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    The effect of preheating temperature on PAH/soot formation in methane/air co-flow flames at elevated pressure

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    Name:
    Revised Manuscript-Oct-18_2021.pdf
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    2.422Mb
    Format:
    PDF
    Description:
    Accepted Manuscript
    Embargo End Date:
    2023-11-01
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    Type
    Article
    Authors
    Liu, Peng
    Guo, Jun Jun
    Quadarella, Erica cc
    Bennett, Anthony
    Gubba, Sreenivasa Rao
    Saxena, Saumitra
    Chatakonda, Obulesu
    Kloosterman, Jeffrey W.
    He, Xiaoyi
    Im, Hong G. cc
    Roberts, William L. cc
    KAUST Department
    Chemical Engineering Program
    Clean Combustion Research Center
    Computational Reacting Flow Laboratory (CRFL)
    Mechanical Engineering Program
    Physical Science and Engineering (PSE) Division
    high-pressure combustion (HPC) Research Group
    Date
    2021-11-24
    Online Publication Date
    2021-11
    Print Publication Date
    2022-04
    Embargo End Date
    2023-11-01
    Permanent link to this record
    http://hdl.handle.net/10754/673908
    
    Metadata
    Show full item record
    Abstract
    Preheating technology is widely used to improve the emission or efficiency of combustors, such as diesel engines and gasifiers operating at high pressures. Soot is an unwanted by-product, but its formation is unavoidable in high-pressure diffusion combustion. In this study, the effect of preheating temperature on polycyclic aromatic hydrocarbon (PAH) and soot formation in methane/air co-flow flames was comprehensively investigated in the pressure range of 1–5 bar. The temperature of inlet gas ranges from 295 K to 573 K. The soot, PAH, and OH* concentrations were obtained using planar laser-induced incandescence, planar laser induced fluorescence, and chemiluminescence techniques, respectively. The experimental results reveal that soot and PAH formation is greatly enhanced at higher pressure or with a higher preheating temperature of inlet gas. At a fixed preheating temperature, the peak/integrated soot volume fraction follows a power law with pressure. As pressure increases, the enhancement of soot formation by preheating temperature is suppressed. As the preheating temperature is raised from 295 K to 573 K, the integrated soot volume fraction is increased by 33.7 times at 1.5 bar, but the difference narrows to 2.3 times at 5 bar. OH* signal increases with preheating temperature at 1 bar, but the difference becomes indistinguishable at higher pressure. Further, the experimental results were utilized to evaluate the soot modeling, PAH and soot formation under experimental conditions are examined using four different kinetic mechanisms. While the soot trend along different pressure and preheating temperature is qualitatively captured, the quantitative predictions vary depending on the mechanisms. Specifically, KAUST and Narayanaswamy-Blanquart-Pitsch (NBP) mechanisms overpredict the soot volume fraction while DRL and Appel-Bockhorn-Frenklach (ABF) mechanisms underpredicts the soot volume fraction. In terms of the PAH spatial distribution, only DRL and ABF mechanisms show the ability to capture the experimental observations, that is the peak PAH appears in the flame centerline. The reaction pathway analysis indicates both fuel-pyrolysis chemistry and PAH growth chemistry should be accounted for the discrepancy.
    Citation
    Liu, P., Guo, J., Quadarella, E., Bennett, A., Gubba, S. R., Saxena, S., … Roberts, W. L. (2021). The effect of preheating temperature on PAH/soot formation in methane/air co-flow flames at elevated pressure. Fuel, 122656. doi:10.1016/j.fuel.2021.122656
    Sponsors
    This work was supported by Air Products through its projects of RGC/3/4490-01-01 and RGC/3/4143-01-01. The computational resources were provided by the KAUST Supercomputing Laboratory (KSL).
    Publisher
    Elsevier BV
    Journal
    Fuel
    DOI
    10.1016/j.fuel.2021.122656
    Additional Links
    https://linkinghub.elsevier.com/retrieve/pii/S0016236121025229
    ae974a485f413a2113503eed53cd6c53
    10.1016/j.fuel.2021.122656
    Scopus Count
    Collections
    Articles; Physical Science and Engineering (PSE) Division; Chemical Engineering Program; Mechanical Engineering Program; Clean Combustion Research Center

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