A comparative experimental and computational study of methanol, ethanol, and n-butanol flames
Laminar flame speeds and extinction strain rates of premixed methanol, ethanol, and n-butanol flames were determined experimentally in the counterflow configuration at atmospheric pressure and elevated unburned mixture temperatures. Additional measurements were conducted also to determine the lamina...
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Veröffentlicht in: | Combust. Flame 2010-10, Vol.157 (10), p.1989-2004 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Laminar flame speeds and extinction strain rates of premixed methanol, ethanol, and
n-butanol flames were determined experimentally in the counterflow configuration at atmospheric pressure and elevated unburned mixture temperatures. Additional measurements were conducted also to determine the laminar flame speeds of their
n-alkane/air counterparts, namely methane, ethane, and
n-butane in order to compare the effect of alkane and alcohol molecular structures on high-temperature flame kinetics. For both propagation and extinction experiments the flow velocities were determined using the digital particle image velocimetry method. Laminar flame speeds were derived through a non-linear extrapolation approach based on direct numerical simulations of the experiments. Two recently developed detailed kinetics models of
n-butanol oxidation were used to simulate the experiments. The experimental results revealed that laminar flame speeds of ethanol/air and
n-butanol/air flames are similar to those of their
n-alkane/air counterparts, and that methane/air flames have consistently lower laminar flame speeds than methanol/air flames. The laminar flame speeds of methanol/air flames are considerably higher compared to both ethanol/air and
n-butanol/air flames under fuel-rich conditions. Numerical simulations of
n-butanol/air freely propagating flames, revealed discrepancies between the two kinetic models regarding the consumption pathways of
n-butanol and its intermediates. |
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ISSN: | 0010-2180 1556-2921 |
DOI: | 10.1016/j.combustflame.2010.04.001 |