Korean Journal of Chemical Engineering, Vol.30, No.3, 613-619, March, 2013
A mathematical description of thermal decomposition and spontaneous ignition of wood slab under a truncated-cone heater
E-mail:
A mathematical model of thermal decomposition together with the flammability limit is proposed to describe the pyrolysis and spontaneous ignition of wood slab subjected to the radiation from a truncated-cone heater. The prominent physical and chemical phenomena were considered in the model, involving heat transfer in a solid, heat consumed by thermal decomposition reactions, the evaporation of moisture, re-radiation from pore surfaces inside a solid and so on. The numerical solution allows the prediction of in-depth temperature profiles, evolution of volatiles, variation of thermal conductivity, apparent mass loss (solid conversion) and ignition time. The different densities for wood species and effect of moisture content and grain orientation on thermal conductivity are also considered in the model, producing a good prediction of surface temperatures. This gives birth to the reasonable prediction on ignition time of wood by employing fixed surface temperature (400 ℃) as ignition criterion. However, the analysis of constituent
fractions for the species associated with the multi-components kinetic scheme should be included in the mathematical model to give a more precise prediction on the apparent mass loss of solid.
- Moghtaderi B, Fire and Materials., 30, 1 (2006)
- Moghtaderi B, Novozhilov V, Fletcher DF, Kent JH, J. Appl.Fire Sci., 1996/97, 6, 91
- Janssens ML, Fire and Materials., 28, 199 (2004)
- Di Blasi C, Progress in Energy and Combustion Sciences., 34, 47 (2008)
- Babrauskas V, Ignition handbook: Published by Fire Science Publisher (2003)
- Shen DK, Fang MX, Luo ZY, Cen KF, Fire Safety J., 42, 210 (2007)
- Shen DK, Gu S, Luo KH, Bridgwater AV, Energy Fuels, 23(1), 1081 (2009)
- Shen DK, Gu S, Luo KH, Bridgwater AV, Fang MX, Fuel, 88(6), 1024 (2009)
- Kanury AM, Blackshear PL, Combustion Sci. Technol., 2, 5 (1970)
- Davidsson KO, Pettersson JBC, Fuel, 81(3), 263 (2002)
- Bilbao R, Mastral JF, Lana JA, Ceamanos J, Aldea ME, Betran M, J. Anal. Appl. Pyrol., 62, 63 (2002)
- Xiao R, Shen DK, Zhang HY, Fang MX, The thermal decomposition and spontaneous ignition of wood slabs under a truncated-cone heater: Experimental observation in The 34th International Symposium on Combustion, Warsaw, Poland (2012)
- Alves SS, Figueiredo JL, Chem. Eng. Sci., 44, 2861 (1989)
- Bryden KM, Ragland KW, Rutland CJ, Biomass Bioenerg., 22(1), 41 (2002)
- Wood Handbook: US Forest Products Laboratory, USDA, Agric.Handbook (1999)
- Fredlund B, A model for heat and mass transfer in timber structures during fire- A theoretical, numerical and experimental study, Institute of Science and Technology, Department of Fire Safety Engineering, Lund University, Sweden (1988)
- Bryden KM, Hagge MJ, Fuel, 82(13), 1633 (2003)
- Bryden KM, Computational modeling of wood combustion, University of Wisconsin-Madison (1998)
- Borman GL, Ragland KW, Combustion engineering, New York, McGraw-Hill (1998)
- Mikkola E, Wichman IS, Fire and Materials., 14, 87 (1989)
- Wesson HR, Welker JR, Sliepcevich CM, Combust. Fame., 16, 303 (1971)
- Thurner F, Mann U, Industrial and Engineering Chemistry Process Design and Development, 20, 482 (1981)
- Di Blasi C, Combustion Sci. Technol., 90, 1121 (1993)
- Chan WR, Kelbon M, Krieger BB, Fuel., 64, 1505 (1985)