Experimental and modeling study of the effects of adding oxygenated fuels to premixed n-heptane flames

被引:113
作者
Chen, Gen [1 ]
Yu, Wu [1 ]
Fu, Jin [1 ]
Mo, Jun [1 ]
Huang, Zuohua [1 ]
Yang, Jiuzhong [2 ]
Wang, Zhandong [2 ]
Jin, Hanfeng [2 ]
Qi, Fei [2 ]
机构
[1] Xi An Jiao Tong Univ, State Key Lab Multiphase Flow Power Engn, Xian 710049, Peoples R China
[2] Univ Sci & Technol China, Natl Synchrotron Radiat Lab, Hefei 230029, Anhui, Peoples R China
基金
中国国家自然科学基金;
关键词
n-Heptane premixed flame; Oxygenated additive; Tunable synchrotron photoionization; Molecular-beam sampling-mass spectrometry (MBMS); Kinetic modeling; PHOTOIONIZATION CROSS-SECTIONS; POLYCYCLIC AROMATIC-HYDROCARBONS; SOOT FORMATION; COMPREHENSIVE MECHANISM; ATMOSPHERIC-PRESSURE; DIMETHYL CARBONATE; RICH; OXIDATION; ETHANOL; ETHYLBENZENE;
D O I
10.1016/j.combustflame.2012.02.020
中图分类号
O414.1 [热力学];
学科分类号
070201 [理论物理];
摘要
The effects of methanol, dimethoxymethane (DMM), and dimethylcarbonate (DMC) on laminar premixed low pressure (30 Torr) n-heptane flames were investigated by using synchrotron photoionization and molecular-beam mass spectrometry (PI-MBMS) techniques. The overall C/O ratio was maintained constant (0.507) and the equivalence ratio was kept around 1.6 for all the tested flames. The composition of unburned mixtures was adjusted such that the post-flame temperatures were nearly equivalent for all the test conditions. Mole fraction profiles of major and intermediate species were derived and compared among the flames. Parallel computations were performed based on a modified model, and the predicted concentrations of flame species agree reasonably well with the measured results. Early production of CO2 was observed in the DMC-doped flame. Reaction flux analysis suggested that it was caused by the decomposition of CH3OC=O radical, DMC molecule and CH3OC=OO radical. As oxygenated fuels were added, the concentrations of most C-1-C-5 hydrocarbon intermediates were reduced while that of benzene (C6H6) also decreased apparently, and the extent of benzene reduction showed little difference among the oxygenate-doped flames. Reaction flux analysis indicated that, in all the tested flames, the primary pathway leading from small aliphatics to C6H6 was through C-3 + C-3 reactions, including the self-recombination reaction of propargyl radical (C3H3) and the cross reaction between C3H3 and allyl radical (a-C3H5). Considering that the temperatures of the tested flames were almost equivalent, the reduction of C6H6 concentration when doped with oxygenated fuels should be resulted from the reduced concentrations of its precursors. Furthermore, concentrations of certain oxygenated intermediates were also examined. The concentration of formaldehyde (CH2O) was found to increase when flames were doped with oxygenated fuels, while those of acetaldehyde (CH3CHO) and vinyl alcohol (C2H3OH) were nearly equivalent for all the flames. Methyl formate (CH3OCHO) was detected only in the DMM-doped flame, which was attributed to the efficient CH3OCHO formation pathway through the decomposition of CH3OCHOCH3 radical in the flame. (C) 2012 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:2324 / 2335
页数:12
相关论文
共 75 条
[1]
The effect of temperature on soot properties in premixed methane flames [J].
Alfe, M. ;
Apicella, B. ;
Rouzaud, J. -N. ;
Tregrossi, A. ;
Ciajolo, A. .
COMBUSTION AND FLAME, 2010, 157 (10) :1959-1965
[2]
[Anonymous], 962115 SAE
[3]
[Anonymous], 1985, SAND NATL LAB REP
[4]
Computational and experimental study of the effects of adding dimethyl ether and ethanol to nonpremixed ethylene/air flames [J].
Bennett, Beth Anne V. ;
McEnally, Charles S. ;
Pfefferle, Lisa D. ;
Smooke, Mitchell D. ;
Colket, Meredith B. .
COMBUSTION AND FLAME, 2009, 156 (06) :1289-1302
[5]
Chemical mechanism for high temperature combustion of engine relevant fuels with emphasis on soot precursors [J].
Blanquart, G. ;
Pepiot-Desjardins, P. ;
Pitsch, H. .
COMBUSTION AND FLAME, 2009, 156 (03) :588-607
[6]
Numerical study of the effect of oxygenated blending compounds on soot formation in shock tubes [J].
Boehm, H. ;
Braun-Unkhoff, M. .
COMBUSTION AND FLAME, 2008, 153 (1-2) :84-96
[7]
A high-temperature chemical kinetic model for primary reference fuels [J].
Chaos, Marcos ;
Kazakov, Andrei ;
Zhao, Zhenwei ;
Dryer, Frederick L. .
INTERNATIONAL JOURNAL OF CHEMICAL KINETICS, 2007, 39 (07) :399-414
[8]
Ciajolo A, 1996, TWENTY-SIXTH SYMPOSIUM (INTERNATIONAL) ON COMBUSTION, VOLS 1 AND 2, P2327
[9]
FORMATION MECHANISMS OF AROMATIC-COMPOUNDS IN ALIPHATIC FLAMES [J].
COLE, JA ;
BITTNER, JD ;
LONGWELL, JP ;
HOWARD, JB .
COMBUSTION AND FLAME, 1984, 56 (01) :51-70
[10]
Photoionization mass spectrometer for studies of flame chemistry with a synchrotron light source [J].
Cool, TA ;
McIlroy, A ;
Qi, F ;
Westmoreland, PR ;
Poisson, L ;
Peterka, DS ;
Ahmed, M .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2005, 76 (09)