Understanding low-temperature first-stage ignition delay: Propane

被引:138
作者
Merchant, Shamel S. [1 ]
Goldsmith, C. Franklin [2 ,3 ]
Vandeputte, Aaeron G. [1 ]
Burke, Michael P. [2 ,4 ,5 ]
Klippenstein, Stephen J. [2 ]
Green, William H. [1 ]
机构
[1] MIT, Dept Chem Engn, Cambridge, MA 02139 USA
[2] Argonne Natl Lab, Chem Sci & Engn Div, Argonne, IL 60439 USA
[3] Brown Univ, Sch Engn, Providence, RI 02912 USA
[4] Columbia Univ, Dept Chem Engn, Dept Mech Engn, New York, NY 10027 USA
[5] Columbia Univ, Data Sci Inst, New York, NY 10027 USA
关键词
Propane; Low temperature combustion; Peroxy chemistry; First-stage ignition delay; COMPREHENSIVE KINETIC-MODEL; LIQUID-PHASE AUTOXIDATION; RAPID COMPRESSION MACHINE; PRESSURE RATE RULES; NORMAL-HEXADECANE; SHOCK-TUBE; ELEVATED-TEMPERATURES; REACTION-MECHANISM; ORGANIC-COMPOUNDS; 2-STAGE IGNITION;
D O I
10.1016/j.combustflame.2015.07.005
中图分类号
O414.1 [热力学];
学科分类号
摘要
The low-temperature auto-ignition of fuels is a complex process, occurring in multiple stages with distinct chemical processes governing each stage. The conversion from alkyl radical to chain branching products, which occurs through successive O-2 additions followed by thermal decomposition of the products, is at the core of the auto-ignition process. Our detailed understanding of this central process continues to evolve, with recent theoretical kinetics studies providing a particularly comprehensive description of the radical oxidation process for propane. In this study, we employ this improved description in a detailed numerical and analytical exploration of the first-stage ignition delay for low-temperature auto-ignition of propane, which may be considered as a prototype for larger alkane fuels. The traditional first-stage of ignition can be divided into two stages (stage-1A and stage-1B). During stage-1A, the concentration of radicals grows exponentially, and both OH and HO2 are important in the consumption of the fuel and generation of alkyl radicals. Stage-1A ends when the concentration of HO2 is sufficiently high that the chain-terminating bimolecular reaction HO2 + HO2 becomes competitive with other HO2 reactions including HO2 + fuel, thus slowing the HO2 concentration rise such that it is no longer a key contributor to fuel consumption. During stage-1B, increasing temperature and growing side reactions with secondary chemistry reduce the positive feedback and the concentrations of ketohydroperoxide species stop growing exponentially. The end of this stage is associated with the maximum in ketohydroperoxide, after which it is depleted. We present simple analytical approximations for the time it takes to complete these two sub-stages. These expressions clarify which rate constants control first-stage ignition, and they quantify how the ignition is influenced by mixture composition, temperature and pressure. The analysis is also extended to longer alkane fuels and is shown to provide fairly reliable predictions of the first-stage ignition delay. (C) 2015 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:3658 / 3673
页数:16
相关论文
共 74 条
[21]   Effect of non-thermal product energy distributions on ketohydroperoxide decomposition kinetics [J].
Goldsmith, C. Franklin ;
Burke, Michael P. ;
Georgievskii, Yuri ;
Klippenstein, Stephen J. .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2015, 35 :283-290
[22]   Uncertainty propagation in the derivation of phenomenological rate coefficients from theory: A case study of n-propyl radical oxidation [J].
Goldsmith, C. Franklin ;
Tomlin, Alison S. ;
Klippenstein, Stephen J. .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2013, 34 :177-185
[23]   Database of Small Molecule Thermochemistry for Combustion [J].
Goldsmith, C. Franklin ;
Magoon, Gregory R. ;
Green, William H. .
JOURNAL OF PHYSICAL CHEMISTRY A, 2012, 116 (36) :9033-9057
[24]   Role of O2 + QOOH in Low-Temperature Ignition of Propane. 1. Temperature and Pressure Dependent Rate Coefficients [J].
Goldsmith, C. Franklin ;
Green, William H. ;
Klippenstein, Stephen J. .
JOURNAL OF PHYSICAL CHEMISTRY A, 2012, 116 (13) :3325-3346
[25]   REDUCED KINETIC-MODELS AND THEIR APPLICATION TO PRACTICAL COMBUSTION SYSTEMS [J].
GRIFFITHS, JF .
PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 1995, 21 (01) :25-107
[26]   n-Butane: Ignition delay measurements at high pressure and detailed chemical kinetic simulations [J].
Healy, D. ;
Donato, N. S. ;
Aul, C. J. ;
Petersen, E. L. ;
Zinner, C. M. ;
Bourque, G. ;
Curran, H. J. .
COMBUSTION AND FLAME, 2010, 157 (08) :1526-1539
[27]   Methane/ethane/propane mixture oxidation at high pressures and at high, intermediate and low temperatures [J].
Healy, D. ;
Curran, H. J. ;
Simmie, J. M. ;
Kalitan, D. M. ;
Zinner, C. M. ;
Barrett, A. B. ;
Petersen, E. L. ;
Bourque, G. .
COMBUSTION AND FLAME, 2008, 155 (03) :441-448
[28]   SHOCK-TUBE STUDY OF CH2O PYROLYSIS AND OXIDATION [J].
HIDAKA, Y ;
TANIGUCHI, T ;
TANAKA, H ;
KAMESAWA, T ;
INAMI, K ;
KAWANO, H .
COMBUSTION AND FLAME, 1993, 92 (04) :365-376
[29]   Evaluation of models for the low temperature combustion of alkanes through interpretation of pressure-temperature ignition diagrams [J].
Hughes, Kevin J. ;
Griffiths, John F. ;
Fairweather, Michael ;
Tomlin, Alison S. .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2006, 8 (27) :3197-3210
[30]   Detailed Modeling of Low-Temperature Propane Oxidation: 1. The Role of the Propyl + O2 Reaction [J].
Huynh, Lam K. ;
Carstensen, Hans-Heinrich ;
Dean, Anthony M. .
JOURNAL OF PHYSICAL CHEMISTRY A, 2010, 114 (24) :6594-6607