Evaluation of flame spread on thin polymeric rooflight materials

被引:1
|
作者
Khan, MM [1 ]
Alpert, RL [1 ]
机构
[1] FM Global Res, Norwood, MA 02062 USA
关键词
concurrent flame spread; thin polymeric rooflight materials; heat release rate; ignition time; burning duration;
D O I
10.1177/0734904103021001004
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
An empirical flame spread parameter (dimensional), which is a function of peak chemical heat release rate and ignition behavior, obtained from bench-scale ASTM E-2058 tests, is used to correlate the flame spread behavior of eighteen thin polymeric rooflight materials in large-scale ASTM E-108 tests. Although this empirical parameter appears to correlate the extent of flame spread in large-scale tests of most rooflight materials, including melting types, the parameter fails to predict the flame spread behavior of several nonmelting materials. Data have also been analyzed using a dimensionless parameter, based on an existing concurrent flame spread model that includes the consideration of burnout for thin materials. This parameter, a flame acceleration factor (FAF), is a function of ignition time, burning duration and chemical heat release rate obtained from E-2058 tests. A correlation between FAF and the extent of flame spread measured in large-scale E-108 tests is presented. Consistent with the model prediction, flame spread remains within the flame exposure region in E-108 tests when FAF<0. Flame spread is distinctly beyond the exposure source when FAF > 0. An exception is the case when there is extensive melting, a phenomenon not taken into account by the FAF model.
引用
收藏
页码:41 / 54
页数:14
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