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The influence of layered, spherical, and tubular carbon nanomaterials' concentration on the flame retardancy of polypropylene

机译:层状,球形和管状碳纳米材料的浓度对聚丙烯阻燃性的影响

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The characteristic influences of increasing concentrations of graphene, expanded graphite (EG), carbon black (CB), and multiwall carbon nanotubes (MWNT) are investigated on pyrolysis, reaction to small flame, burning behavior, and on electrical, thermal, and rheological properties of flame retarded polypropylene (PP-FR). The property-concentration dependency is different for the various material properties, as threshold, linear, and leveling off functions were observed. Increasing concentrations of carbon nanoparticles resulted in a decrease in the electrical resistivity of the polymer by crossing the percolation threshold. The developing nanoparticle network changes melt flow behavior for small shear rates, increases thermal conductivity and therefore, affects the UL 94 classification and oxygen index. The onset temperature of PP decomposition is shifted to temperatures up to 37 degrees C higher; the peak heat release rate is reduced by up to 74% compared to PP-FR. Both effects leveled off with increasing particle concentration. Among the four carbon nanomaterials tested, graphene presents superior influence on composite properties over the tested concentration range and outperforms commercial CB, MWNT, and EG. POLYM. COMPOS., 36:1230-1241, 2015. (c) 2014 Society of Plastics Engineers
机译:研究了石墨烯,膨胀石墨(EG),炭黑(CB)和多壁碳纳米管(MWNT)浓度增加对热解,小火焰反应,燃烧行为以及电,热和流变性能的影响。阻燃聚丙烯(PP-FR)。由于观察到阈值,线性和平整函数,各种材料特性的特性浓度依赖性不同。碳纳米颗粒浓度的增加通过超过渗透阈值而导致聚合物的电阻率降低。不断发展的纳米颗粒网络可在较小的剪切速率下改变熔体流动行为,提高热导率,因此会影响UL 94的分类和氧指数。 PP分解的起始温度移至最高37摄氏度的温度;与PP-FR相比,峰值放热率降低多达74%。随着颗粒浓度的增加,两种作用均趋于平稳。在所测试的四种碳纳米材料中,石墨烯在所测试的浓度范围内对复合材料性能表现出优异的影响,并且优于商用CB,MWNT和EG。 POLYM。 COMPOS。,36:1230-1241,2015.(c)2014年塑料工程师学会

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