achiving a good computational performance at solving the chemical reactions. The MRIF model, which has demonstrated its capability of capturing combustion and pollutant formation under typical Diesel conditions in Reynolds-Averaged Navier-Stokes (RANS) simulations is extended for the application in LES. In the standard RIF combustion model, representative chemistry conditioned on mixture fraction is solved interactively with the flow. Subfilter-scale mixing is modeled by the scalar dissipation rate. While the standard RIF model only includes temporal changes of the scalar dissipation rate, the spatial distribution can be accounted for by extending the model to multiple flamelets, which also enables the possibility of capturing different fuel residence times. Overall, the model shows good agreement with experimental data regarding both, low and high temperature combustion characteristics. It is shown that the ignition process and pollutant formation are affected by turbulent mixing. First, a cool flame is initiated at approximately stoichiometric mixture and propagates towards the rich side. Hence, heat and radicals are transported away from the most reactive mixture and thus the ignition is delayed. At the same time, the transported heat and radicals increase the reactivity of rich mixtures, which strongly affects the CO formation. NO was found to increase compared to the no transport case due to enhanced mixing, which is related to a broader high-temperature zone and the additional transport of oxygen from lean into high-temperature regions.https://doi.org/10.2516/ogst/2017019
collection DOAJ
language English
format Article
sources DOAJ
author Davidovic Marco
Falkenstein Tobias
Bode Mathis
Cai Liming
Kang Seongwon
Hinrichs Jörn
Pitsch Heinz
spellingShingle Davidovic Marco
Falkenstein Tobias
Bode Mathis
Cai Liming
Kang Seongwon
Hinrichs Jörn
Pitsch Heinz
LES of n-Dodecane Spray Combustion Using a Multiple Representative Interactive Flamelets Model
Oil & Gas Science and Technology
author_facet Davidovic Marco
Falkenstein Tobias
Bode Mathis
Cai Liming
Kang Seongwon
Hinrichs Jörn
Pitsch Heinz
author_sort Davidovic Marco
title LES of n-Dodecane Spray Combustion Using a Multiple Representative Interactive Flamelets Model
title_short LES of n-Dodecane Spray Combustion Using a Multiple Representative Interactive Flamelets Model
title_full LES of n-Dodecane Spray Combustion Using a Multiple Representative Interactive Flamelets Model
title_fullStr LES of n-Dodecane Spray Combustion Using a Multiple Representative Interactive Flamelets Model
title_full_unstemmed LES of n-Dodecane Spray Combustion Using a Multiple Representative Interactive Flamelets Model
title_sort les of n-dodecane spray combustion using a multiple representative interactive flamelets model
publisher EDP Sciences
series Oil & Gas Science and Technology
issn 1294-4475
1953-8189
publishDate 2017-09-01
description A single-hole n-dodecane spray flame is studied in a Large-Eddy Simulation (LES) framework under Diesel-relevant conditions using a Multiple Representative Interactive Flamelets (MRIF) combustion model. Diesel spray combustion is strongly affected by the mixture formation process, which is dominated by several physical processes such as the flow within the injector, break-up of the liquid fuel jet, evaporation and turbulent mixing with the surrounding gas. While the effects of nozzle-internal flow and primary breakup are captured within tuned model parameters in traditional Lagrangian spray models, an alternative approach is applied in this study, where the initial droplet conditions and primary fuel jet breakup are modeled based on results from highly resolved multiphase simulations with resolved interface. A highly reduced chemical mechanism consisting of 57 species and 217 reactions has been developed for n-dodecane achiving a good computational performance at solving the chemical reactions. The MRIF model, which has demonstrated its capability of capturing combustion and pollutant formation under typical Diesel conditions in Reynolds-Averaged Navier-Stokes (RANS) simulations is extended for the application in LES. In the standard RIF combustion model, representative chemistry conditioned on mixture fraction is solved interactively with the flow. Subfilter-scale mixing is modeled by the scalar dissipation rate. While the standard RIF model only includes temporal changes of the scalar dissipation rate, the spatial distribution can be accounted for by extending the model to multiple flamelets, which also enables the possibility of capturing different fuel residence times. Overall, the model shows good agreement with experimental data regarding both, low and high temperature combustion characteristics. It is shown that the ignition process and pollutant formation are affected by turbulent mixing. First, a cool flame is initiated at approximately stoichiometric mixture and propagates towards the rich side. Hence, heat and radicals are transported away from the most reactive mixture and thus the ignition is delayed. At the same time, the transported heat and radicals increase the reactivity of rich mixtures, which strongly affects the CO formation. NO was found to increase compared to the no transport case due to enhanced mixing, which is related to a broader high-temperature zone and the additional transport of oxygen from lean into high-temperature regions.
url https://doi.org/10.2516/ogst/2017019
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