References
- Phan, L. T., "Fire Performance of High-Strength Concrete," A Report of the State-of-the-Art. National Institute of Standards and Technology, Gaithersburg, MD, 1996, 105 pp
- Diederichs, U., Jumppanen, U. M., and Schneider, U., "High Temperature Properties and Spalling Behaviour of HSC," Proceedings of 4th Weimar Workshop on HPC, HAB Weimar, Germany, 1995, pp. 219-235
- Kodur, V. R. and Sultan, M. A., "Structural Behaviour of High Strength Concrete Columns Exposed to Fire," Proceedings: International Symposium on High Performance and Reactive Powder Concrete, Sherbrooke, Quebec, Vol. 4, 1998, pp. 217-232
- Danielsen, Ulf., "Marine Concrete Structures Exposed to Hydrocarbon Fires," Report, SINTEF - The Norwegian Fire Research Institute, 1997, pp. 56-76
- Bilodeau, A., Kodur, V. R., and Hoff, G. C., "Optimization of the Type and Amount of Polypropylene Fibres for Preventing the Spalling of Lightweight Concrete Subjected to Hydrocarbon Fire," Cement and Concrete Composites Journal, Vol. 26, No. 2, 2004, pp. 163-175 https://doi.org/10.1016/S0958-9465(03)00085-4
- Hertz, K. D., "Limits of Spalling of Fire-Exposed Concrete," Fire Safety Journal, Vol. 38, 2003, pp. 103-116 https://doi.org/10.1016/S0379-7112(02)00051-6
- Kodur, V. K. R., "Spalling in High Strength Concrete Exposed to Fire-Concerns, Causes, Critical Parameters and Cures," ASCE Structures Congress Proceedings, Philadelphia, U.S.A., 2000, pp. 1-8
- Fire Prevention, "Channel Tunnel Fire Protection Measures Questioned after Fire on HGV Wagon, Fire Prevention, 296, 1997
- Kodur, V. R., "Guidelines for Fire Resistance Design of High Strength Concrete Columns," Journal of Fire Protection Engineering, Vol. 15, No. 2, 2005, pp. 93-106 https://doi.org/10.1177/1042391505047740
- Kodur, V. K. R. and Phan, L., "Critical Factors Governing the Fire Performance of High Strength Concrete Systems," Fire Safety Journal, Vol. 42, 2007, pp. 482-488 https://doi.org/10.1016/j.firesaf.2006.10.006
- Dwaikat, M. B. and Kodur, V. K., "Hydrothermal Model for Predicting Fire Induced Spalling in Concrete Structural Systems", Fire Safety Journal, in Press, 2008
- Eurocode 2, "prEN1992-1-2: Design of Concrete Structures," Part 1-2: General Rules - Structural Fire Design, Comite Europeen de Normalisation (CEN), Brussels, 2004
- ACI Committee 216.1, "Standard Method for Determining Fire Resistance of Concrete and Masonry Construction Assemblies," American Concrete Institute, Detroit; 2007
- Dwaikat, M. B. and Kodur, V. K. R., "A Numerical Approach for Modeling the Fire Induced Restraint Effects in Reinforced Concrete Beams," Fire Safety Journal, Vol. 43, No. 4, 2008, pp. 291-307 https://doi.org/10.1016/j.firesaf.2007.08.003
- Harmathy, T. Z., "A comprehensive Creep Model," Journal of Basic Engineering, Vol. 89, No. 2,1967, pp. 496-502 https://doi.org/10.1115/1.3609648
- Harmathy, T. Z., "Fire Safety Design and Concrete," Concrete Design and Construction Series, Longman Scientific and Technical, UK, 1993
- Anderberg, Y. and Thelandersson, S., "Stress and Deformation Characteristics of Concrete at High Temperatures, 2. Experimental Investigation and Material Behaviour Model," Lund Institute of Technology, Sweden, 1976
