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    Three-stage auto-ignition of n-heptane and methyl-cyclohexane mixtures at lean conditions in a flat piston rapid compression machine

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    Multiple Stage HR at RCM_Final-With-noHighlights.pdf
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    Description:
    Accepted manuscript
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    Type
    Article
    Authors
    AlRamadan, Abdullah cc
    Houidi, Moez Ben
    Sotton, Julien cc
    Bellenoue, Marc cc
    Johansson, Bengt cc
    Sarathy, Mani cc
    KAUST Department
    Chemical Engineering Program
    Clean Combustion Research Center
    Combustion and Pyrolysis Chemistry (CPC) Group
    Mechanical Engineering
    Mechanical Engineering Program
    Physical Science and Engineering (PSE) Division
    Date
    2020-07-28
    Online Publication Date
    2020-07-28
    Print Publication Date
    2020-07
    Embargo End Date
    2022-07-28
    Submitted Date
    2019-11-07
    Permanent link to this record
    http://hdl.handle.net/10754/664482
    
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    Abstract
    One approach to enhancing the thermal efficiency of combustion systems is to burn fuels at ultra-lean conditions (equivalence ratio below 0.5). It has been recently reported that the auto-ignition of some hydrocarbon fuels, under specific temperature, pressure, and mixture conditions, releases heat in three distinctive stages. The three auto-ignition stages can be divided as a first low-temperature auto-ignition stage with conventional low temperature, and a high-temperature stage separated into two sub-stages. This study presents ignition delay time measurements of n-heptane and methyl-cyclohexane (MCH) mixtures in a flat piston rapid compression machine (RCM) under ultra-lean conditions. It provides experimental evidence of three-stage auto-ignition. This phenomenon of delayed high-temperature heat release is seldom reported in the literature and this is the first time to be reported for these types of fuels. The experiments cover two binary n-heptane/MCH mixtures of 15/85 and 70/30 by volume, pressures of 11 bar and 16 bar, temperature range of 700 to 900 K, and equivalence ratio of 0.4. The RCM optical access was utilized for high-speed chemiluminescence imaging. Detailed chemical kinetic simulations in a homogenous batch reactor with variable volume were conducted to further interrogate the three-stage auto-ignition phenomenon. Chemiluminescence shows that three-stage auto-ignition occurs in the adiabatically compressed end-gas, which indicates that this phenomenon is chemically-driven and is not induced by a thermal stratification in the RCM experiments. The model predicts the features of three-stage auto-ignition, which were experimentally observed at temperatures approximately below 750 K. As expected, significant discrepancies are observed in the ignition delays of experiment and simulation in the negative temperature coefficient (NTC) region. The simulation of the n-heptane/MCH 70/30 mixture shows better agreement with experiments in the Positive Temperature Coefficient (PTC) region compared to the 15/85 mixture.
    Citation
    AlRamadan, A. S., Houidi, M. B., Sotton, J., Bellenoue, M., Johansson, B., & Sarathy, S. M. (2020). Three-stage auto-ignition of n-heptane and methyl-cyclohexane mixtures at lean conditions in a flat piston rapid compression machine. Proceedings of the Combustion Institute. doi:10.1016/j.proci.2020.05.038
    Sponsors
    The experimental work was supported by the French research agency (Association Nationale de la Recherche et de la Technologie ANRT), Renault S.A., and PPRIME Institute during the Ph.D. thesis of M. Ben Houidi (CIFRE N:384/2010). The simulation work was supported by King Abdullah University of Science and Technology (KAUST) Office of Sponsored Research (OSR) with funds given to the Clean Combustion Research Center. We acknowledge funding from the KAUST Clean Fuels Consortium and its member companies.
    Publisher
    Elsevier BV
    Journal
    Proceedings of the Combustion Institute
    DOI
    10.1016/j.proci.2020.05.038
    Additional Links
    https://linkinghub.elsevier.com/retrieve/pii/S1540748920300869
    ae974a485f413a2113503eed53cd6c53
    10.1016/j.proci.2020.05.038
    Scopus Count
    Collections
    Articles; Physical Science and Engineering (PSE) Division; Chemical Engineering Program; Mechanical Engineering Program; Clean Combustion Research Center

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