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    Revisiting low temperature oxidation chemistry of n-heptane

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    Heptane oxidation-R1.pdf
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    1.495Mb
    Format:
    PDF
    Description:
    Accepted Manuscript
    Embargo End Date:
    2024-05-17
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    ScienceDirect_files_18May2022_11-58-17.659.zip
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    Description:
    Supplementary material
    Embargo End Date:
    2024-05-17
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    Type
    Article
    Authors
    Xie, Cheng
    Lailliau, Maxence cc
    Issayev, Gani
    Xu, Qiang
    Chen, Weiye
    Dagaut, Philippe cc
    Farooq, Aamir cc
    Sarathy, Mani cc
    Wei, Lixia
    Wang, Zhandong cc
    KAUST Department
    Mechanical Engineering Program
    Physical Science and Engineering (PSE) Division
    Clean Combustion Research Center
    Chemical Engineering Program
    KAUST Grant Number
    CRG2020-URF-1435
    Date
    2022-05-17
    Embargo End Date
    2024-05-17
    Permanent link to this record
    http://hdl.handle.net/10754/678028
    
    Metadata
    Show full item record
    Abstract
    Benefitting from the rapid development of instrumental analysis methods, intermediate products that were difficult to probe in the past can now be measured and quantified in complex reaction systems. To understand low temperature reactions of interest for combustion applications, and reduce the deviations between model predictions and experimental measurements, constant advancement in understanding low temperature oxidation process is necessary. This work examines the oxidation of n-heptane in jet-stirred reactors at atmospheric pressure, with an initial n-heptane mole fraction of 0.005, equivalence ratio of 0.5, a residence time of 1s, and over a temperature range of 500-800 K. Reaction products were analyzed using synchrotron ultra-violet photoionization mass spectrometry, gas chromatography, and Fourier-transform infrared spectroscopy. Ignition delay times of n-heptane/O2/CO2 mixture were measured in a rapid compression machine at 20 and 40 bar over a 600-673 K temperature range. Based on the experimental results, a comprehensive kinetic model of n-heptane low temperature oxidation was developed by considering the sub-mechanisms of keto-hydroperoxide, cyclic ether, heptene isomers, and the third O2 addition reaction, and by updating the rate constants of keto-hydroperoxide decomposition and second oxygen addition reactions. The combination of reaction mechanism development and evaluation of the rate constants of key reactions enabled the model to effectively predict the species concentrations and ignition delay times of n-heptane low temperature oxidation, providing additional insight into alkane low temperature oxidation chemistry.
    Citation
    Xie, C., Lailliau, M., Issayev, G., Xu, Q., Chen, W., Dagaut, P., Farooq, A., Sarathy, S. M., Wei, L., & Wang, Z. (2022). Revisiting low temperature oxidation chemistry of n-heptane. Combustion and Flame, 242, 112177. https://doi.org/10.1016/j.combustflame.2022.112177
    Sponsors
    Supported by the National Natural Science Foundation of China (51976208), by Hefei Science Center, CAS (2020HSC-KPRD001, 2021HSC-UE005), and by the DNL Cooperation Fund, CAS (DNL202005). The work of KAUST authors was funded by the Office of Sponsored Research (OSR) at King Abdullah University of Science and Technology (Grant CRG2020-URF-1435). Work at CNRS Orléans received funding from the Labex Caprysses (ANR-11-LABX-0006-01) and from the Région Centre Val de Loire, EFRD, and CPER (projects PROMESTOCK and APROPOR-E).
    Publisher
    Elsevier BV
    Journal
    Combustion and Flame
    DOI
    10.1016/j.combustflame.2022.112177
    Additional Links
    https://linkinghub.elsevier.com/retrieve/pii/S0010218022001924
    ae974a485f413a2113503eed53cd6c53
    10.1016/j.combustflame.2022.112177
    Scopus Count
    Collections
    Articles; Physical Science and Engineering (PSE) Division; Chemical Engineering Program; Mechanical Engineering Program; Clean Combustion Research Center

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