Experiments and modeling of ignition delay times, flame structure and intermediate species of EHN-doped stoichiometric n-heptane/air combustion

被引:26
作者
Hartmann, M. [1 ]
Tian, K. [2 ]
Hofrath, C. [3 ]
Fikri, M. [1 ]
Schubert, A. [3 ]
Schiessl, R. [3 ]
Starke, R. [1 ]
Atakan, B. [2 ]
Schulz, C. [1 ]
Maas, U. [3 ]
Jaeger, F. Kleine [4 ]
Kuehling, K. [4 ]
机构
[1] Univ Duisburg Essen, Inst Verbrennung & Gusdynam, D-47057 Duisburg, Germany
[2] Univ Duisburg Essen, IVG, Duisburg, Germany
[3] Univ Karlsruhe, ITT, Karlsruhe, Germany
[4] BASF SE, Ludwigshafen, Germany
关键词
Flame structure; Ignition delay times; Kinetic mechanism; EHN; Mechanism validation; FUEL; ADDITIVES;
D O I
10.1016/j.proci.2008.06.068
中图分类号
O414.1 [热力学];
学科分类号
摘要
The combustion of stoichiometric Ethyl-hexyl-nitrate (EHN)-doped n-heptane/oxygen/argon and (EHN)-doped n-heptane/air mixtures, respectively, was investigated in a low-pressure burner with a molecular-beam mass spectrometer and ignition delay-time (tau(ign)) measurements were. performed in a high-pressure shock tube. The experiments with the low-pressure flame were used for the determination of the flame structure including concentration profiles of reactants, products and important intermediates in the flame. The shock tube experiments provided tau(ign) for a temperature range of 690 K <= T <= 1275 K at a pressure of 40 +/- 2 bar for stoichiometric and lean mixtures under engine relevant conditions. A chemical mechanism for n-heptane/EHN mixtures was developed from an automatically generated mechanism for n-heptane by manually adding reactions to describe the influence of EHN. This mechanism was validated against the shock-tube data for various temperatures, levels of EHN-doping and equivalence ratios by homogeneous reactor calculations. The ignition delay times predicted by the model agree well with the shock tube results for a large range of temperatures, equivalence ratios and EHN concentrations. The influence of EHN onto ignition delay was largest in the low-temperature regime (770-1000 K). Numerical analysis suggests that the prevalent reason for the ignition-enhancing effect of EHN is the formation of highly reactive heptyl radicals by thermal decomposition of EHN. Due to this comparatively simple and generic mechanism, EHN is expected to have a similar ignition-enhancing effect also for other hydrocarbon fuels. (C) 2009 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:197 / 204
页数:8
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