Thermo-kinetic instabilities in model reactors. Examples in experimental tests

燃烧 稀释 氮氧化物 点火系统 污染物 工艺工程 烟灰 核工程 化学 材料科学 热力学 化学工程 物理 有机化学 工程类
作者
Marco Lubrano Lavadera,Giancarlo Sorrentino,Pino Sabia,Mara de Joannon,Antonio Cavaliere,Raffaele Ragucci
出处
期刊:Nucleation and Atmospheric Aerosols 卷期号:1906: 100005-100005
标识
DOI:10.1063/1.5012375
摘要

The use of advanced combustion technologies (such as MILD, LTC, etc.) is among the most promising methods to reduce emission of pollutants. For such technologies, working temperatures are enough low to boost the formation of several classes of pollutants, such as NOx and soot. To access this temperature range, a significant dilution as well as preheating of reactants is required. Such conditions are usually achieved by a strong recirculation of exhaust gases that simultaneously dilute and pre-heat the fresh reactants. These peculiar operative conditions also imply strong fuel flexibility, thus allowing the use of low calorific value (LCV) energy carriers with high efficiency.However, the intersection of low combustion temperatures and highly diluted mixtures with intense pre-heating alters the evolution of the combustion process with respect to traditional flames, leading to features such as the susceptibility to oscillations, which are undesirable during combustion.Therefore, an effective use of advanced combustion technologies requires a thorough analysis of the combustion kinetic characteristics in order to identify optimal operating conditions and control strategies with high efficiency and low pollutant emissions.The present work experimentally and numerically characterized the ignition and oxidation processes of methane and propane, highly diluted in nitrogen, at atmospheric pressure, in a Plug Flow Reactor and a Perfectly Stirred Reactor under a wide range of operating conditions involving temperatures, mixture compositions and dilution levels.The attention was focused particularly on the chemistry of oscillatory phenomena and multistage ignitions.The global behavior of these systems can be qualitatively and partially quantitatively modeled using the detailed kinetic models available in the literature.Results suggested that, for diluted conditions and lower adiabatic flame temperatures, the competition among several pathways, i.e. intermediate- and high-temperature branching, branching and recombination channels, oxidation and recombination/pyrolysis pathways, is enhanced, thus permitting the onset of phenomena that are generally hidden during conventional combustion processes.
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