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Rudolph, K., Richter, E., Hass, R. and Quast, U., 1986. Principles For Calculation Of Load-bearing And Deformation Behaviour Of Composite Structural Elements Under Fire Action. Fire Safety Science 1: 301-310. doi:10.3801/IAFSS.FSS.1-301
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Tsuchiya, Y., 1986. Tgaiapciimsims, A New Technique For The Study Of Pyrolysis And Combustion Products. Fire Safety Science 1: 411-420. doi:10.3801/IAFSS.FSS.1-411
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Keski-Rahkonen, O., 1989. Temperature Calculation Of Bare And Insulated Steel Structures Exposed To Standard Iso 834 Fire Test. Fire Safety Science 2: 697-705. doi:10.3801/IAFSS.FSS.2-697
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Harada, K. and Terai, T., 1989. Numerical Simulation Of A Fire Resistance Test Of A Concrete Slab. Fire Safety Science 2: 707-717. doi:10.3801/IAFSS.FSS.2-707
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Migita, K., Okabe, T., Furumura, F., Ave, T. and Kim, W.J., 1989. Elasto-plastic Creep Thermal Deformation Behavior Of Multi-story Steel Frames Designed By The Plastic Method. Fire Safety Science 2: 739-748. doi:10.3801/IAFSS.FSS.2-739
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Takahashi, W., Sugawa, O., Yasuda, H. and Lnoue, T., 1991. Fire Retardance Mechanism Of Magnesium Hydroxide For Ethylene-ethylacrylate Copolymers. Fire Safety Science 3: 635-643. doi:10.3801/IAFSS.FSS.3-635
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Schneider, U., Morita, T. and Franssen, J.M., 1994. A Concrete Model Considering The Load History Applied To Centrally Loaded Columns Under Fire Attack. Fire Safety Science 4: 1101-1112. doi:10.3801/IAFSS.FSS.4-1101
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Chandrasekaran, V. and Mulcahy, N.L., 1997. Analysis Of Time Of Collapse Of Steel Columns Exposed To Fire. Fire Safety Science 5: 1141-1152. doi:10.3801/IAFSS.FSS.5-1141
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Fateh T., Richard F. and Rogaume T., 2014. Modeling of the pyrolysis of plywood exposed to heat fluxes under cone calorimeter. Fire Safety Science 11: 208-221. 10.3801/IAFSS.FSS.11-208
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Pau D., Fleischmann, C.M., Spearpoint, M. and Li, K.Y., 2014. Sensitivity of Heat of Reaction for Polyurethane Foams. Fire Safety Science 11: 179-192. 10.3801/IAFSS.FSS.11-179
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Suzanne M., Ramani A., Ukleja, S., McKee M., Zhang, J., Delichatsios, M.A. and Bakirtzis, D., 2014. Experimental and Numerical Study of Thermal Stability and Fire Performance of Brominated and Halogen-free Flame Retardants in Glass-fibre Reinforced Poly(butylene terephthalate). Fire Safety Science 11: 832-845. 10.3801/IAFSS.FSS.11-832
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Wang L., Chenlu B., Wei Y., Hu, Y., Song L., Yuen R. and Gui Z., 2014. Influence of Iron Hydroxyl Phosphate Particles on the Thermal Stability and Combustible Properties of Polymethyl methacrylate. Fire Safety Science 11: 860-873. 10.3801/IAFSS.FSS.11-860
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Shan X., Lo, S.M., Tai Q., Gui Z., Hu, Y. and Jiang S., 2014. Effect of Nickel-containing Ligand on Thermal Stability and Combustible Property of Poly(lactic acid). Fire Safety Science 11: 874-882. 10.3801/IAFSS.FSS.11-874
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