1999
DOI: 10.1002/(sici)1099-1018(199903/04)23:2<63::aid-fam671>3.0.co;2-3
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Modelling the combustion of solid-phase fuels in cone calorimeter experiments
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Cited by 35 publications
(16 citation statements)
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“…The heat transfer along the length and the width directions can be neglected. This simplification of the one‐dimensional heat transfer process has been widely employed in the modeling and simulation of the cone calorimeter test .…”
Section: Resultsmentioning
confidence: 99%
“…The heat transfer along the length and the width directions can be neglected. This simplification of the one‐dimensional heat transfer process has been widely employed in the modeling and simulation of the cone calorimeter test .…”
Section: Resultsmentioning
confidence: 99%
“…Heat was transferred to the material with a radiation boundary condition set to the external heat flux for the cone calorimeter tests. As the sample material was heated, convective cooling to the atmosphere occurred with a convection coefficient of 10 W m -2 K -1 and a constant ambient temperature of 27 °C was assumed [24].…”
Section: Pyrolysis Modelmentioning
confidence: 99%
“…Pyrolysate generation has been treated as occurring only at the surface [3,40] or more frequently, as a distributed in-depth reaction [41][42][43][44][45][46][47][48][49][50][51] to account for sub-surface fuel generation. With ablation models [35][36][37][38][39] or finite-rate kinetics models that relate the fuel generation rate to the surface temperature [3,40], all fuel generation occurs at the surface.…”
Section: Comprehensive Pyrolysis Models: Thermoplasticsmentioning
confidence: 99%
