4.7 Article

Skeletal mechanism generation for surrogate fuels using directed relation graph with error propagation and sensitivity analysis

Journal

COMBUSTION AND FLAME
Volume 157, Issue 9, Pages 1760-1770

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.combustflame.2009.12.022

Keywords

Mechanism reduction; Directed relation graph; Skeletal mechanism; Surrogate fuels; n-heptane; iso-octane; n-decane

Funding

  1. National Aeronautics and Space Administration [NNX07AB36A]
  2. Department of Defense through the National Defense Science and Engineering Graduate (NDSEG)

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A novel implementation for the skeletal reduction of large detailed reaction mechanisms using the directed relation graph with error propagation and sensitivity analysis (DRGEPSA) is developed and presented with examples for three hydrocarbon components, n-heptane, iso-octane, and n-decane, relevant to surrogate fuel development. DRGEPSA integrates two previously developed methods, directed relation graph-aided sensitivity analysis (DRGASA) and directed relation graph with error propagation (DRGEP), by first applying DRGEP to efficiently remove many unimportant species prior to sensitivity analysis to further remove unimportant species, producing an optimally small skeletal mechanism for a given error limit. It is illustrated that the combination of the DRGEP and DRGASA methods allows the DRGEPSA approach to overcome the weaknesses of each, specifically that DRGEP cannot identify all unimportant species and that DRGASA shields unimportant species from removal. Skeletal mechanisms for n-heptane and iso-octane generated using the DRGEP, DRGASA, and DRGEPSA methods are presented and compared to illustrate the improvement of DRGEPSA. From a detailed reaction mechanism for n-alkanes covering n-octane to n-hexadecane with 2115 species and 8157 reactions, two skeletal mechanisms for n-decane generated using DRGEPSA, one covering a comprehensive range of temperature, pressure, and equivalence ratio conditions for autoignition and the other limited to high temperatures, are presented and validated. The comprehensive skeletal mechanism consists of 202 species and 846 reactions and the high-temperature skeletal mechanism consists of 51 species and 256 reactions. Both mechanisms are further demonstrated to well reproduce the results of the detailed mechanism in perfectly-stirred reactor and laminar flame simulations over a wide range of conditions. The comprehensive and high-temperature n-decane skeletal mechanisms are included as supplementary material with this article. (C) 2010 The Combustion Institute. Published by Elsevier Inc. All rights reserved.

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