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A compact skeletal mechanism for n-dodecane with optimized semi-global low-temperature chemistry for diesel engine simulations.

Authors :
Yao, Tong
Pei, Yuanjiang
Zhong, Bei-Jing
Som, Sibendu
Lu, Tianfeng
Luo, Kai Hong
Source :
Fuel. Mar2017, Vol. 191, p339-349. 11p.
Publication Year :
2017

Abstract

A skeletal mechanism with 54 species and 269 reactions was developed to predict pyrolysis and oxidation of n -dodecane as a diesel fuel surrogate involving both high-temperature (high-T) and low-temperature (low-T) conditions. The skeletal mechanism was developed from a semi-detailed mechanism developed at the University of Southern California (USC). Species and reactions for high-T pyrolysis and oxidation of C 5 -C 12 were reduced by using reaction flow analysis (RFA), isomer lumping, and then merged into a skeletal C 0 -C 4 core to form a high-T sub-mechanism. Species and lumped semi-global reactions for low-T chemistry were then added to the high-T sub-mechanism and a 54-species skeletal mechanism is obtained. The rate parameters of the low-T reactions were tuned against a detailed mechanism by the Lawrence Livermore National Laboratory (LLNL), as well as the Spray A flame experimental data, to improve the prediction of ignition delay at low-T conditions, while the high-T chemistry remained unchanged. The skeletal mechanism was validated for auto-ignition, perfectly stirred reactors (PSR), flow reactors and laminar premixed flames over a wide range of flame conditions. The skeletal mechanism was then employed to simulate three-dimensional turbulent spray flames at compression ignition engine conditions and validated against experimental data from the Engine Combustion Network (ECN). [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00162361
Volume :
191
Database :
Academic Search Index
Journal :
Fuel
Publication Type :
Academic Journal
Accession number :
120277393
Full Text :
https://doi.org/10.1016/j.fuel.2016.11.083