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首页> 外文期刊>Fire Technology >Fire Retardant Action of Layered Double Hydroxides and Zirconium Phosphate Nanocomposites Fillers in Polyisocyanurate Foams
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Fire Retardant Action of Layered Double Hydroxides and Zirconium Phosphate Nanocomposites Fillers in Polyisocyanurate Foams

机译:层状双氢氧化物和磷酸锆纳米复合材料填料中多异氰脲酸盐泡沫的阻燃作用

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摘要

Modern day energy codes are driving the design and multi-layered configuration of exterior wall systems with a significant emphasis on achieving high performance insulation towards improving energy performance of building envelopes. Use of highly insulating polyisocyanurate (PIR) based materials enhanced with eco-friendly lamellar inorganic fillers reinforces energy performance requirements, environmental challenges and cost reduction without compromising the overall building fire safety. The current work assessed the fire behaviour of PIR modified with three layered fillers, namely MgAlCO3 (PIR-LDH1), MgAl Stearate (PIR-LDH2) and Zirconium Phosphate octadecylamine (PIR-ZrP3). For each of the fillers, three loadings (2, 4 and 6% by weight) were used. Optical analysis by X-ray diffraction patterns (XRD), cone calorimeter (CC), thermogravimetric (TGA) analysis, post-burning morphological evaluation using field emission scanning electron microscope (FESEM) and diffuse reflectance infrared spectroscopy (DRIFT) analysis, were performed. The results indicated that fire reaction properties and thermal stability of foam samples were enhanced with all three different lamellar inorganic smart fillers. The initial degradation temperature of PIR-layered filler samples was increased, demonstrating that incorporation of flame retardants decelerated the degradation of the PIR foam and contributed to significant char formation, from 19.5% in pure PIR samples to 33% in PIR-6%LDH1 samples. Increasing the filler content also resulted in improved char properties and decreased peak Heat Release Rates (HRR) in the cone calorimeter. Due to the development of a stable char layer, samples containing 6% of ZrP3 did not ignite at 20 kW/m(2) and a reduction of up to 40% in the peak HRR was achieved in PIR-2%ZrP3 samples.
机译:现代化的日子能源代码正在推动外墙系统的设计和多层配置,重点是实现高性能绝缘,从而提高建筑信封的能量性能。使用高绝缘多异氰脲酸酯(PIR)基于生态辅助层状无机填料的使用增强了能量性能要求,环境挑战和降低成本,而不会影响整体建筑物的消防安全。目前的工作评估了用三层填料改性的PIR的火灾行为,即MgalCO 3(PiR-LDH1),MGAL硬脂酸盐(PIR-LDH2)和磷酸锆八二烷基胺(PIR-ZRP3)。对于每个填料,使用三个载荷(2,4和6重量%)。通过X射线衍射图(XRD),锥形量热仪(CC),热重分析(TGA)分析,使用场发射扫描电子显微镜(FESEM)和漫反射红外光谱(漂移)分析的燃烧后形态评估,进行光学分析。 。结果表明,所有三种不同的层状无机纤维填料都增强了泡沫样品的火反应性和热稳定性。增加了PiR-层状填料样品的初始降解温度,表明阻燃剂的掺入减少了PIR泡沫的降解,并导致显着的炭形成,从纯PIR样品中的19.5%到PIR-6%LDH1样品中的33%。 。增加填料含量也导致锥形量热仪中改善的炭质性质和降低的峰值热释放速率(HRR)。由于稳定的炭层的发展,含有6%的ZrP3的样品在20 kW / m(2)时未点燃,并且在PiR-2%Zrp3样品中达到高达40%的降低。

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