Automatically generated detailed and lumped reaction mechanisms for low- and high-temperature oxidation of alkanes
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Type
ArticleKAUST Department
Biological and Environmental Science and Engineering (BESE) DivisionChemical Engineering Program
Clean Combustion Research Center
Combustion and Pyrolysis Chemistry (CPC) Group
Physical Science and Engineering (PSE) Division
KAUST Grant Number
CRG 2020URF/1/4351-01-01
Date
2022-10-21Embargo End Date
2024-10-21Permanent link to this record
http://hdl.handle.net/10754/685128
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In this work, we present a methodology on automatic generation of predictive lumped sub-mechanisms for normal and branched alkanes. This methodology aims at obtaining lumped reaction mechanisms that preserve the chemical behavior of each reaction class in the detailed model. To achieve this goal, detailed sub-mechanisms for combustion of alkanes are generated by employing an updated version of the MAMOX++ software developed in this work; recent progress in the low-temperature reaction classes and rate rules are incorporated into the updated software. Instead of computing the selectivities of several primary products with MAMOX++ and fitting the selectivities between the detailed and lumped models, this work proposes a new methodology to generate the lumped sub-mechanisms for fuel molecules. The stoichiometric parameters and the reaction rates for each reaction class in the lumped sub-mechanism are fitted to match those in the detailed model. Based on the present methodology, both the detailed and lumped sub-mechanisms for normal C5single bondC10 alkanes and branched C5single bondC8 alkanes, that is for 15 different fuels, are automatically generated and merged into a base chemistry model (i.e. AramcoMech 2.0), respectively. The detailed and lumped models are validated against the experimental data in the literature. The automatically generated detailed models for alkanes are able to capture the experimental targets across a wide range of conditions, demonstrating the robustness of the reaction classes and rate rules adopted. The lumped models for normal alkanes have similar performance to their respective detailed models, and are able to predict the oxidation behavior of normal alkanes. However, prediction deviations between the detailed and lumped models for branched alkanes are shown to be slightly greater.Citation
Brunialti, S., Zhang, X., Faravelli, T., Frassoldati, A., & Sarathy, S. M. (2022). Automatically generated detailed and lumped reaction mechanisms for low- and high-temperature oxidation of alkanes. Proceedings of the Combustion Institute. https://doi.org/10.1016/j.proci.2022.08.084Sponsors
This work was funded by the Office of Sponsored Research (OSR) at King Abdullah University of Science and Technology (Grant URF/1/4351-01-01 (CRG 2020)). S. Brunialti was supported by the Al-Khwarizmi KAUST Fellowship.Publisher
Elsevier BVAdditional Links
https://linkinghub.elsevier.com/retrieve/pii/S1540748922003984ae974a485f413a2113503eed53cd6c53
10.1016/j.proci.2022.08.084