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Study on the surface modification of inorganic flame retardant magnesium hydroxide and mechanism

机译:无机阻燃氢氧化镁的表面改性及机理研究

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@@1.Introduction Compared with other flame retardants, magnesium hydrate can break down at the temperature of 350°C -400°C[1], and the decomposition product is magnesia & water which are pollution-free, and meanwhile a large amount of heat is absorbed during the process of breaking down[2,3]. So the high molecular polymer filled with flame retardant type magnesium hydroxide can slow down or stop the process of the burning effectively. As an environmental-friendly inorganic fire retardant, magnesium hydrate has wide potential application prospect and is the future sound of the leading flame retardant products. In order to play the role of its fire retardant function effectively, it must be modificated for its hydrophilic structure. The surface modification of magnesium hydroxide by silane coupling agent (KH-550, KH-560) and stearic acid was investigated in the experiment. By comparing the transmissivity of the above modificated samples in the liquid paraffin, the result shows that stearic acid is the most excellent modifier.And the optimal process conditions can be listed as follows: the dosage of stearic acid is 6%, and the modified temperature is 80°C, and the modified time is 60min. XRD, FTIR and TG-DSC are used to characteristic the modificated samples, and the analyzed result indicates the mechanism of surface modification is that stearic acid is attached to the surface of magnesium hydroxide by hydrogen bond formed between stearic acid and hydroxide radical of magnesium hydroxide, so the interconsistency between magnesium hydroxide and polymer gets improved.
机译:@@ 1.简介与其他阻燃剂相比,水合物镁可以在350℃-400℃的温度下分解,分解产物是无污染,同时大量的氧化氧化物和水。在分解下来的过程中,热吸收[2,3]。因此,填充有阻燃型氢氧化镁的高分子聚合物可以减缓或减慢有效燃烧的过程。作为一种环保无机阻燃剂,镁水合物具有较大的潜在应用前景,是未来的防火产品的声音。为了有效地发挥其阻燃功能的作用,它必须针对其亲水结构进行修饰。在实验中研究了硅烷偶联剂氢氧化镁(KH-550,KH-560)和硬脂酸的表面改性。通过比较液体石蜡中上述修饰样品的透射率,结果表明硬脂酸是最优异的改性剂。最佳过程条件可以如下列出:硬脂酸的剂量为6%,和改性温度是80°C,修改时间为60分钟。用于特征的XRD,FTIR和TG-DSC用于特征,分析结果表明,表面改性的机制是通过在硬脂酸和氢氧化镁的硬脂酸和氢氧化镁之间形成的氢键连接硬脂酸与氢氧化镁的表面连接因此,氢氧化镁和聚合物之间的互动性得到改善。

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