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Numerical simulation of microwave-enhanced methane-air flames I : Modeling and one-dimensional premixed laminar flames

Nordin-Bates, Kevin ; Zettervall, Niklas LU ; Hurtig, Tomas ; Sundberg, Hanna and Fureby, Christer LU (2023) In Combustion and Flame 251.
Abstract

This study considers the numerical modeling of sub-breakdown microwave-enhanced combustion in one-dimensional laminar methane-air flames over a range of stoichiometries at standard temperature and pressure. The effect of uniform microwave fields on the laminar flame speed, post-flame temperature and composition is of primary interest here. A model for the non-thermal plasma generated by the microwave field in such flames is constructed based on fitting of electron properties and electron impact reaction rates to pre-computed solutions of the Boltzmann equation, combined with ambipolar diffusion transport for charged species. This model is used with a selection of existing and novel methane-air kinetics schemes to compute laminar flame... (More)

This study considers the numerical modeling of sub-breakdown microwave-enhanced combustion in one-dimensional laminar methane-air flames over a range of stoichiometries at standard temperature and pressure. The effect of uniform microwave fields on the laminar flame speed, post-flame temperature and composition is of primary interest here. A model for the non-thermal plasma generated by the microwave field in such flames is constructed based on fitting of electron properties and electron impact reaction rates to pre-computed solutions of the Boltzmann equation, combined with ambipolar diffusion transport for charged species. This model is used with a selection of existing and novel methane-air kinetics schemes to compute laminar flame profiles at a range of microwave field strengths and varying stoichiometry. The trends for laminar flame strength and temperature, peak- and outlet species fractions are compared over this parameter space. While all schemes demonstrate increasing flame speed and temperature with higher field strength and richer flames, significant variations in the form and magnitude of this increase are observed for the various kinetics schemes considered. The laminar flame-speed increase at sub-breakdown electric field strengths is found to be due primarily to electron heating of the gases in both the pre-heat region and across the flame. Analysis of the electron energy transfer shows that the majority of the energy at moderate field strengths is transferred via excitement of vibrational states of nitrogen, followed by water and carbon monoxide. In the pre-heat regime, vibrational excitement of methane is also seen to play an important role for fuel-rich flames. Particular attention is paid to the modification of the flame speed due to the relaxation time of the vibrational N2 states, which is demonstrated to result in a moderate reduction of the flame speed for lean and stoichiometric flames. A driving concern here is the development of models suitable for use within large-scale three-dimensional numerical simulations and the knowledge gained in comparing the existing schemes is used to derive a range of simplified mechanisms more suited for this purpose. The ability of these reduced models to capture the flame enhancement is demonstrated over a range of flame stoichiometries and sub-breakdown field strengths.

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author
; ; ; and
organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
Laminar flame, Methane-air, Microwave, Modeling, Numerical, Plasma
in
Combustion and Flame
volume
251
article number
112662
publisher
Elsevier
external identifiers
  • scopus:85149067811
ISSN
0010-2180
DOI
10.1016/j.combustflame.2023.112662
language
English
LU publication?
yes
id
7d8ad131-6661-497e-9b7d-a0c2ba4fa8f7
date added to LUP
2023-03-20 08:30:18
date last changed
2023-11-07 03:16:34
@article{7d8ad131-6661-497e-9b7d-a0c2ba4fa8f7,
  abstract     = {{<p>This study considers the numerical modeling of sub-breakdown microwave-enhanced combustion in one-dimensional laminar methane-air flames over a range of stoichiometries at standard temperature and pressure. The effect of uniform microwave fields on the laminar flame speed, post-flame temperature and composition is of primary interest here. A model for the non-thermal plasma generated by the microwave field in such flames is constructed based on fitting of electron properties and electron impact reaction rates to pre-computed solutions of the Boltzmann equation, combined with ambipolar diffusion transport for charged species. This model is used with a selection of existing and novel methane-air kinetics schemes to compute laminar flame profiles at a range of microwave field strengths and varying stoichiometry. The trends for laminar flame strength and temperature, peak- and outlet species fractions are compared over this parameter space. While all schemes demonstrate increasing flame speed and temperature with higher field strength and richer flames, significant variations in the form and magnitude of this increase are observed for the various kinetics schemes considered. The laminar flame-speed increase at sub-breakdown electric field strengths is found to be due primarily to electron heating of the gases in both the pre-heat region and across the flame. Analysis of the electron energy transfer shows that the majority of the energy at moderate field strengths is transferred via excitement of vibrational states of nitrogen, followed by water and carbon monoxide. In the pre-heat regime, vibrational excitement of methane is also seen to play an important role for fuel-rich flames. Particular attention is paid to the modification of the flame speed due to the relaxation time of the vibrational N<sub>2</sub> states, which is demonstrated to result in a moderate reduction of the flame speed for lean and stoichiometric flames. A driving concern here is the development of models suitable for use within large-scale three-dimensional numerical simulations and the knowledge gained in comparing the existing schemes is used to derive a range of simplified mechanisms more suited for this purpose. The ability of these reduced models to capture the flame enhancement is demonstrated over a range of flame stoichiometries and sub-breakdown field strengths.</p>}},
  author       = {{Nordin-Bates, Kevin and Zettervall, Niklas and Hurtig, Tomas and Sundberg, Hanna and Fureby, Christer}},
  issn         = {{0010-2180}},
  keywords     = {{Laminar flame; Methane-air; Microwave; Modeling; Numerical; Plasma}},
  language     = {{eng}},
  publisher    = {{Elsevier}},
  series       = {{Combustion and Flame}},
  title        = {{Numerical simulation of microwave-enhanced methane-air flames I : Modeling and one-dimensional premixed laminar flames}},
  url          = {{http://dx.doi.org/10.1016/j.combustflame.2023.112662}},
  doi          = {{10.1016/j.combustflame.2023.112662}},
  volume       = {{251}},
  year         = {{2023}},
}