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Preparation of aluminum hydroxide/aluminum phosphinate flame-retardant poly(vinyl alcohol) foam through thermal processing

机译:热处理制备氢氧化铝/次膦酸铝阻燃聚乙烯醇泡沫

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摘要

A novel flame-retardant poly (vinyl alcohol) (PVA) composite foam was prepared successfully through thermal processing, which was filled with high content of flame retardant, based on aluminum hydroxide (ATH) and aluminum phosphinate (AlPi) and using water as plasticizer and blowing agent. The flame-retardant property and mechanism of the prepared foam matrix were studied by vertical burning test, limiting oxygen index (LOI), cone calorimeter, scanning electronic microscopy (SEM) and X-ray photoelectron spectroscopy (XPS). The experimental results showed that the PVA/ATH/AlPi (1/1.2/0.05) composite achieved LOI value of 41% and UL94 V-0 (3.2 mm) rate. The addition of ATH and AlPi into PVA matrix significantly decreased flammability of the composites, because a more compact and continuous char layer of the PVA/ATH/AlPi composite could be formed, due to the involvement of AlPi in the char-forming reaction. Compared with the pure PVA sample, the peak heat release rate (PHRR) and total heat release (THR) of PVA/ATH/AlPi (1/1.2/0.05) composite were reduced by 76.5% and 58.2%, respectively. Built upon this PVA-based foam matrix with good flame retardancy, the flame-retardant PVA-based foam was successfully prepared through thermal extrusion. In addition, the influence of water content on melt viscosity, foam structure and mechanical strength was also analyzed. (c) 2015 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2015, 132, 42020.
机译:通过热处理成功制备了一种新型的阻燃聚乙烯醇(PVA)复合泡沫,该泡沫填充了高含量的阻燃剂,以氢氧化铝(ATH)和次膦酸铝(AlPi)为基础,用水作增塑剂。和发泡剂。通过垂直燃烧试验,极限氧指数(LOI),锥形量热仪,扫描电子显微镜(SEM)和X射线光电子能谱(XPS)研究了制备的泡沫基体的阻燃性能和机理。实验结果表明,PVA / ATH / AlPi(1 / 1.2 / 0.05)复合材料的LOI值为41%,UL94 V-0为3.2 mm。将ATH和AlPi添加到PVA基质中可显着降低复合材料的可燃性,因为由于AlPi参与了成炭反应,因此可以形成PVA / ATH / AlPi复合材料的更致密和连续的炭层。与纯PVA样品相比,PVA / ATH / AlPi(1 / 1.2 / 0.05)复合材料的峰值放热率(PHRR)和总放热(THR)分别降低了76.5%和58.2%。在具有良好阻燃性的这种基于PVA的泡沫基质的基础上,通过热挤压成功制备了阻燃性基于PVA的泡沫。此外,还分析了水含量对熔体粘度,泡沫结构和机械强度的影响。 (c)2015 Wiley Periodicals,Inc. J. Appl。 Polym。科学2015,132,42020。

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