Ignition of C3 oxygenated hydrocarbons and chemical kinetic modeling of propanal oxidation

被引:51
|
作者
Akih-Kumgeh, Benjamin [1 ]
Bergthorson, Jeffrey M. [1 ]
机构
[1] McGill Univ, Dept Mech Engn, Montreal, PQ H3A 2K6, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Oxygenated hydrocarbons; Propanal; Ignition delay times; Esters; Ketones and aldehydes; Propanal mechanism; SHOCK-TUBE; COMBUSTION CHEMISTRY; THERMAL-DECOMPOSITION; RATE COEFFICIENTS; RATE CONSTANTS; OH; TEMPERATURE; PYROLYSIS; RADICALS; ALKYL;
D O I
10.1016/j.combustflame.2011.02.015
中图分类号
O414.1 [热力学];
学科分类号
摘要
The relative high temperature ignition behavior of selected C3 oxygenated hydrocarbons, propanal (propionaldehyde. PAL or CH3CH2CHO), acetone (propanone or AC), isopropanol (iPOH), and ethyl formate (EF), is studied behind reflected shock waves. An ignition delay time correlation for methyl acetate (MA) from a previous study is also employed in the comparison. This study reveals the influence of different functional groups on the oxidation of the hydrocarbons. Isomer effects are also revealed for the ketone. acetone, and the aldehyde. propanal, with propanal portraying shorter ignition delay times than acetone. In the same manner, using the correlation for methyl acetate, the ester isomers, methyl acetate and ethyl formate. are compared. In this case, ethyl formate shows shorter ignition delay times than methyl acetate. Generally, methyl acetate, isopropanol (iPOH) and acetone (AC) portray comparable ignition behavior. This is thought to be owing to the fact that they are characterized by non-terminally bonded oxygen atoms. They all have terminal methyl groups, though the number of oxygen atoms and the types of carbon-oxygen bonds differ in these three fuels. Propanal and ethyl formate have similar ignition delays that are shorter than those of the other three fuels, due to their ability to form reactive ethyl radicals. The measured ignition delay times are compared to simulated delay times using existing mechanisms for acetone, isopropanol and small alkyl esters. Whereas there is reasonable agreement at high pressures between experiments and modeling results for the small alkyl esters, methyl acetate and ethyl formate, there are deviations for acetone and isopropanol. However, the mechanisms for the latter molecules perform better at lower pressures. The ignition data in this study could be useful for further optimization of the existing models. Furthermore, a chemical kinetic mechanism for propanal oxidation is proposed and good agreement between the proposed model and experiment is observed. However, further validation against a wider set of combustion experiments is recommended. This study contributes towards better understanding of the relative oxidation behavior of C3 oxygenated hydrocarbons which are relevant in combustion processes as fuel components, important intermediate species and, in lower concentrations, as exhaust products. (C) 2011 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:1877 / 1889
页数:13
相关论文
共 50 条
  • [41] Equilibrium and kinetic modeling of high-pressure pyrolysis and oxidation of hydrocarbons
    N. A. Dvornikov
    Combustion, Explosion and Shock Waves, 1999, 35 : 230 - 238
  • [42] Equilibrium and kinetic modeling of high-pressure pyrolysis and oxidation of hydrocarbons
    Dvornikov, NA
    COMBUSTION EXPLOSION AND SHOCK WAVES, 1999, 35 (03) : 230 - 238
  • [43] An experimental and kinetic modeling study of benzene pyrolysis with C2-C3 unsaturated hydrocarbons
    Hamadi, Alaa
    Sun, Wenyu
    Abid, Said
    Chaumeix, Nabiha
    Comandini, Andrea
    COMBUSTION AND FLAME, 2022, 237
  • [44] ELECTRIC DISCHARGE REACTIONS OF C1 TO C3 HYDROCARBONS
    FRIEDMANN, N
    BOVEE, HH
    MILLER, SL
    JOURNAL OF ORGANIC CHEMISTRY, 1971, 36 (19): : 2894 - +
  • [45] An experimental and kinetic modeling study on nitric oxide formation in premixed C3 alcohols flames
    Capriolo, G.
    Brackmann, C.
    Lavadera, M. Lubrano
    Methling, T.
    Konnov, A. A.
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2021, 38 (01) : 805 - 812
  • [46] KINETICS OF REACTION OF HYDROXYL RADICALS WITH ETHYLENE AND WITH C3 HYDROCARBONS
    BRADLEY, JN
    HACK, W
    HOYERMAN.K
    WAGNER, HG
    JOURNAL OF THE CHEMICAL SOCIETY-FARADAY TRANSACTIONS I, 1973, 69 (11): : 1889 - 1898
  • [47] Features of Ignition of Mixtures of Hydrogen With Hydrocarbons (C2, C3, C5) Over Rhodium and Palladium at Pressures of 1–2 atm
    K. Ya. Troshin
    N. M. Rubtsov
    G. I. Tsvetkov
    V. I. Chernysh
    I. O. Shamshin
    Russian Journal of Physical Chemistry B, 2023, 17 : 979 - 985
  • [48] LIBERATION OF ANAPHYLATOXIN BY CHEMICAL CLEAVAGE OF C3
    BUDZKO, DB
    MULLER-E.HJ
    FEDERATION PROCEEDINGS, 1969, 28 (02) : 817 - &
  • [49] C3 semantics modeling-dynamics
    Ronczka, John
    2009 1ST INTERNATIONAL CONFERENCE ON COMPUTATIONAL INTELLIGENCE, COMMUNICATION SYSTEMS AND NETWORKS(CICSYN 2009), 2009, : 207 - 212
  • [50] MOLECULAR MODELING OF C3 AND ITS LIGANDS
    SIM, RB
    PERKINS, SJ
    CURRENT TOPICS IN MICROBIOLOGY AND IMMUNOLOGY, 1990, 153 : 208 - 222