Measurements of Positively Charged Ions in Premixed Methane-Oxygen Atmospheric Flames

by A. B. S. Alquaity, J. Han, M.Chahine, H. Selim, M. Belhi, S. M. Sarathy, F. Bisetti, A. Farooq
Year:2017

Bibliography

Measurements of Positively Charged Ions in Premixed Methane-Oxygen Atmospheric Flames
A. B. S. Alquaity, J. Han, M.Chahine, H. Selim, M. Belhi, S. M. Sarathy, F. Bisetti, A. Farooq
Anions, Cations, Ion chemistry model, Molecular beam mass spectrometry (MBMS), Methane flames, (2017)

Abstract

Pub_2017_MOP

Cations and anions are formed as a result of chemi-ionization processes in combustion systems. Electric fields can be applied to reduce emissions and improve combustion efficiency by active control of the combustion process. Detailed flame ion chemistry models are needed to understand and predict the effect of external electric fields on combustion plasmas. In this work, a molecular beam mass spectrometer (MBMS) is utilized to measure ion concentration profiles in premixed methane–oxygen argon burner-stabilized atmospheric flames. Lean and stoichiometric flames are considered to assess the dependence of ion chemistry on flame stoichiometry. Relative ion concentration profiles are compared with numerical simulations using various temperature profiles, and good qualitative agreement was observed for the stoichiometric flame. However, for the lean flame, numerical simulations misrepresent the spatial distribution of selected ions greatly. Three modifications are suggested to enhance the ion mechanism and improve the agreement between experiments and simulations. The first two modifications comprise the addition of anion detachment reactions to increase anion recombination at low temperatures. The third modification involves restoring a detachment reaction to its original irreversible form. To our knowledge, this work presents the first detailed measurements of cations and flame temperature in canonical methane–oxygen-argon atmospheric flat flames. The positive ion profiles reported here may be useful to validate and improve ion chemistry models for methane-oxygen flames.

DOI:10.6084/m9.figshare.3749832.v2

Keywords

Anions CationsIon Chemistry Model Molecular Beam Mass Spectrometry (MBMS) Methane Flames
KAUST

"KAUST shall be a beacon for peace, hope and reconciliation, and shall serve the people of the Kingdom and the world."

King Abdullah bin Abdulaziz Al Saud, 1924 – 2015

Contact Us

  • 4700 King Abdullah University of Science and Technology

    Thuwal 23955-6900, Kingdom of Saudi Arabia

Quick links

© King Abdullah University of Science and Technology. All rights reserved