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Study on the effect of PolyFR and its FR system on the flame retardancy and foaming behavior of polystyrene

机译:PolyFR及其FR系统对聚苯乙烯阻燃性和发泡性能的研究

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摘要

A new class of brominated polymeric flame retardant (PolyFR) which is a kind of environmental FR was researched. Hydrotalcite (HT), applied as an environmentally-friendly heat stabilizer for PolyFR, was investigated by thermogravimetric analysis (TGA). It presented the result that no more than 0.15% HT significantly improved the thermal stability during processing but excessive HT would weaken the flame retardancy of PolyFR because of the ability to absorb hydrogen bromide (HBr). Flame-retardant polystyrene (PS) was prepared via mixing PolyFR/BDDP/HT and then introducing inorganic particles such as antimonous oxide (Sb2O3), organo montmorillonite (OMMT) and graphite to study their effect on the PolyFR/BDDP/HT system. The PS foams were prepared by batch foaming of the PS composites. Meanwhile, the combustion properties of PS composites and PS composite foams were characterized by limiting oxygen index (LOI) and vertical flame test (UL-94). The results indicated that the 2.5%PolyFR/2.5%BDDP/0.15%HT/PS composite possessed 25.7% LOI and pass UL-94 V-2 rating, while its foam possessed 30.7% LOI and pass UL-94 V-2 rating. And the addition of Sb2O3, OMMT and graphite reduced the oxygen index and vertical burning performance of PS composites and PS composite foams to different degrees. Otherwise, the flame-retardant (FR) mechanism of each FR system was studied by TGA and cone calorimetry. This revealed that PolyFR/BDDP promoted decomposition and dripping of PS early to remove heat through droplets and released HBr to quench free radicals and dilute combustible gas and oxygen during combustion. These properties of PolyFR/BDDP helped reduce the burning intensity and extinguish the flame through droplets, thereby endowing PS and its foam with better fire-resistant properties. When the addition of Sb2O3, OMMT or graphite improved the thermal stability of PS, they weakened the droplet effect as well. Besides, PS foams were characterized by scanning electron microscopy (SEM). The results indicated PolyFR played an efficient heterogeneous cell nucleation role in the foaming process to reduce average cell size (from 110.5 m to 38.4 m) and narrow cell distribution (from 60-160 m to 20-60 m).
机译:研究了一种新的溴化聚合物阻燃剂(PolyFR),其是一种环境FR。通过热重分析(TGA)研究了作为PolyFR的环保热稳定剂的水滑石(HT)。它介绍了不超过0.15%的HT显着提高了加工过程中的热稳定性,但由于吸收溴化氢(HBr)的能力,HT的热稳定性会削弱PolyFR的阻燃性。通过混合PolyFR / BDDP / HT,然后引入无机颗粒如锑氧化物(SB2O3),有机蒙脱石(OMMT)和石墨,以研究它们对PolyFR / BDDP / HT系统的影响,制备阻燃聚苯乙烯(PS)。通过PS复合材料的批量发泡制备PS泡沫。同时,通过限制氧指数(LOI)和垂直火焰试验(UL-94),表征PS复合材料和PS复合泡沫的燃烧性能。结果表明2.5%PolyFR / 2.5%BDDP / 0.15%HT / PS复合材料具有25.7%的LOI并通过UL-94 V-2等级,而其泡沫具有30.7%的LOI并通过UL-94 V-2等级。并加入SB2O3,OMMT和石墨的氧指数和PS复合材料的垂直燃烧性能和PS复合泡沫到不同程度。否则,通过TGA和锥形量热法研究了每个FR系统的阻燃剂(FR)机制。这表明Polyfr / BDDP早期促进了PS的分解和滴度,以通过液滴去除热量并释放HBR以在燃烧过程中淬火自由基并稀释可燃气体和氧气。 Polyfr / BDDP的这些性质有助于降低燃烧强度并通过液滴熄灭火焰,从而赋予PS及其具有更好的防火性能的泡沫。当添加SB2O3,OMMT或石墨时,改善了PS的热稳定性,它们也削弱了液滴效果。此外,通过扫描电子显微镜(SEM)表征PS泡沫。结果表明PolyFR在发泡过程中起高有效的异质细胞成核作用,以减少平均电池尺寸(从110.5μm至38.4米)和细胞分布窄(60-160μm至20-60μm)。

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  • 来源
    《RSC Advances》 |2019年第1期|共14页
  • 作者单位

    Beijing Technol &

    Business Univ Sch Mat &

    Mech Engn Beijing 100048 Peoples R China;

    Beijing Technol &

    Business Univ Sch Mat &

    Mech Engn Beijing 100048 Peoples R China;

    Beijing Technol &

    Business Univ Sch Mat &

    Mech Engn Beijing 100048 Peoples R China;

    Beijing Technol &

    Business Univ Sch Mat &

    Mech Engn Beijing 100048 Peoples R China;

    Beijing Technol &

    Business Univ Sch Mat &

    Mech Engn Beijing 100048 Peoples R China;

    Beijing Technol &

    Business Univ Sch Mat &

    Mech Engn Beijing 100048 Peoples R China;

    Beijing Technol &

    Business Univ Sch Mat &

    Mech Engn Beijing 100048 Peoples R China;

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  • 正文语种 eng
  • 中图分类 化学;
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