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Numerical Simulation of Combustion and Extinction of a Solid Cylinder in Low-Speed Cross FlowThe combustion and extinction behavior of a diffusion flame around a solid fuel cylinder (PMMA) in low-speed forced flow in zero gravity was studied numerically using a quasi-steady gas phase model. This model includes two-dimensional continuity, full Navier Stokes' momentum, energy, and species equations with a one-step overall chemical reaction and second-order finite-rate Arrhenius kinetics. Surface radiation and Arrhenius pyrolysis kinetics are included on the solid fuel surface description and a parameter Phi, representing the percentage of gas-phase conductive heat flux going into the solid, is introduced into the interfacial energy balance boundary condition to complete the description for the quasi-steady gas-phase system. The model was solved numerically using a body-fitted coordinate transformation and the SIMPLE algorithm. The effects of varying freestream velocity and Phi were studied. These parameters have a significant effect on the flame structure and extinction limits. Two flame modes were identified: envelope flame and wake flame. Two kinds of flammability limits were found: quenching at low-flow speeds due to radiative loss and blow-off at high flow speeds due to insufficient gas residence time. A flammability map was constructed showing the existence of maximum Phi above which the solid is not flammable at any freestream velocity.
Document ID
20000030673
Acquisition Source
Legacy CDMS
Document Type
Preprint (Draft being sent to journal)
Authors
Tien, J. S.
(Case Western Reserve Univ. Cleveland, OH United States)
Yang, Chin Tien
(Case Western Reserve Univ. Cleveland, OH United States)
Date Acquired
September 7, 2013
Publication Date
November 1, 1998
Publication Information
Publication: Journal of Heat Transfer
Volume: 120
Subject Category
Inorganic, Organic And Physical Chemistry
Funding Number(s)
CONTRACT_GRANT: NAG3-1046
Distribution Limits
Public
Copyright
Other

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