Effects of strain rate on high-pressure nonpremixed n-heptane autoignition in counterflow
نویسندگان
چکیده
The effect of steady strain on the transient autoignition of n-heptane at high pressures is studied numerically with detailed chemistry and transport in a counterflow configuration. Skeletal and reduced n-heptane mechanisms are developed and validated against experiments over a range of pressure and stoichiometries. Two configurations are investigated using the skeletal mechanism. First, the effect of strain rate on multistage n-heptane ignition is studied by imposing a uniform temperature for both the fuel and the oxidizer streams. Second, a temperature gradient between the fuel and the oxidizer streams is imposed. The global effect of strain on ignition is captured by a Damköhler number based on either the heat-release rate or the characteristic chain-branching rate. Results show that for low to moderate strain rates, both the lowand intermediate-temperature chemistries evolve in a manner comparable to that in homogeneous systems, including the negative temperature coefficient regime, but with somewhat slower evolution attributable to diffusive losses. At high strain rates diffusive losses inhibit ignition; for two-stage ignition, it is found that ignition is inhibited during the second, intermediate-temperature stage. The imposition of an overall temperature gradient further inhibits ignition because reaction zones for key branching reactions with large activation energies are narrowed. For a fixed oxidizer stream temperature that is not sufficiently high, a higher fuel temperature results in a shorter ignition delay provided that the heptyl radicals are mainly oxidized by low-temperature chemistry. As expected, an increase in pressure significantly increases reaction rates and reduces ignition delay time. However, with increasing pressure there is a shift toward singlestage low-temperature-dominated ignition which serves to delay ignition. 2004 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
منابع مشابه
Evaluation of chemical-kinetics models for n-heptane combustion using a multidimensional CFD code
0016-2361/$ see front matter 2011 Elsevier Ltd. A doi:10.1016/j.fuel.2011.10.035 ⇑ Corresponding author. Tel.: +1 9372558781. E-mail address: [email protected] (V.R. Katta). Computational fluid dynamics (CFDs)-based predictions are presented for nonpremixed and partially premixed flames burning vaporized n-heptane fuel. Three state-of-the-art chemical kinetics models are incorporated into a tim...
متن کاملEXTINCTION AND AUTOIGNITION OF n-HEPTANE IN COUNTERFLOW CONFIGURATION
A study was performed to elucidate the mechanisms of extinction and autoignition of n-heptane in strained laminar flows under non-premixed conditions. A previously developed detailed mechanism made up of 2540 reversible elementary reactions among 556 species was the starting point for the study. The detailed mechanism was previously used to calculate ignition delay times in homogeneous reactors...
متن کاملChemical Kinetic Characterization of Autoignition and Combustion of Diesel and JP-8 Contents
A study was performed to elucidate the chemical-kinetic mechanism of combustion of toluene. A detailed chemical-kinetic mechanism for toluene was improved by adding a more accurate description of the phenyl + O2 reaction channels, toluene decomposition reactions and the benzyl + O reaction. Results of the chemical kinetic mechanism are compared with experimental data obtained from premixed and ...
متن کاملStructure of partially premixed n-heptane–air counterflow flames
To avoid the complexities associated with the droplet/vapor transport and nonuniform evaporation processes, a fundamental investigation of liquid fuel combustion in idealized configurations is very useful. An experimental–computational investigation of prevaporized n-heptane nonpremixed and partially premixed flames established in a counterflow burner is described. There is a general agreement ...
متن کاملAn experimental and numerical investigation of n-heptane/air counterflow partially premixed flames and emission of NOx and PAH species
An experimental and numerical investigation of counterflow prevaporized partially premixed n-heptane flames is reported. The major objective is to provide well-resolved experimental data regarding the detailed structure and emission characteristics of these flames, including profiles of C1–C6, and aromatic species (benzene and toluene) that play an important role in soot formation. n-Heptane is...
متن کامل