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Fire performance evaluation of cladding wall assemblies using the 16-ft high parallel panel test method of ANSI/FM 4880

机译:使用16-FT高平行面板测试方法ANSI / FM 4880的覆层墙组件的火灾性能评估

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Cladding assemblies are facade systems made of cladding panels such as aluminum composite materials (ACMs) and high-pressure laminates (HPLs), and layers of continuous insulation (CI) and weather resistive barrier (WRB). Recent incidents of catastrophic fires involving cladding assemblies have warranted efforts to understand their fire hazards and develop engineering risk mitigation guidelines for existing constructions. This research provides a comprehensive fire performance evaluation of cladding assemblies exposed to realistic fire scenarios. Twelve cladding assemblies, with a combination of four types of claddings, four types of CIs, and two WRBs are selected. The tests are conducted using the 16-ft (4.9 m) high parallel panel test (16-ft PPT) method of ANSI/FM 4880 standard; the method imparts realistic 100 kW/m( 2 ) heat flux to the wall assemblies. The results show that the chemical heat release rate (HRR) based evaluation criterion used in the 16-ft PPT provides an objective and robust assessment of fire performance. The wall assemblies comprising of thermoplastic-core ACMs demonstrated accelerated flame spread within a matter of a few minutes, regardless of the combustibility of the CI used. At low heat flux exposures, unlike severe fire scenarios of the 16-ft PPT, it is shown that the thermoplastic-core ACMs appear to perform favorably. The fire-retardant ACM and HPL assemblies reveal limited flame spread, regardless of whether the CI used in the assembly was charring combustible or noncombustible. Lastly, for the assemblies evaluated, the flammability of claddings exhibits greater influence on the overall performance of the wall system, while the CI and WRB affect the system performance in a secondary manner.
机译:包层组件是由覆盖板制成的外立结构,如铝合金材料(ACMS)和高压层压板(HPLS),以及连续绝缘层(CI)和耐候屏障(WRB)。最近涉及包层组件的灾难性火灾事件有助于了解他们的火灾危害,并为现有建设制定工程风险减排准则。本研究提供了暴露于现实火灾情景的覆层组件的全面的火灾性能评估。 12个包层组件,选择了四种类型的封端,四种类型的CI和两个WRB。使用ANSI / FM 4880标准的16-FT(4.9M)高平行面板测试(16-FT PPT)方法进行测试。该方法赋予墙壁组件的现实& 100 kW / m(2)热通量。结果表明,16英尺PPT中使用的基于化学热释放速率(HRR)的评价标准提供了对火灾表现的客观和稳健的评估。不管使用的CI的可燃性如何,包含热塑性芯ACM的壁组件在几分钟内扩展的加速火焰展示。在低热量通量曝光时,与16-FT PPT的严重火灾情况不同,显示热塑性核心ACMS似乎有利地表现。无论组装中使用的CI是否炭化是炭化可燃或非可疑的,阻燃ACM和HPL组件都会显示出限量的火焰扩散。最后,对于评估的组件,包层的可燃性对墙壁系统的整体性能产生了更大的影响,而CI和WRB以二次方式影响系统性能。

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