Ciencias,UNAM

ANALYSIS OF THE THERMAL-DIFFUSION EFFECTS ON THE IGNITION OF HYDROGEN-AIR MIXTURES IN THE BOUNDARY-LAYER OF A HOT FLAT-PLATE

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dc.contributor.author GarcíaYBARRA, PL
dc.contributor.author Treviño, C
dc.date.accessioned 2011-01-22T10:28:35Z
dc.date.available 2011-01-22T10:28:35Z
dc.date.issued 1994
dc.identifier.issn 0010-2180
dc.identifier.uri http://hdl.handle.net/11154/3089
dc.description.abstract In this article the steady-state process leading to ignition of a combustible mixture of hydrogen, oxygen, and nitrogen by a hot flat plate in a boundary layer flow is studied, including the effect of thermal diffusion. For sufficiently large values of the plate temperature, the ignition event corresponds to a typical chain-branching explosion with negligible heat release, in a first approximation. In the framework of the reduced kinetic mechanism appropriate for this regime, the boundary layer equations are solved by using the fact that the chain branching reaction H + O2 --> OH + O has a relatively large activation energy. Assuming a three-layer structure, the governing equations reduce to a single integrodifferential equation for the concentration of atomic hydrogen. Close to the plate leading edge, the concentration of atomic hydrogen around the plate surface is higher when thermal diffusion is included, but, later on, this effect enhances the evacuation of atomic hydrogen by the external convective/diffusive layer. Thus, in spite of the initial enrichment in molecular hydrogen by thermal diffusion, the final ignition distance is shown to be enlarged by a factor of about 2, under usual conditions. On the other hand, for low plate temperature ignition, thermal diffusion produces the expected reduction in the ignition distance. en_US
dc.language.iso en en_US
dc.title ANALYSIS OF THE THERMAL-DIFFUSION EFFECTS ON THE IGNITION OF HYDROGEN-AIR MIXTURES IN THE BOUNDARY-LAYER OF A HOT FLAT-PLATE en_US
dc.type Article en_US
dc.identifier.idprometeo 3265
dc.source.novolpages 96(3):293-303
dc.subject.wos Thermodynamics
dc.subject.wos Energy & Fuels
dc.subject.wos Engineering, Multidisciplinary
dc.subject.wos Engineering, Chemical
dc.description.index WoS: SCI, SSCI o AHCI
dc.relation.journal Combustion and Flame

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