Shock-tube spectroscopic CO and H2O measurements during 2-methyl-1-butene combustion and chemical kinetics modeling

被引:9
作者
Gregoire, Claire M. [1 ]
Westbrook, Charles K. [2 ]
Kukkadapu, Goutham [2 ]
Cooper, Sean P. [1 ]
Alturaifi, Sulaiman A. [1 ]
Mathieu, Olivier [1 ]
Petersen, Eric L. [1 ]
机构
[1] Texas A&M Univ, J Mike Walker 66 Dept Mech Engn, College Stn, TX 77843 USA
[2] Lawrence Livermore Natl Lab, Livermore, CA 94550 USA
关键词
2-methyl-1-butene; Shock-tube; Laser measurements; CO; H2O; Chemical kinetics modeling; LAMINAR FLAME SPEED; IGNITION DELAY-TIME; N-PENTANE; 1-PENTENE; OXIDATION; METHANE; HYDROCARBONS; MIXTURES; ETHANE; PRESSURES;
D O I
10.1016/j.combustflame.2021.111919
中图分类号
O414.1 [热力学];
学科分类号
摘要
New CO and H2O time histories were measured for 2-Methyl-1-Butene (2M1B) behind reflected shock waves. The experimental setup was developed to simultaneously obtain carbon monoxide and water time histories from the oxidation of 2M1B in 99.5% He/Ar (20% He and 79.5% Ar). The experiments were carried out at three different equivalence ratios (Phi = 0.5, 1.0, and 2.0) at pressures and temperatures ranging from 1.15 atm to 1.32 atm and 1414 K to 1894 K, respectively. A very limited number of studies focusing on 2M1B are available in the literature, and no model is designed specifically for this C5 alkene, as opposed to its other isomers: 1-pentene (1-C5H10), 2-pentene (2-C5H10), 3-Methyl-1-Butene (3M1B), and 2-Methyl-2-Butene (2M2B). Experimental profiles were compared to recent literature models containing a 2M1B sub-mechanism. Numerical predictions using the AramcoMech 3.0 and Ruwe et al. mechanisms show that the combustion behavior of 2M1B is not well captured by these recent detailed kinetics models. More importantly, Cheng et al. proposed a modified version of AramcoMech 3.0 with improvements on the 1C(5)H(10) and 2M2B sub-mechanisms, which deteriorates the mechanism's performance for 2M1B. Similarly, Power et al. had modified AramcoMech 3.0 on the sub-mechanisms for 1-C5H10 and 2-C5H10, but it does not reproduce H2O and CO time histories any better. The Dong et al. model is accurate within 10% when considering only the induction delay times, but it shows discrepancies for the concentration levels. The present study used an updated, detailed chemical kinetics model, and this mechanism was able to capture the experimental results with suitable precision, giving the best predictions. (C) 2021 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
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页数:13
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共 43 条
[31]   Experimental study on devolatilization characteristics of lignite during pressurized oxy-fuel combustion: Effects of CO2 and H2O [J].
Geng, Chenchen ;
Zhong, Wenqi ;
Bian, Zhoufeng ;
Liu, Xuejiao .
FUEL, 2023, 331
[32]   Solubilities of CO2 in, and Densities and Viscosities of, the Piperazine+1-Ethyl-3-methyl-imidazolium Acetate + H2O System [J].
Li, Yun ;
Zheng, Danxing ;
Dong, Li ;
Nie, Nan ;
Xiong, Bin .
JOURNAL OF CHEMICAL AND ENGINEERING DATA, 2014, 59 (03) :618-625
[33]   Synthesis, thermal and spectroscopic properties, and crystal structures of [Co(bba)2(H2O)(phen)] and [Ni(bba)2(H2O)(butOH)(phen)] (bba=2-benzoylbenzoate, phen=1,10-phenanthroline, butOH = butanol) [J].
Caglar, Sema ;
Heren, Zerrin ;
Buyukgungor, Orhan .
JOURNAL OF COORDINATION CHEMISTRY, 2011, 64 (07) :1289-1298
[34]   Experimental data, thermodynamic and neural network modeling of CO2 absorption capacity for 2-amino-2-methyl-1-propanol (AMP) thorn Methanol (MeOH) thorn H2O system [J].
Pakzad, Peyman ;
Mofarahi, Masoud ;
Izadpanah, Amir Abbas ;
Afkhamipour, Morteza .
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2020, 73
[35]   Metal-free C2N catalyst with superior H2O/SO2 tolerance for NO reduction with CO during incomplete combustion process [J].
Zhou, Junhui ;
Li, Didi ;
Jing, Binghua ;
Xiao, Beibei ;
Ao, Zhimin .
FUEL, 2023, 354
[36]   Chemistry evolution of LiNi1/3Co1/3Mn1/3O2-NaHSO4•H2O system during roasting [J].
Zhang, Xiaodong ;
Wang, Dahui ;
Chen, Huaijing ;
Yang, Lixin ;
Yu, Yueshan ;
Xu, Li .
SOLID STATE IONICS, 2019, 339
[37]   The impact of H2O on NO emission during oxy-fuel co-combustion of coal/ NH3 by experimental investigation and molecular dynamic calculation [J].
Lei, Ming ;
Zhao, Zhilin ;
Hu, Yujie ;
Liu, Wei ;
Hong, Dikun ;
Zhang, Qian ;
Zhang, Lei .
JOURNAL OF THE ENERGY INSTITUTE, 2025, 120
[38]   Interaction mechanism between CO and H2S over CuFe2O4 oxygen carrier during chemical-looping combustion: A DFT study [J].
Li, Yu ;
Liu, Jing ;
Liu, Feng ;
Yang, Yingju ;
Fang, Ruixue .
FUEL, 2022, 324
[39]   Experimental measurements on chemical reaction and thermal conductivity of the H2/CO2/CO/CH4/H2O system using the short-hot-wire method at 664-915 K and 9.2-22.2 MPa [J].
Li, Fengyi ;
Ma, Weigang ;
Jin, Hui ;
Zhang, Xing ;
Guo, Liejin .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2021, 177
[40]   The competition/inhibition effect of H2O/CO2-char gasification in typical in situ gasification-chemical looping combustion (iG-CLC) conditions via particle-resolved simulation [J].
Zheng, Chaohe ;
Zheng, Chuanbao ;
Su, Mingze ;
Zhao, Haibo .
FUEL, 2023, 333