An automated procedure has been previously developed to generate simplified skeletal reaction mechanisms for the combustion of n-heptane/air mixtures at equivalence ratios between 0.5 and 2.0 and different pressures. The algorithm is based on a Computational Singular Perturbation (CSP)-generated database of importance indices computed from homogeneous n-heptane/air ignition solutions. In this paper, we examine the accuracy of these simplified mechanisms when they are used for modeling laminar n-heptane/air premixed flames. The objective is to evaluate the accuracy of the simplified models when transport processes lead to local mixture compositions that are not necessarily part of the comprehensive homogeneous ignition databases. The detaile...
Computational flame diagnostics (CFLDs) are systematic tools to extract important information from s...
Progressively stricter pollutant emission targets in international agreements have shifted the focus...
Seidel L, Moshammer K, Wang X, Zeuch T, Kohse-Höinghaus K, Mauss F. Comprehensive kinetic modeling a...
We use a procedure based on the decomposition into fast and slow dynamical components offered by the...
We use a procedure based on the decomposition into fast and slow dynamical components offered by the...
Reduced mechanisms for n-heptane combustion have been constructed using the novel ACR method, with t...
A model reduction methodology, based on the quasi steady-state approximation (QSSA), is employed for...
Results of a detailed numerical analysis of an n-heptane/air edge flame are presented. The equations...
A set of model parameters has been derived for the use of the model with n-heptane following the pro...
Journal ArticleFour different n-heptane mechanisms were used to simulate a fuel rich n-heptane premi...
The continuous research towards novel combustion technologies, operating at high temperatures and pr...
abstractReaction pathway analyses were conducted for three mechanisms (designated as the Pitsch, Uta...
A detailed chemical model, describing the combustion of n-heptane in a low-pressure batch reactor, h...
A methodology for deriving a reduced kinetic mechanism for alkane oxidation is described and applied...
Ruwe L, Cai L, Wullenkord J, et al. Low- and high-temperature study of n-heptane combustion chemistr...
Computational flame diagnostics (CFLDs) are systematic tools to extract important information from s...
Progressively stricter pollutant emission targets in international agreements have shifted the focus...
Seidel L, Moshammer K, Wang X, Zeuch T, Kohse-Höinghaus K, Mauss F. Comprehensive kinetic modeling a...
We use a procedure based on the decomposition into fast and slow dynamical components offered by the...
We use a procedure based on the decomposition into fast and slow dynamical components offered by the...
Reduced mechanisms for n-heptane combustion have been constructed using the novel ACR method, with t...
A model reduction methodology, based on the quasi steady-state approximation (QSSA), is employed for...
Results of a detailed numerical analysis of an n-heptane/air edge flame are presented. The equations...
A set of model parameters has been derived for the use of the model with n-heptane following the pro...
Journal ArticleFour different n-heptane mechanisms were used to simulate a fuel rich n-heptane premi...
The continuous research towards novel combustion technologies, operating at high temperatures and pr...
abstractReaction pathway analyses were conducted for three mechanisms (designated as the Pitsch, Uta...
A detailed chemical model, describing the combustion of n-heptane in a low-pressure batch reactor, h...
A methodology for deriving a reduced kinetic mechanism for alkane oxidation is described and applied...
Ruwe L, Cai L, Wullenkord J, et al. Low- and high-temperature study of n-heptane combustion chemistr...
Computational flame diagnostics (CFLDs) are systematic tools to extract important information from s...
Progressively stricter pollutant emission targets in international agreements have shifted the focus...
Seidel L, Moshammer K, Wang X, Zeuch T, Kohse-Höinghaus K, Mauss F. Comprehensive kinetic modeling a...