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A Hierarchical Theoretical Study of the Hydrogen Abstraction Reactions of H(2)/C(1)–C(4) Molecules by the Methyl Peroxy Radical and Implications for Kinetic Modeling

[Image: see text] The hydrogen atom abstraction by the methyl peroxy radical (CH(3)O(2)) is an important reaction class in detailed chemical kinetic modeling of the autoignition properties of hydrocarbon fuels. Systematic theoretical studies are performed on this reaction class for H(2)/C(1)–C(4) fu...

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Autores principales: Xu, Shenying, Liang, Jinhu, Cao, Shutong, He, Ruining, Yin, Guoliang, Wang, Quan-De
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8928341/
https://www.ncbi.nlm.nih.gov/pubmed/35309437
http://dx.doi.org/10.1021/acsomega.1c06683
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author Xu, Shenying
Liang, Jinhu
Cao, Shutong
He, Ruining
Yin, Guoliang
Wang, Quan-De
author_facet Xu, Shenying
Liang, Jinhu
Cao, Shutong
He, Ruining
Yin, Guoliang
Wang, Quan-De
author_sort Xu, Shenying
collection PubMed
description [Image: see text] The hydrogen atom abstraction by the methyl peroxy radical (CH(3)O(2)) is an important reaction class in detailed chemical kinetic modeling of the autoignition properties of hydrocarbon fuels. Systematic theoretical studies are performed on this reaction class for H(2)/C(1)–C(4) fuels, which is critical in the development of a base model for large fuels. The molecules include hydrogen, alkanes, alkenes, and alkynes with a carbon number from 1 to 4. The B2PLYP-D3/cc-pVTZ level of theory is employed to optimize the geometries of all of the reactants, transition states, and products and also the treatments of hindered rotation for lower frequency modes. Accurate benchmark calculations for abstraction reactions of hydrogen, methane, and ethylene with CH(3)O(2) are performed by using the coupled cluster method with explicit inclusion of single and double electron excitations and perturbative inclusion of triple electron excitations (CCSD(T)), the domain-based local pair-natural orbital coupled cluster method (DLPNO-CCSD(T)), and the explicitly correlated CCSD(T)-F12 method with large basis sets. Reaction rate constants are computed via conventional transition state theory with quantum tunneling corrections. The computed rate constants are compared with literature values and those employed in detailed chemical kinetic mechanisms. The calculated rate constants are implemented into the recently developed NUIGMECH1.1 base model for kinetic modeling of ignition properties.
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spelling pubmed-89283412022-03-18 A Hierarchical Theoretical Study of the Hydrogen Abstraction Reactions of H(2)/C(1)–C(4) Molecules by the Methyl Peroxy Radical and Implications for Kinetic Modeling Xu, Shenying Liang, Jinhu Cao, Shutong He, Ruining Yin, Guoliang Wang, Quan-De ACS Omega [Image: see text] The hydrogen atom abstraction by the methyl peroxy radical (CH(3)O(2)) is an important reaction class in detailed chemical kinetic modeling of the autoignition properties of hydrocarbon fuels. Systematic theoretical studies are performed on this reaction class for H(2)/C(1)–C(4) fuels, which is critical in the development of a base model for large fuels. The molecules include hydrogen, alkanes, alkenes, and alkynes with a carbon number from 1 to 4. The B2PLYP-D3/cc-pVTZ level of theory is employed to optimize the geometries of all of the reactants, transition states, and products and also the treatments of hindered rotation for lower frequency modes. Accurate benchmark calculations for abstraction reactions of hydrogen, methane, and ethylene with CH(3)O(2) are performed by using the coupled cluster method with explicit inclusion of single and double electron excitations and perturbative inclusion of triple electron excitations (CCSD(T)), the domain-based local pair-natural orbital coupled cluster method (DLPNO-CCSD(T)), and the explicitly correlated CCSD(T)-F12 method with large basis sets. Reaction rate constants are computed via conventional transition state theory with quantum tunneling corrections. The computed rate constants are compared with literature values and those employed in detailed chemical kinetic mechanisms. The calculated rate constants are implemented into the recently developed NUIGMECH1.1 base model for kinetic modeling of ignition properties. American Chemical Society 2022-03-01 /pmc/articles/PMC8928341/ /pubmed/35309437 http://dx.doi.org/10.1021/acsomega.1c06683 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Xu, Shenying
Liang, Jinhu
Cao, Shutong
He, Ruining
Yin, Guoliang
Wang, Quan-De
A Hierarchical Theoretical Study of the Hydrogen Abstraction Reactions of H(2)/C(1)–C(4) Molecules by the Methyl Peroxy Radical and Implications for Kinetic Modeling
title A Hierarchical Theoretical Study of the Hydrogen Abstraction Reactions of H(2)/C(1)–C(4) Molecules by the Methyl Peroxy Radical and Implications for Kinetic Modeling
title_full A Hierarchical Theoretical Study of the Hydrogen Abstraction Reactions of H(2)/C(1)–C(4) Molecules by the Methyl Peroxy Radical and Implications for Kinetic Modeling
title_fullStr A Hierarchical Theoretical Study of the Hydrogen Abstraction Reactions of H(2)/C(1)–C(4) Molecules by the Methyl Peroxy Radical and Implications for Kinetic Modeling
title_full_unstemmed A Hierarchical Theoretical Study of the Hydrogen Abstraction Reactions of H(2)/C(1)–C(4) Molecules by the Methyl Peroxy Radical and Implications for Kinetic Modeling
title_short A Hierarchical Theoretical Study of the Hydrogen Abstraction Reactions of H(2)/C(1)–C(4) Molecules by the Methyl Peroxy Radical and Implications for Kinetic Modeling
title_sort hierarchical theoretical study of the hydrogen abstraction reactions of h(2)/c(1)–c(4) molecules by the methyl peroxy radical and implications for kinetic modeling
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8928341/
https://www.ncbi.nlm.nih.gov/pubmed/35309437
http://dx.doi.org/10.1021/acsomega.1c06683
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