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Observation of Liquid Phase Material in Methane-Air Laminar Diffusion Flame Soot Experiments Above 60 Atmospheres. Brief Communication.
Toronto Univ., Ontario, Canada M3H 5T6
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Combustion Modeling of Mono-Carbon Fuels Using the Rate-Controlled Constrained-Equilibrium Method.
Northeastern Univ., Boston, MA; Massachusetts Institute of Technology, Cambridge
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Heat Release and Flame Structure Measurements of Self-Excited Acoustically-Driven Premixed Methane Flames.
University of Connecticut, Storrs; Purdue Univ., West Lafayette, IN
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Coalescence/Dispersion Modeling of Turbulent Combustion in a Jet Stirred Reactor.
Washington Univ., Seattle
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Kalghatgi, G. T.
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Lift-Off Heights and Visible Lengths of Vertical Turbulent Jet Diffusion Flames in Still Air.
Shell Research Ltd., Chester, England
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Structure of Buoyant Methane and Propane Diffusion Flames.
Pennsylvania State Univ., University Park
National Bureau of Standards, Gaithersburg, MD,
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Combustion Institute, Philadelphia, PA,
Haifa, Israel,
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Effects of Oxygen on Soot Formation in Methane Diffusion Flames.
Princeton Univ., NJ; California Univ., La Jolla
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Air Force Office of Scientific Research, Washington, DC,
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Measurement of Slow Burning Velocity by Zero-Gravity Method.
Hosei Univ., Tokyo, Japan; Tokyo Univ., Japan
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1985
Knuth, E. L.; Ni, W. F.; Seeger, C.
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Molecular-Beam Sampling Study of Extinguishment of Methane-Air Flames by Dry Chemicals.
UCLA, Los Angeles, CA
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Papp, J. F.; Lazzara, C. P.; Biordi, J. C.
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Structure Study of a CF2Br2-Inhibited Methane Flame. Effect of CF2Br2 on Composition, Net Reaction Rates, and Rate Coefficients.
Bureau of Mines, Pittsburgh, PA
RI 8551,
1981,
36 p.