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displaying 3771 - 3780 results in total 4589

  • Bruno, A.; deLisio, C.; Minutolo, P.; D'Alessio, A.
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    Evidence of Fluorescent Carbon Nanoparticles Produced in Premixed Flames by Time-Resolved Fluorescence Polarization Anisotropy.
    aCentro di Ricerca e Sviluppo "Coherentia," Napoli, Italy; Istituto di Ricerche sulla Combustione, CNR, Napoli, Italy; Università di Napoli "Federico II," Napoli, Italy
    Combustion and Flame, Vol. 151, No. 3, 472-481, November 2007

  • Jimenez, S.; Ballester, J.
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    Study of the Evolution of Particle Size Distributions and Its Effects on the Oxidation of Pulverized Coal.
    LITEC-CSIC (Spanish Council for Scientific Research), María de Luna, 10, 50018, Zaragoza, Spain; Zaragoza Univ., María de Luna, 3, 50018, Zaragoza, Spain
    Combustion and Flame, Vol. 151, No. 3, 482-494, November 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

  • Odedra, A.; Malalasekera, W.
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    Eulerian Particle Flamelet Modeling of a Bluff-Body CH4/H3 Flame.
    Loughborough Univ., UK
    Combustion and Flame, Vol. 151, No. 3, 512-531, November 2007

  • Yamamoto, M.; Duan, S.; Senkan, S.
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    Effect of Strain Rate on Polycyclic Aromatic Hydrocarbon (PAH) Formation in Acetylene Diffusion Flames.
    California Univ., Los Angeles
    Combustion and Flame, Vol. 151, No. 3, 532-541, November 2007

  • Bykov, V.; Maas, U.
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    Extension of the ILDM Concept to Reaction - Diffusion Manifolds.
    Institute of Technical Thermodynamics, Karlsruhe University (TH), Karlsruhe, Germany
    Combustion Theory and Modelling, Vol. 11, No. 6, 839-862, December 2007

  • Choi, J. J.; Rusak, Z.; Kapila, A. K.
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    Numerical Simulation of Premixed Chemical Reactions With Swirl.
    Rensselaer Polytechnic Institute, Troy, NY
    Combustion Theory and Modelling, Vol. 11, No. 6, 863-887, December 2007

  • Tang, Q.; Zhao, W.; Bockelie, M.; Fox, R. O.
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    Multi-Environment Probability Density Function Method for Modeling Turbulent Combustion Using Realistic Chemical Kinetics.
    Reaction Engineering International, Salt Lake City, UT; Aerodynamics, United Technology Research Center, East Hartford, CT; Iowa State Univ., Ames
    Combustion Theory and Modelling, Vol. 11, No. 6, 889-907, December 2007

  • Dold, J. W.
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    Premixed Flames Modeled With Thermally Sensitive Intermediate Branching Kinetics.
    Manchester Univ., UK
    Combustion Theory and Modelling, Vol. 11, No. 6, 909-948, December 2007

  • Bermudez, A.; Ferrin, J. L.; Linan, A.
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    Modeling of the Generation of Volatiles, H2 and CO and Their Simultaneous Diffusion Controlled Oxidation in Pulverized Coal Furnaces.
    Universidad de Santiago de Compostela, Santiago de Compostela, Spain; Universidad Politécnica de Madrid, Madrid, Spain
    Combustion Theory and Modelling, Vol. 11, No. 6, 949-976, December 2007