A single-step chemistry mechanism for biogas supersonic combustion velocity with nitrogen dilution

The application of one-step irreversible Arrhenius kinetics to the numerical description of biogas supersonic combustion (also known as detonation) with nitrogen N2 dilution is investigated in this study. The three model parameters: the temperature exponent n, the activation energy Ea, and the pre-e...

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Main Authors: Rahman, Mohammad Nurizat, Ujir, Mohd. Haffis, Abdul Wahid, Mazlan, Mohd. Yasin, Mohd. Fairus
Format: Article
Published: Springer Science and Business Media B.V. 2023
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Online Access:http://eprints.utm.my/104846/
http://dx.doi.org/10.1007/s10973-022-11356-x
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spelling my.utm.1048462024-06-30T06:38:52Z http://eprints.utm.my/104846/ A single-step chemistry mechanism for biogas supersonic combustion velocity with nitrogen dilution Rahman, Mohammad Nurizat Ujir, Mohd. Haffis Abdul Wahid, Mazlan Mohd. Yasin, Mohd. Fairus TJ Mechanical engineering and machinery The application of one-step irreversible Arrhenius kinetics to the numerical description of biogas supersonic combustion (also known as detonation) with nitrogen N2 dilution is investigated in this study. The three model parameters: the temperature exponent n, the activation energy Ea, and the pre-exponential factor Ar are chosen to describe biogas detonation velocities. It can be seen that as the N2 dilution reached 50%, changes in Ea caused a significant drop in biogas detonation velocity, which was also observed in the current biogas detonation experiment, demonstrating that the dependence of high and low Ea values could appropriately tailor for changes in the thermodynamic condition of the reaction zone behind the detonation fronts as the N2 dilution increased. Via the validation feedback loop processes with the experimental and detailed chemistry (GRI Mech 3.0) results as the main validation basis, the resulting chemistry description in the one-step model is able to reproduce biogas detonation velocities with reasonable accuracy (< 15% discrepancy). Hence, the model overcomes the known gap of prior establishments of one-step Arrhenius kinetics for detonation by incorporating the N2 dilution effect and biogas as a fuel for detonation emergence. Springer Science and Business Media B.V. 2023-04 Article PeerReviewed Rahman, Mohammad Nurizat and Ujir, Mohd. Haffis and Abdul Wahid, Mazlan and Mohd. Yasin, Mohd. Fairus (2023) A single-step chemistry mechanism for biogas supersonic combustion velocity with nitrogen dilution. Journal of Thermal Analysis and Calorimetry, 148 (8). pp. 3019-3033. ISSN 1388-6150 http://dx.doi.org/10.1007/s10973-022-11356-x DOI:10.1007/s10973-022-11356-x
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Rahman, Mohammad Nurizat
Ujir, Mohd. Haffis
Abdul Wahid, Mazlan
Mohd. Yasin, Mohd. Fairus
A single-step chemistry mechanism for biogas supersonic combustion velocity with nitrogen dilution
description The application of one-step irreversible Arrhenius kinetics to the numerical description of biogas supersonic combustion (also known as detonation) with nitrogen N2 dilution is investigated in this study. The three model parameters: the temperature exponent n, the activation energy Ea, and the pre-exponential factor Ar are chosen to describe biogas detonation velocities. It can be seen that as the N2 dilution reached 50%, changes in Ea caused a significant drop in biogas detonation velocity, which was also observed in the current biogas detonation experiment, demonstrating that the dependence of high and low Ea values could appropriately tailor for changes in the thermodynamic condition of the reaction zone behind the detonation fronts as the N2 dilution increased. Via the validation feedback loop processes with the experimental and detailed chemistry (GRI Mech 3.0) results as the main validation basis, the resulting chemistry description in the one-step model is able to reproduce biogas detonation velocities with reasonable accuracy (< 15% discrepancy). Hence, the model overcomes the known gap of prior establishments of one-step Arrhenius kinetics for detonation by incorporating the N2 dilution effect and biogas as a fuel for detonation emergence.
format Article
author Rahman, Mohammad Nurizat
Ujir, Mohd. Haffis
Abdul Wahid, Mazlan
Mohd. Yasin, Mohd. Fairus
author_facet Rahman, Mohammad Nurizat
Ujir, Mohd. Haffis
Abdul Wahid, Mazlan
Mohd. Yasin, Mohd. Fairus
author_sort Rahman, Mohammad Nurizat
title A single-step chemistry mechanism for biogas supersonic combustion velocity with nitrogen dilution
title_short A single-step chemistry mechanism for biogas supersonic combustion velocity with nitrogen dilution
title_full A single-step chemistry mechanism for biogas supersonic combustion velocity with nitrogen dilution
title_fullStr A single-step chemistry mechanism for biogas supersonic combustion velocity with nitrogen dilution
title_full_unstemmed A single-step chemistry mechanism for biogas supersonic combustion velocity with nitrogen dilution
title_sort single-step chemistry mechanism for biogas supersonic combustion velocity with nitrogen dilution
publisher Springer Science and Business Media B.V.
publishDate 2023
url http://eprints.utm.my/104846/
http://dx.doi.org/10.1007/s10973-022-11356-x
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score 13.18916