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Thermal degradation and pyrolysis analysis of zinc borate reinforced intumescent fire retardant coatings

机译:硼酸锌加筋膨胀型阻燃涂料的热降解及热解析

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摘要

This work aims at evaluating the potential of nano-sized zinc borate as substitution of boric acid for thermal degradation and gaseous products in expandable graphite based intumescent fire retardant coating IFRC systems. The thermal degradation and pyrolysis of intumescent flame retardant coatings was characterized by bunsen burner fire test, thermogravimetric analysis (TGA), field emission scanning electron microscopy (FESEM), energy dispersive spectrometry (EDX), X-ray diffraction (XRD), fourier transformed infra-red analysis (FTIR), X-ray photoelectron spectroscopy (XPS) and gaseous emission analysis (Py-GC). Bunsen burner fire test reveals that the partial substitution of zinc borate (6.61 mass%) imparts a substantial improvement in thermal stability and reduces steel substrate temperature to 124 degrees C. From thermogravimetric analysis results, it was shown that this composition increases char residual mass from 39 to 46.14 mass%. The morphological structures of char residue were investigated by FESEM and it indicates that zinc borate promotes more continuous and compact char layers that hinder the heat diffusion and oxygen transmission effectively. XRD and FTIR results show that zinc borate develops a zinc-based glassy intumescent shield i.e. zinc bis (hydroxyanthrapyrimidine) dehydrate (C30H14N4O4Zn center dot 2H(2)O) that strengthens the char. The new chemical species enhances the thermal stability of the freshly formed char at high temperature and provides an enhanced fire protection. XPS analysis shows the higher carbon contents in formulation IF-5 (6.6 mass%) and endorses high char residue. The Py-GC analysis confirms release of less toxic gaseous products in IF-5 formulation, considering their type and concentration, as compared to control formulation, and is considered as an environmentally safe intumescent formulation.
机译:这项工作旨在评估纳米锌硼酸锌作为硼酸取代的潜力,可膨胀基于石墨的膨胀型膨胀型阻燃涂料IFRC系统。膨胀阻燃涂层的热降解和热解。特征在于Bunsen燃烧器消防试验,热重分析(TGA),场发射扫描电子显微镜(FESEM),能量分散光谱(EDX),X射线衍射(XRD),傅里叶变换红外分析(FTIR),X射线光电子体光谱(XPS)和气体排放分析(PY-GC)。 Bunsen燃烧器火灾试验显示,锌硼酸锌(6.61质量%)的部分取代赋予热稳定性的显着提高,并将钢基材温度降低至124℃。从热重分析结果显示,该组合物增加了炭残余物质39至46.14质量%。通过FeSem研究了炭残渣的形态学结构,表明硼酸锌促进了更加连续和紧凑的炭层,其有效地阻碍了热扩散和氧气。 XRD和FTIR结果表明,锌硼酸锌开发了一种锌基玻璃膨胀罩I.。锌双(羟基吡啶胺)脱水(C30H14N4O4ZN中心点2H(2)o)加强炭。新型化学物质提高了新型形成的炭的热稳定性,在高温下提供了增强的防火。 XPS分析显示了制剂IF-5(6.6质量%)中的碳含量较高,并赞备高炭残余物。与对照制剂相比,拟给IF-5制剂中的IF-5制剂中释放较小的毒性气态产物的释放,并且被认为是一种环保膨胀型制剂。

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