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dc.contributor.authorDuan, Yaozong
dc.contributor.authorMonge Palacios, Manuel
dc.contributor.authorGrajales Gonzalez, Edwing
dc.contributor.authorHan, Dong
dc.contributor.authorMøller, Kristian H.
dc.contributor.authorKjaergaard, Henrik G.
dc.contributor.authorSarathy, Mani
dc.date.accessioned2020-06-09T10:58:14Z
dc.date.available2020-06-09T10:58:14Z
dc.date.issued2020-06-04
dc.date.submitted2019-12-01
dc.identifier.citationDuan, Y., Monge-Palacios, M., Grajales-Gonzalez, E., Han, D., Møller, K. H., Kjaergaard, H. G., & Sarathy, S. M. (2020). Oxidation kinetics of n-pentanol: A theoretical study of the reactivity of the 1‑hydroxy‑1-peroxypentyl radical. Combustion and Flame, 219, 20–32. doi:10.1016/j.combustflame.2020.05.014
dc.identifier.issn1556-2921
dc.identifier.issn0010-2180
dc.identifier.doi10.1016/j.combustflame.2020.05.014
dc.identifier.urihttp://hdl.handle.net/10754/663461
dc.description.abstractn-Pentanol has been considered as a promising alternative fuel for compression-ignition engines due to its potential to reduce greenhouse gases and pollutant emissions. Engine performance is strongly dominated by fuel oxidation chemistry, and thus a more accurate determination of the coefficients of the reactions ruling its oxidation is essential for the utilization of n-pentanol in combustion engines. The reactions involving 1‑hydroxy‑1-pentyl and molecular oxygen were found to play an important role in controlling the low temperature oxidation chemistry, but have not been investigated experimentally or theoretically; this is also the case for the reactions of the 1‑hydroxy‑1-peroxypentyl radical, which is formed by the addition of oxygen to the radical center of 1‑hydroxy‑1-pentyl. This work presents a theoretical study with high level ab initio calculations at the CCSD(T)/aug-cc-pVTZ//M06-2X/cc-pVTZ level of theory to shed light on the fate of the 1‑hydroxy‑1-peroxypentyl radical. The rate coefficients of all the possible intra-molecular hydrogen shift reactions of that radical were computed using variational transition state theory with small curvature tunneling corrections. For certain reactions, tunneling and variational effects are very pronounced, proving the need for robust methodologies to account for these effects. The hydrogen shift reaction leading to a concerted HO2 elimination and formation of n-pentanal is the dominant pathway and governs the reactivity of 1‑hydroxy‑1-peroxypentyl radical at any temperature. The reverse of this reaction was thereby investigated as well. For this prominent pathway, the effects of multistructural (multiple conformers) torsional anharmonicity of the stationary points were taken into account in order to refine the forward and reverse rate coefficients. The rate coefficients calculated at room temperature are compared to those calculated using a previously developed cost-effective multi-conformer transition state theory approach. The system-specific quantum Rice-Ramsperger-Kassel (SS-QRRK) theory was used to compute the pressure-dependent rate coefficients, which indicate significant pressure dependence at intermediate and high temperatures. Implementation of the calculated reaction rate coefficients in chemical kinetics models of n-pentanol revealed that our computed rate coefficients enable better insights into the chemistry of n-pentanol, and help to understand how n-pentanal is formed.
dc.description.sponsorshipThe research at Shanghai Jiao Tong University was supported by funding from the National Natural Science Foundation of China under Grant No. 51776124. The present work was also supported by funding from King Abdullah University of Science and Technology (KAUST) Office of Sponsored Research (OSR) under award No. OSR-2016-CRG5-3022. We would like to acknowledge resources of the Supercomputing Laboratory at KAUST. We are grateful for the funding from the Independent Research Fund Denmark, and the University of Copenhagen. The authors also would like to thank Prof. Heufer for providing us with the volume traces used in the RCM simulations.
dc.publisherElsevier BV
dc.relation.urlhttps://linkinghub.elsevier.com/retrieve/pii/S0010218020301954
dc.rightsNOTICE: this is the author’s version of a work that was accepted for publication in Combustion and Flame. Changes resulting from the publishing process, such as peer review, editing, corrections, structural formatting, and other quality control mechanisms may not be reflected in this document. Changes may have been made to this work since it was submitted for publication. A definitive version was subsequently published in Combustion and Flame, [219, , (2020-06-04)] DOI: 10.1016/j.combustflame.2020.05.014 . © 2020. This manuscript version is made available under the CC-BY-NC-ND 4.0 license http://creativecommons.org/licenses/by-nc-nd/4.0/
dc.titleOxidation kinetics of n-pentanol: A theoretical study of the reactivity of the 1‑hydroxy‑1-peroxypentyl radical
dc.typeArticle
dc.contributor.departmentChemical Engineering Program
dc.contributor.departmentClean Combustion Research Center
dc.contributor.departmentCombustion and Pyrolysis Chemistry (CPC) Group
dc.contributor.departmentPhysical Science and Engineering (PSE) Division
dc.identifier.journalCombustion and Flame
dc.eprint.versionPost-print
dc.contributor.institutionKey Laboratory for Power Machinery and Engineering, Ministry of Education, Shanghai Jiao Tong University, Shanghai 200240, China
dc.contributor.institutionDepartment of Chemistry, University of Copenhagen, DK-2100 Copenhagen Ø, Denmark
dc.identifier.volume219
dc.identifier.pages20-32
kaust.personDuan, Yaozong
kaust.personMonge Palacios, Manuel
kaust.personGrajales Gonzalez, Edwing
kaust.personSarathy, Mani
kaust.grant.numberOSR-2016-CRG5-3022
dc.date.accepted2020-05-17
dc.identifier.eid2-s2.0-85085763828
refterms.dateFOA2020-06-09T13:14:22Z
kaust.acknowledged.supportUnitOffice of Sponsored Research (OSR)
kaust.acknowledged.supportUnitSupercomputing Laboratory at KAUST
dc.date.published-online2020-06-04
dc.date.published-print2020-09


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