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Flame retardancy and smoke suppression of silicone foams with microcapsulated aluminum hypophosphite and zinc borate

极限氧指数 硼酸锌 材料科学 阻燃剂 烟雾 锥形量热计 极限抗拉强度 次磷酸 傅里叶变换红外光谱 核化学 复合材料 热解 化学工程 冶金 化学 有机化学 工程类 烧焦
作者
Furu Kang,Caiping Wang,Jun Deng,Kun Yang,Li Ma,Qingtao Pang
出处
期刊:Polymers for Advanced Technologies [Wiley]
卷期号:31 (4): 654-664 被引量:38
标识
DOI:10.1002/pat.4799
摘要

The flame‐retardant microcapsules were successfully fabricated with an aluminum hypophosphite (AHP) core. Fourier transform infrared (FTIR) and X‐ray photoelectron spectroscopy (XPS) were used to verify that AHP was encapsulated in the microcapsules, and thermogravimetry analysis showed that microencapsulated AHP (MAHP) possessed higher thermal stability than that of AHP. Then, a flame‐retardant and smoke suppression system for silicone foams (SiFs) was obtained through a synergistic effect of MAHP and zinc borate (2ZnO·3B 2 O 3 ·3.5H 2 O). The mechanical properties, flame retardance, and smoke suppression of SiFs with MAHP and zinc borate were tested using the tensile test, limiting oxygen index (LOI) test, UL‐94 test, and cone calorimeter test. The mechanical properties indicated that the tensile strength and elongation at break of SiFs could evidently improve with the incorporation of MAHP. Compared with pure SiF, SiF8 with 4.5‐wt% MAHP and 1.5‐wt% zinc borate could achieve an LOI value of 30.7 vol% and an UL‐94 V‐0 rating, the time to ignition amplified almost six times, the peak heat release rate and total heat release were 51.10% and 46.00% less than that of pure SiF, respectively, the fire performance index increased nearly 13 times, and the fire growth index value was only 13.18% of pure SiF. Moreover, the partial substitution of zinc borate imparted a substantial improvement in both flame retardancy and smoke suppression. Especially, the peak smoke production rate and total smoke production of SiF8 were merely 38.46% and 38.84% of pure SiF.
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