The heat transfer rate to a thin solid combustible from an attached diffusion flame, spreading across the surface of the combustible in a quiescent, microgravity environment, was determined from measurements made in the drop tower facility at NASA-Lewis Research Center. With first-order Arrhenius pyrolysis kinetics, the solid-phase mass and energy equations along with the measured spread rate and surface temperature profiles were used to calculate the net heat flux to the surface. Results of the measurements are compared to numerical solution of the complete set of coupled differential equations that describes the temperature, species, and velocity fields in the gas and solid phases. The theory and experiment agree on the major qualitative features of the heat transfer. Some fundamental differences are attributed to the neglect of radiation in the theoretical model. A scale analysis is developed that makes use of the experimental data at different ambient conditions to support the notion that radiation is important and to investigate the effect of pressure on the spread rate.
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Heat Transfer to a Thin Solid Combustible in Flame Spreading at Microgravity
S. Bhattacharjee,
S. Bhattacharjee
Department of Mechanical Engineering, San Diego State University, San Diego, CA 92182-0191
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R. A. Altenkirch,
R. A. Altenkirch
Department of Mechanical and Nuclear Engineering, Mississippi State University, Mississippi State, MS 39762
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S. L. Olson,
S. L. Olson
NASA-Lewis Research Center, Cleveland, OH 44135
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R. G. Sotos
R. G. Sotos
NASA-Lewis Research Center, Cleveland, OH 44135
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S. Bhattacharjee
Department of Mechanical Engineering, San Diego State University, San Diego, CA 92182-0191
R. A. Altenkirch
Department of Mechanical and Nuclear Engineering, Mississippi State University, Mississippi State, MS 39762
S. L. Olson
NASA-Lewis Research Center, Cleveland, OH 44135
R. G. Sotos
NASA-Lewis Research Center, Cleveland, OH 44135
J. Heat Transfer. Aug 1991, 113(3): 670-676 (7 pages)
Published Online: August 1, 1991
Article history
Received:
March 14, 1990
Revised:
January 12, 1991
Online:
May 23, 2008
Citation
Bhattacharjee, S., Altenkirch, R. A., Olson, S. L., and Sotos, R. G. (August 1, 1991). "Heat Transfer to a Thin Solid Combustible in Flame Spreading at Microgravity." ASME. J. Heat Transfer. August 1991; 113(3): 670–676. https://doi.org/10.1115/1.2910617
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