TY - JOUR
T1 - Testing the validity of a mechanism describing the oxidation of binary n-heptane/toluene mixtures at engine operating conditions
AU - Malliotakis, Zisis
AU - Banyon, Colin
AU - Zhang, Kuiwen
AU - Wagnon, Scott
AU - Rodriguez Henriquez, Jose Juan
AU - Vourliotakis, George
AU - Keramiotis, Christos
AU - Founti, Maria
AU - Mauss, Fabian
AU - Pitz, William J.
AU - Curran, Henry
N1 - Publisher Copyright:
© 2018 The Combustion Institute
PY - 2019/1
Y1 - 2019/1
N2 - The aim of this work is to evaluate the influence of the n-heptane/toluene ratio on the reactivity of binary toluene reference fuels (TRFs), through a combined experimental and numerical work. Novel experimental ignition delay time (IDT) data of three binary TRFs of varying n-heptane/toluene ratios have been obtained in a high-pressure shock tube and in a rapid compression machine at conditions relevant to novel engine operation. Measurements have been performed at two pressures (10 and 30 bar), and at three fuel/air equivalence ratios (0.5, 1.0 and 2.0) for TRF mixtures of 50%, 75% and 90% by volume toluene concentration, over the temperature range of 650–1450 K. It was found that, increasing the n-heptane content, led to an increase in reactivity and shorter measured IDTs. Reduced sensitivity to the equivalence ratio was observed at high temperatures, especially for high toluene content mixtures. A well validated detailed kinetic mechanism for TRF oxidation was utilized to provide further insight into the experimental evidence. The mechanism, which has recently been updated, was also assessed in terms of its validity, contributing thus to its continuous development. Reaction path analysis was performed to delineate critical aspects of toluene oxidation under the considered conditions. Further, sensitivity analysis highlighted the interactions between the chemistry of the two TRF components, revealing toluene's character as a reactivity inhibitor mainly through the consumption of ȮH radicals.
AB - The aim of this work is to evaluate the influence of the n-heptane/toluene ratio on the reactivity of binary toluene reference fuels (TRFs), through a combined experimental and numerical work. Novel experimental ignition delay time (IDT) data of three binary TRFs of varying n-heptane/toluene ratios have been obtained in a high-pressure shock tube and in a rapid compression machine at conditions relevant to novel engine operation. Measurements have been performed at two pressures (10 and 30 bar), and at three fuel/air equivalence ratios (0.5, 1.0 and 2.0) for TRF mixtures of 50%, 75% and 90% by volume toluene concentration, over the temperature range of 650–1450 K. It was found that, increasing the n-heptane content, led to an increase in reactivity and shorter measured IDTs. Reduced sensitivity to the equivalence ratio was observed at high temperatures, especially for high toluene content mixtures. A well validated detailed kinetic mechanism for TRF oxidation was utilized to provide further insight into the experimental evidence. The mechanism, which has recently been updated, was also assessed in terms of its validity, contributing thus to its continuous development. Reaction path analysis was performed to delineate critical aspects of toluene oxidation under the considered conditions. Further, sensitivity analysis highlighted the interactions between the chemistry of the two TRF components, revealing toluene's character as a reactivity inhibitor mainly through the consumption of ȮH radicals.
KW - Detailed kinetics
KW - High-pressure shock tube
KW - Ignition delay time
KW - Rapid compression machine
KW - Toluene
KW - n-heptane
UR - http://www.scopus.com/inward/record.url?scp=85055784062&partnerID=8YFLogxK
U2 - 10.1016/j.combustflame.2018.10.024
DO - 10.1016/j.combustflame.2018.10.024
M3 - Article
SN - 0010-2180
VL - 199
SP - 241
EP - 248
JO - Combustion and Flame
JF - Combustion and Flame
ER -