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聚丙烯/石墨烯片纳米复合材料阻燃及导热性能 被引量:9

Fire Retardancy and Thermal Conductivity Properties of PP/GNPs Nano-Platelets Composites
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摘要 采用熔融共混法制备了聚丙烯(PP)/石墨烯片(GNPs)纳米复合材料。讨论了添加不同质量分数的GNPs对PP/GNPs纳米复合材料的阻燃性能以及导热性能的影响。结果表明,随着GNPs用量的增加,PP/GNPs纳米复合材料的极限氧指数升高,水平燃烧速率下降,烟密度等级虽有波动但总体呈升高趋势;与比表面积大的GNPs相比,比表面积小的对减缓水平燃烧速率作用较好;不同厚度的试样对水平燃烧速率的影响差异很大;随着GNPs质量分数的增加,复合材料的比热容有所降低,热扩散系数明显增加;与比表面积小的GNPs相比,比表面积大的对复合材料散热能力影响更显著。 Polypropylene (PP)/graphene nano-platelets (GNPs) composites were prepared via melt blending. The effects of different GNPs mass fractions on the fire retardancy and thermal conductivity of the composites were discussed. The results show that the oxygen index increase,while the horizontal burning rate decrease,but the smoke density fluctuates but increases overall with the increase of the filler content. As far as specific surface area of GNPs is concerned,the smaller has greater effect on slowing the horizontal burning rate. Samples with different thickness have great influence on the horizontal burning rate. With the increase of filler mass fraction,the specific heat capacity of the composites decrease slightly,and the thermal diffusion coefficient increase obviously. As for specific surface area of GNPs,the larger has more significant influence on the heat dissipation capacity of the sample.
作者 韦刘洋 刘定福 梁基照 Wei Liuyang;Liu Dingfu;Liang Jizhao(School of Mechanical and Automotive Engineering, South China University of Technology, Guangzhou 510640, China)
出处 《工程塑料应用》 CAS CSCD 北大核心 2016年第10期98-101,115,共5页 Engineering Plastics Application
基金 国家自然科学基金项目(51073021)
关键词 聚丙烯 阻燃性能 石墨烯片 复合材料 比热容 热扩散系数 polypropylene fire retardancy graphene nano-platelets composite specific heat capacity thermal diffusivity coefficient
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  • 1刘立华,宋云华,陈建铭,郭奋.硬脂酸钠改性纳米氢氧化镁效果研究[J].北京化工大学学报(自然科学版),2004,31(3):31-34. 被引量:28
  • 2欧育湘,韩廷解.溴系阻燃剂与环境保护及人类健康[J].塑料助剂,2005(5):1-4. 被引量:21
  • 3欧育湘,房晓敏.金属氢氧化物阻燃剂的现状与发展前景[J].精细与专用化学品,2007,15(2):1-4. 被引量:24
  • 4王永强.阻燃材料科学与应用技术[M].北京:化学工业出版社,2003:34-39.
  • 5LEWIN M. Unsolved problems and unanswered questions in flame retardanceof polymers[J]. Polym. Degrad. Stab., 2005, 88(13- 19): 48-111.
  • 6JANG J W, JIM J H, BAE J Y. Effects of Lewis acid-type transition metal chloride additives on the thermal degradation of ABS [J]. Polym. Degrad. Stab., 2005, 88: 324-332.
  • 7JANG J W, JIM J H, BAE J Y. Synergistic effect of ferric chloride and silicon mixtures on the thermal stabilization enhancement of ABS [J]. Polym. Degrad. Stab., 2005, 90: 508-514.
  • 8LEWIN M, ENDO M. Catalysis of intumescent flame retardancy of polypropylene by metallic compounds [ J ]. Polymers for Advanced Technologies, 2003, 14: 3-11.
  • 9PIN L V, WANG Z Z, HU K L, et al. Flammability and thermal degradation of flame retarded polypropylene composites containing melamine phosphate and pentaerythritol derivatives [ J ]. Polyrn. Degrad. Stab. ,2005, 90: 523-534.
  • 10Manfred Weber.Industrial Minerals,2000,2:19~28.

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