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Impact of Turbulence Intensity and Equivalence Ratio on the Burning Rate of Premixed Methane–Air Flames

Author

Listed:
  • Gordon Fru

    (Laboratory of Fluid Dynamics and Technical Flows, Institute of Fluid Dynamics and Thermodynamics, University of Magdeburg, Universitätsplatz 2, D-39106 Magdeburg, Germany)

  • Dominique Thévenin

    (Laboratory of Fluid Dynamics and Technical Flows, Institute of Fluid Dynamics and Thermodynamics, University of Magdeburg, Universitätsplatz 2, D-39106 Magdeburg, Germany)

  • Gábor Janiga

    (Laboratory of Fluid Dynamics and Technical Flows, Institute of Fluid Dynamics and Thermodynamics, University of Magdeburg, Universitätsplatz 2, D-39106 Magdeburg, Germany)

Abstract

Direct Numerical Simulations (DNS) have been conducted to study the response of initially laminar spherical premixed methane–air flame kernels to successively higher turbulence intensities at five different equivalence ratios. The numerical experiments include a 16-species/25-step skeletal mechanism for methane oxidation and a multicomponent molecular transport model. Highly turbulent conditions (with integral Reynolds numbers up to 4513) have been accessed. The effect of turbulence on the physical properties of the flame, in particular its consumption speed S c , which is an interesting measure of the turbulent flame speed S T has been investigated. Local quenching events are increasingly observed for highly turbulent conditions, particularly for lean mixtures. The obtained results qualitatively confirm the expected trend regarding correlations between u ′/ S L and the consumption speed: S c first increases, roughly linearly, with u ′/ S L (low turbulence zone), then levels off (bending zone) before decreasing again (quenching limit) for too intense turbulence. For a fixed value of u ′/ S L , S c / S L varies with the mixture equivalence ratio, showing that additional parameters should probably enter phenomenological expressions relating these two quantities.

Suggested Citation

  • Gordon Fru & Dominique Thévenin & Gábor Janiga, 2011. "Impact of Turbulence Intensity and Equivalence Ratio on the Burning Rate of Premixed Methane–Air Flames," Energies, MDPI, vol. 4(6), pages 1-16, May.
  • Handle: RePEc:gam:jeners:v:4:y:2011:i:6:p:878-893:d:12538
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    Citations

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    Cited by:

    1. Yingzu Liu & Zhihua Wang & Liang Li & Kaidi Wan & Kefa Cen, 2018. "Reaction Mechanism Reduction for Ozone-Enhanced CH 4 /Air Combustion by a Combination of Directed Relation Graph with Error Propagation, Sensitivity Analysis and Quasi-Steady State Assumption," Energies, MDPI, vol. 11(6), pages 1-12, June.
    2. Nazzal, Ibrahim Thamer & Ertunç, Özgür, 2019. "Influence of turbulent flow characteristics on flame behaviour in diffuser combustors," Energy, Elsevier, vol. 170(C), pages 652-667.

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