FireDOC Search

displaying 1201 - 1210 results in total 1413

  • Su, L. K.; Sun, O. L.; Mungal, M. G.
    view article (1.0)

    Experimental Investigation of Stabilization Mechanisms in Turbulent, Lifted Jet Diffusion Flames.
    Johns Hopkins Univ., Baltimore, MD; Standford Univ., CA
    Combustion and Flame, Vol. 144, No. 3, 494-512, February 2006

  • Petrova, M. V.; Williams, F. A.
    view article (1.0)

    Small Detailed Chemical-Kinetic Mechanism for Hydrocarbon Combustion.
    University of California, San Diego, La Jolla
    Combustion and Flame, Vol. 144, No. 3, 526-544, February 2006

  • Liu, F.; Guo, H.; Smallwood, G. J.
    view article (1.0)

    Evaluation of the Laminar Diffusion Flamelet Model in the Calculation of an Axisymmetric Coflow Laminar Ethylene-Air Diffusion Flame.
    National Research Council of Canada, Ottawa, Ontario
    Combustion and Flame, Vol. 144, No. 3, 605-618, February 2006

  • Kim, J.; Kim, J. S.
    view article (1.0)

    Modeling of Lifted Turbulent Diffusion Flames in a Channel Mixing Layer by the Flame Hole Dynamics.
    Seoul National Univ., Korea; Korea Institute of Science and Technology, Seoul
    Combustion Theory and Modelling, Vol. 10, No. 1, 21-37, February 2006

  • Umemura, A.; Nagase, Y.; Ando, T.
    view article (1.0)

    Marangoni Effect on a Droplet Approached by a Diffusion Flame.
    Nagoya Univ., Japan; Kawasaki Heavy Industry Ltd., Kagamihara, 504-8710, Japan
    Combustion Theory and Modelling, Vol. 10, No. 1, 57-84, February 2006

  • Tian, K.; Thomson, K. A.; Liu, F.; Snelling, D. R.; Smallwood, G. J.; Wang, D.
    view article (1.0)

    Determination of the Morphology of Soot Aggregates Using the Relative Optical Density Method for the Analysis of TEM Images.
    National Research Council of Canada, Ottawa, Ontario
    Combustion and Flame, Vol. 144, No. 4, 782-791, March 2006

  • Lee, U. D.; Shin, H. D.; Oh, K. C.; Lee, K. H.; Lee, E. J.
    view article (1.0)

    Extinction Limit Extension of Unsteady Counterflow Diffusion Flames Affected by Velocity Change.
    Korea Advanced Institute of Science and Technology, Daejon, 305-701, Republic of Korea; Korea Automotive Technology Institute, Chungnam, 330-912, Republic of Korea; Hyundai Motor Co., Gyunggi-Do, Republic of Korea; Korea Institute of Construction Technology, Gyeonggi, Republic of Korea
    Combustion and Flame, Vol. 144, No. 4, 792-808, March 2006

  • Biswas, K.; Gore, J. P.
    view article (1.0)

    Fire Dynamics Simulations of Buoyant Diffusion Flames Stabilized on a Slot Burner. Brief Communication.
    Purdue Univ., West Lafayette, IN
    Combustion and Flame, Vol. 144, No. 4, 850-853, March 2006

  • Mitchell, J. B. A.; LeGarrec, J. L.; Florescu-Mitchell, A. I.; diStasio, S.
    view article (1.0)

    Small-Angle Neutron Scattering Study of Soot Particles in an Ethylene-Air Diffusion Flame.
    Université de Rennes I, 35042 Rennes cedex, France; National Research Council of Italy, Via Marconi 8, 80125 Naples, Italy
    Combustion and Flame, Vol. 145, No. 1/2, 80-87, April 2006

  • Mustata, R.; Valino, L.; Jimenez, C.; Jones, W. P.; Bondi, S.
    view article (1.0)

    Probability Density Function Eulerian Monte Carlo Field Method for Large Eddy Simulations: Application to a Turbulent Piloted Methane/Air Diffusion Flame (Sandia D).
    LITEC Consejo Superior de Investigaciones Científicas, Zaragoza, Spain; Imperial College London, London, England
    Combustion and Flame, Vol. 145, No. 1/2, 88-104, April 2006