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首页> 外文期刊>Polymer Degradation and Stability >Performance of intumescent flame retardant master batch synthesized through twin-screw reactively extruding technology: effect of component ratio
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Performance of intumescent flame retardant master batch synthesized through twin-screw reactively extruding technology: effect of component ratio

机译:双螺杆反应挤出技术合成膨胀型阻燃母料的性能:组分比的影响

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摘要

A novel technology, i.e., reactive extrusion, was used to synthesize intumescent flame retardants (IFRs) and their master batches by reacting melamine phosphate (NIP) and pentaerythritol (PER). Limiting oxygen index (LOI), UL94 test, melt flow index (MFI), thermogravimetric analysis (TGA), Fourier transfer infrared (FT-IR) and scanning electron microscopy (SEM) were used to investigate the effect of carbon source (char former/blowing agent ratio) of IFR on the flame retardancy and the water resistance of IFR/Polypropylene (PP) blend. The experimental results show that the char former/blowing agent ratio has a great effect on the flame retardancy and the water resistance of the composite. The flame retardant system, optimally at MP/PER = 1.6 (molar ratio) or additional carbonization agent content = 17.0 wt.% in intumescent system, shows excellent flame retardancy, i.e. UL94 V-0 ratings at both 3.2 and 1.6 mm thickness at 25 wt.% flame retardant (FR) loading, and UL94 V-0 rating at 3.2 mm thickness at 20 wt.% FR loading in IFR/PP formulation. Also, the water resistance of flame-retarded material was improved greatly by selecting a reasonable char former/blowing agent ratio, i.e. at MP/PER = 1.6 (molar ratio) or additional carbonization agent content = 17.0 wt.% in intumescent system, IFR/PP blend at 25 wt.% flame retardant loading can still reach UL94 V-0 rating after treatment with water at 70 degreesC for 168 h. The polarity of IFRs, dispersion of IFRs in PP matrix and compatibility of IFRs with PP matrix were also found to influence the water resistance of 1FR/PP blend based on IR, water solubility test and SEM. The thermal stability of IFR/PP blend, affected by char former/blowing agent ratio, was proved to be well correlated with its flame retardancy whether before or after water treatment. (C) 2003 Elsevier Science Ltd. All rights reserved. [References: 26]
机译:通过使三聚氰胺磷酸酯(NIP)和季戊四醇(PER)反应,使用了一种新技术,即反应挤出,来合成膨胀型阻燃剂(IFR)及其母料。极限氧指数(LOI),UL94测试,熔体流动指数(MFI),热重分析(TGA),傅立叶转移红外(FT-IR)和扫描电子显微镜(SEM)用于研究碳源的影响/ FRF /发泡剂比率)和IFR /聚丙烯(PP)共混物的阻燃性和耐水性。实验结果表明,成炭剂/发泡剂的比例对复合材料的阻燃性和耐水性有很大影响。阻燃体系,在膨胀体系中最佳为MP / PER = 1.6(摩尔比)或额外的碳化剂含量= 17.0 wt。%,表现出优异的阻燃性,即25和25毫米厚度下的UL94 V-0等级(25)在IFR / PP配方中,阻燃剂(FR)的重量含量为20%(重量),阻燃剂(FR)的含量为3.2mm,UL94 V-0等级为20%。同样,通过选择合理的成炭剂/发泡剂比例,即在膨胀体系IFR中MP / PER = 1.6(摩尔比)或额外的碳化剂含量= 17.0 wt。%,大大提高了阻燃材料的耐水性。 25重量%阻燃剂负载量的/ PP共混物在70℃的水中处理168小时后仍可达到UL94 V-0等级。基于IR,水溶性测试和SEM,还发现IFR的极性,IFR在PP基质中的分散以及IFR与PP基质的相容性影响1FR / PP共混物的耐水性。事实证明,无论是在水处理之前还是之后,IFR / PP共混物的热稳定性均受成炭剂/发泡剂比例的影响与其阻燃性密切相关。 (C)2003 Elsevier ScienceLtd。保留所有权利。 [参考:26]

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