Investigating the Effects of Chemical Mechanism on Soot Formation Under High-Pressure Fuel Pyrolysis

Killingsworth, Nick J. and Nguyen, Tuan M. and Brown, Carter and Kukkadapu, Goutham and Manin, Julien (2021) Investigating the Effects of Chemical Mechanism on Soot Formation Under High-Pressure Fuel Pyrolysis. Frontiers in Mechanical Engineering, 7. ISSN 2297-3079

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Abstract

We performed Computational Fluid Dynamics (CFD) simulations using a Reynolds-Averaged Navier-Stokes (RANS) turbulence model of high-pressure spray pyrolysis with a detailed chemical kinetic mechanism encompassing pyrolysis of n-dodecane and formation of polycyclic aromatic hydrocarbons. We compare the results using the detailed mechanism and those found using several different reduced chemical mechanisms to experiments carried out in an optically accessible, high-pressure, constant-volume combustion chamber. Three different soot models implemented in the CONVERGE CFD software are used: an empirical soot model, a method of moments, and a discrete sectional method. There is a large variation in the prediction of the soot between different combinations of chemical mechanisms and soot model. Furthermore, the amount of soot produced from all models is substantially less than experimental measurements. All of this indicates that there is still substantial work that needs to be done to arrive at simulations that can be relied on to accurately predict soot formation.

Item Type: Article
Subjects: Academics Guard > Engineering
Depositing User: Unnamed user with email support@academicsguard.com
Date Deposited: 10 Jun 2023 06:23
Last Modified: 17 May 2024 11:09
URI: http://science.oadigitallibraries.com/id/eprint/1071

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