- Kalifa, P., Chene, G., and Galle, C., "High-Temperature Behavior of HPC with Polypropylene Fibers: From Spalling to Microstructure," Cement and Concrete Research, Vol. 31, 2001, pp. 1487-1499 https://doi.org/10.1016/S0008-8846(01)00596-8
- ASTM Test Method E119-08a, "Standard Methods of Fire Test of Building Construction and Materials," American Society for Testing and Materials, West Conshohocken, PA, 2008
- Baroghel-Bouny, V., Mainguy, M., Lassabatere, T., and Coussy, O., "Chatacterization and Identification of Equilibrium and Transfer Moisture Properties for Ordinary and High-Performance Cementations Materials," Cement Concrete Research, Vol. 29, 1999, pp. 1225-1238 https://doi.org/10.1016/S0008-8846(99)00102-7
- ASTM Test Method E1529, "Standard Test Methods for Determining Effects of Large Hydrocarbon Pool Fires on Structural Members and Assemblies," American Society for Testing and Materials, West Conshohocken, PA, 1993
- Kodur, V. R. and Dwaikat, M. B., "Performance-Based Fire Safety Design of Reinforced Concrete Beams," Journal of Fire Protection Engineering, Vol. 17, No. 4, 2007, pp. 293-320 https://doi.org/10.1177/1042391507077198
- ACI 318-2008, "Building Code Requirements for Reinforced Concrete," ACI 318-02 and Commentary, American Concrete Institute, Detroit, MI, 2008
- ASCE 7-05, "Minimum Design Loads for Buildings and Other Structures," American Society of Civil Engineers, Reston, VA, 2005
- Lie, T. T. (Editor), "Structural Fire Protection," ASCE Manuals and Reports of Engineering Practice, No 78, American Society of Civil Engineers, New York, 1992
- Kodur, V. K. R., Wang, T., and Cheng, F., "Predicting the Fire Resistance Behavior of High Strength Concrete Columns," Cement & Concrete Composites, Elsevier Ltd., Vol. 26, No. 2, 2004, pp. 141-153 https://doi.org/10.1016/S0958-9465(03)00089-1
- Neves, I. C., Rodrigues, J. C., and Loureiro, A. P., "Mechanical Properties of Reinforcing and Prestressing Steels after Heating," Journal of Materials in Civil Engineering, Vol. 8, No. 4, 1996, pp. 189-194 https://doi.org/10.1061/(ASCE)0899-1561(1996)8:4(189)
- Bazant, Z. P., and Thonguthai, W., "Pore pressure and Drying of Concrete at High Temperature," Journal of the Engineering Mechanics Division, ASCE, Vol. 104, No. EM5, 1978, pp. 1059-1079
- Bazant, Z.P. and Thonguthai, W., "Pore Pressure in Heated Concrete Walls: Theoretical Prediction," Magazine of Concrete Research, Vol. 31, No. 107, 1979, pp. 67-76 https://doi.org/10.1680/macr.1979.31.107.67
- Bazant, Z. P., Chern, J. C., and Thonguthai, W., "Finite Element Program for Mositure and Heat Transfer in Heated Concrete," Nuclear Engineering and Design, Vol. 68, 1981, pp. 61-70
- Gawin, D., Majorana, C. E., and Schrefler, B. A., "Numerical Analysis of Hygro-thermic Behaviour and Damage of Concrete at High Temperature," Magazine of Cohesive Frictional Material, Vol. 4, 1999, pp. 37-74 https://doi.org/10.1002/(SICI)1099-1484(199901)4:1<37::AID-CFM58>3.0.CO;2-S
- Eurocode 1, "ENV 1991-2-2: Basis of Design and Design Actions on Structures," Part 2-2: Actions on Structures Exposed to Fire, European Committee for Standardization, 1994
- Feasey, R. and Buchanan, A. H., "Post Flash-over Fires for Structural Design," Fire Safety Journal, Vol 37, No 1, 2002, pp. 83-105 https://doi.org/10.1016/S0379-7112(01)00026-1
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