FireDOC Search

displaying 311 - 320 results in total 391

  • Jones, W. P.; Navarro-Martinez, S.
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    Large Eddy Simulation of Autoignition With a Subgrid Probability Density Function Method.
    Imperial College, London, England
    Combustion and Flame, Vol. 150, No. 3, 170-187, August 2007

  • Weng, W. G.; Yang, R.; Yuan, H. Y.
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    New Approach for Predicting Flame Spread Along Combustible Solid based on Cellular Automaton.
    Tsinghua University, Beijing, 100084, PR China
    Journal of Fire Sciences, Vol. 25, No. 5, 383-401, September 2007

  • Pauner, M. A.; Bygbjerg, H.
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    Spontaneous Ignition in Storage and Production Lines: Investigation on Wood Pellets and Protein Powders.
    Danish Institute of Fire and Security Technology, Jernholmen 12, DK-2650 Hvidovre, Denmark
    Fire and Materials, Vol. 31, No. 8, 477-494, December 2007

  • Mittal, G.; Sung, C. J.
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    Autoignition of Toluene and Benzene at Elevated Pressures in a Rapid Compression Machine.
    Case Western Reserve Univ., Cleveland, OH
    Combustion and Flame, Vol. 150, No. 4, 355-368, September 2007

  • Kosarev, I. N.; Starikovskaia, S. M.; Starikovskii, A. Y.
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    Kinetics of Autoignition of Rich N2O-H2-O2-Ar Mixtures at High Temperatures.
    Moscow Institute of Physics and Technology, Moscow Region 141700, Russia
    Combustion and Flame, Vol. 150, No. 1/2, 61-73, October 2007

  • Cao, S.; Echekki, T.
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    Autoignition in Nonhomogeneous Mixtures: Conditional Statistics and Implications for Modeling.
    North Carolina State Univ., Raleigh
    Combustion and Flame, Vol. 150, No. 1/2, 120-141, October 2007

  • Gordon, R. L.; Masri, A. R.; Pope, S. B.; Goldin, G. M.
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    Transport Budgets in Turbulent Lifted Flames of Methane Autoigniting in a Vitiated Co-Flow.
    Sydney Univ., NSW 2006, Australia; Cornell Univ., Ithaca, NY; Fluent Inc., Lebanon, NH
    Combustion and Flame, Vol. 151, No. 3, 495-511, November 2007

  • Huang, J.; Bushe, W. K.
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    Simulation of Transient Turbulent Methane Jet Ignition and Combustion Under Engine-RelevantConditions Using ConditionalSource-Term Estimation With Detailed Chemistry.
    British Columbia Univ., Vancouver, BC, Canada
    Combustion Theory and Modelling, Vol. 11, No. 6, 977-1008, December 2007

  • Michel, J. B.; Colin, O.; Veynante, D.
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    Modeling Ignition and Chemical Structure of Partially Premixed Turbulent Flames Using Tabulated Chemistry.
    IFP, 1 et 4 rue Bois Préau, F92852, Rueil Malmaison, France; EM2C, UPR 288 CNRS, Ecole Centrale Paris, F92295, Chatenay Malabry, France
    Combustion and Flame, Vol. 152, No. 1/2, 80-99, January 2008

  • Fikri, M.; Herzler, J.; Starke, R.; Schulz, C.; Roth, P.; Kalghatgi, G. T.
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    Autoignition of Gasoline Surrogates Mixtures at Intermediate Temperatures and High Pressures. Brief Communication.
    IVG, Universität Duisburg-Essen, D-47048 Duisburg, Germany; Shell Global Solutions U.K., P.O. Box 1, Chester CH1 3SH, UK
    Combustion and Flame, Vol. 152, No. 1/2, 276-281, January 2008