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Numerical Study on Extinction Behavior of Laminar Micro-Diffusion Flames.
Hokkaido Univ., Kita-ku, Sapporo 060-8628, Japan; Nagoya Univ., Nagoya 464-8603, Japan; Kentucky Univ., Lexington
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Stewart, D. S.; Yoo, S.; Wescott, B. L.
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High-Order Numerical Simulation and Modeling of the Interaction of Energetic and Inert Materials.
University of Illinois, Urbana-Champaign
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April 2007
Afacan, O.; Gogebakan, Y.; Selcuk, N.
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Modeling of NOx Emissions From Fluidized Bed Combustion of High Volatile Lignites.
Middle East Technical Univ., Ankara, Turkey
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January 2007
Kee, R. J.; Colclasure, A. M.; Zhu, H.; Zhang, Y.
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Modeling Tangential Injection Into Ideal Tubular Flames.
Colorado School of Mines, Golden, CO; Tokyo Denki Univ., Tokyo, Japan
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January 2008
Emery, M.
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Ten Command-Ments IX of Intelligent and Safe Fireground Operations. (Command-ment IX: Thou Shall Address Three Strategic Priorities by Supervising NINE Primary Phase Tactical Objectives.
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Black, W. Z.
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Smoke Movement in Elevator Shafts During a High-Rise Structural Fire.
Georgia Institute of Technology, Atlanta
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Special Hazards Fire Investigation. Case Study.
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Li, Y. F.; Chow, W. K.
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Study of Water Droplet Behavior in Hot Air Layer in Fire Extinguishment.
Beijing University of Technology, Beijing, 100022, China; Hong Kong Polytechnic Univ., Hong Kong, China
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McGrattan, K. B.; Miles, S.
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Modeling Enclosure Fires Using Computational Fluid Dynamics (CFD).
National Institute of Standards and Technology, Gaithersburg, MD; International Fire Consultants Ltd., UK
NFPA HFPE08,
SFPE Handbook of Fire Protection Engineering. 4th Edition. Section 3. Chapter 8,
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Ern, A.
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Vorticity-Velocity Modeling of Chemically Reacting Flows.
Yale Univ., New Haven, CT
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