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PAH formation in counterflow non-premixed flames of butane and butanol isomers

机译:丁烷和丁醇异构体的逆流非预混火焰中的PAH形成

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Using the planar laser-induced fluorescence (PLIF) technique in a counterflow non-premixed flame configuration, the formation of the polycyclic aromatic hydrocarbons (PAHs) for the butane isomers and the butanol isomers was investigated. For these C-4 fuels, the PAHs of various aromatic ring size groups (2, 3, 4, and larger aromatic rings) have been characterized and compared in non-premixed combustion configuration. In particular, the formation and growth of the PAHs of different aromatic ring sizes in these counterflow flames was examined by tracking the PAH-PLIF signals at various detection wavelengths. The fuel structure effects on the PAH formation and growth processes were also analyzed by comparing the PAH growth pathways for these C-4 fuels. Furthermore, PAH-PLIF experiments were conducted, by blending each of the branched-chain isomers with the baseline straight-chain isomer, in order to study the synergistic effects, as well as identify the relative importance of the H-abstraction-C2H2-addition (HACA) mechanism and the propargyl (C-3 H-3) recombination/addition pathways in the PAH formation and growth processes. A chemical kinetic model available in the literature that includes both the fuel oxidation and the PAH chemistry was also used to simulate and compare the PAH species up to A(4) rings. At the incipient stage of the PAH formation, the simulated results exhibited similar behavior to the experimental observations. The PAH formation pathways considered in the chemical kinetic model were further analyzed. In addition to propargyl, the present results demonstrated the important role of acetylene in the PAH formation and growth processes. (C) 2016 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:使用平面激光诱导荧光(PLIF)技术在逆流非预混火焰构型中,研究了丁烷异构体和丁醇异构体的多环芳烃(PAHs)的形成。对于这些C-4燃料,已对各种芳环尺寸组(2、3、4和较大的芳环)的PAH进行了表征,并在非预混燃烧配置中进行了比较。特别地,通过在各种检测波长下跟踪PAH-PLIF信号,检查了这些逆流火焰中不同芳环尺寸的PAH的形成和生长。通过比较这些C-4燃料的PAH生长途径,还分析了燃料结构对PAH形成和生长过程的影响。此外,通过将每个支链异构体与基线直链异构体混合来进行PAH-PLIF实验,以研究协同效应,并确定H-抽象-C2H2加成的相对重要性(HACA)机制和炔丙基(C-3 H-3)重组/添加途径在PAH的形成和生长过程中。在文献中可获得的包括燃料氧化和PAH化学性质的化学动力学模型也用于模拟和比较直至A(4)环的PAH种类。在PAH形成的初期,模拟结果表现出与实验观察结果相似的行为。进一步分析了化学动力学模型中考虑的PAH形成途径。除炔丙基外,本研究结果还证明了乙炔在PAH形成和生长过程中的重要作用。 (C)2016年燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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