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Analysis of Fire Performance, Smoke Development and Combustion Gases from Flame Retarded Rigid Polyurethane Foams

机译:阻燃硬质聚氨酯泡沫的防火性能,烟雾发展和燃烧气体分析

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摘要

Rigid polyurethane foam is a polymeric material which is widely used for thermal insulation in building construction and other applications. Given recent emphasis on energy conservation and efficiency, there has been continuous growth in its use over the years. This raises significant fire safety concerns since polyurethanes are inherently very flammable and prone to release toxic gases as the foam thermally decomposes and burns. To improve fire safety characteristics by reducing ignitability and flammability of the foams, various flame retardants (FR) have been introduced into base foam formulations. But with the introduction of FR agents, there has been rising concern within the fire safety community and general public regarding the overall benefits versus detrimental impacts of even commonly used FR agents. In the case of rigid polyurethane foam, however, such an assessment is difficult as there are few cross comparisons in the literature that detail the impacts of different concentrations of common fire retardants, such as brominated, phosphorus-based and expandable graphite agents, on the fire behavior, smoke development and toxic gas production for even single base foam formulations. The present experimental work focuses on a systematic evaluation of these factors using three common, commercial fire retardants added in concentrations of 0%wt, 10%wt and 20%wt to a single formulation of rigid polyurethane foam. Cone calorimeter and smoke density tests are used to simulate well ventilated and poorly ventilated fire conditions during material fire performance assessment, while FTIR, Novatech P 695 gas analyzers and TD-GC/MS methods are used to investigate the gases evolved during oxidative pyrolysis and combustion of the samples. Concentration measurements of principal fire gases such as CO, CO2, reduced O2, and NOxare combined with more detailed investigation of the volatile organic compounds generated during the fire testing. Use of gas absorption sampling followed by off-line Thermal Desorption/Gas Chromatography/Mass Spectrometry (TD-GC-MS) analysis for identification of toxic gases has proven of significant benefit in this application. The full set of data obtained provides a more comprehensive identification of the evolved products during three characteristic periods in the combustion process. As such, it expands current knowledge and provides valuable new insight and understanding of thermal degradation, combustion and smoke development, as well as overall fire performance, of fire retarded rigid polyurethane foams in well-ventilated and poorly ventilated environments.
机译:硬质聚氨酯泡沫是一种聚合材料,广泛用于建筑结构和其他应用中的隔热。鉴于最近对节能和效率的重视,多年来,其使用一直在持续增长。由于聚氨酯固有地非常易燃并且在泡沫热分解和燃烧时易于释放有毒气体,因此这引起了重大的消防安全隐患。为了通过减少泡沫的可燃性和易燃性来改善消防安全特性,已将多种阻燃剂(FR)引入基础泡沫配方中。但是,随着阻燃剂的引入,消防安全界和公众日益关注甚至是常用阻燃剂的整体效益与有害影响。但是,就硬质聚氨酯泡沫而言,这种评估很困难,因为文献中很少有交叉比较,详细说明了不同浓度的常见阻燃剂(如溴化,磷基和可膨胀石墨剂)对耐火材料的影响。即使是单一基础泡沫配方,其防火性能,发烟性和有毒气体的产生。目前的实验工作着重于系统地评估这些因素,方法是将三种常见的商用阻燃剂(分别以0%wt,10%wt和20%wt的浓度添加到硬质聚氨酯泡沫的单个配方中)添加。锥形量热仪和烟气密度测试用于模拟材料防火性能评估期间通风良好和通风不良的火灾情况,而FTIR,Novatech P 695气体分析仪和TD-GC / MS方法用于研究氧化热解和燃烧过程中产生的气体的样本。主要火气(例如CO,CO2,还原的O2和NOx)的浓度测量与对火测试过程中产生的挥发性有机化合物的更详细研究相结合。使用气体吸收采样,然后进行离线热脱附/气相色谱/质谱(TD-GC-MS)分析来鉴定有毒气体,已证明在此应用中具有显着优势。所获得的全部数据提供了燃烧过程中三个特征时期内析出产物的更全面识别。这样一来,它扩展了当前的知识,并为通风良好且通风不良的阻燃硬质聚氨酯泡沫的热降解,燃烧和发烟以及整体防火性能提供了有价值的新见解。

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    Adeosun David;

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  • 年度 2014
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