阻燃剂
气凝胶
材料科学
玻璃微球
复合数
微球
极限氧指数
复合材料
聚磷酸铵
热导率
可燃性
热分解
热稳定性
保温
化学工程
热解
图层(电子)
化学
有机化学
烧焦
工程类
作者
Ye Niu,Shuo Wang,Zhaoqi Zhu,Min Su,Wei Wang,Lijuan Yan,Yingjiao Ma,Hanxue Sun,Weidong Liang,An Li
标识
DOI:10.1016/j.polymdegradstab.2022.110030
摘要
The development of high-performance flame-retardant materials with better thermal insulation properties is of great significance to modern building energy conservation. In this study, we report the facile and scalable fabrication of novel aerogels (SA-HGM-APP) based on the building blocks of ammonium polyphosphate (APP) coated hollow glass microspheres (HGM) and matrix material sodium alginate (SA) by freeze drying method. The as-prepared composite aerogel exhibits better thermal stability (decomposition temperature over 210°C). In addition, SA-HGM-APP composite aerogels have good thermal insulation properties and low thermal conductivity, which is 0.035 W m−1 K−1. More importantly, the peak heat release rate (pHRR) is 14.14 kW m−2, the limiting oxygen index (LOI) value is as high as 100%, and the aerogel composite material can reach UL-94 V-0 grade, so it shows excellent flame retardancy. These results attributed to a synergistic effect, which combines the rich porous structure derived from HGM, so that SA and APP have better thermal insulation and excellent non flammability, thus providing excellent flame retardancy. SA-HGM-APP aerogel composite has many advantages, such as simple preparation method and high mechanical strength. It has great potential in future thermal insulation and flame retardancy applications.
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