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聚丙烯/导热填料复合材料的制备及性能和界面作用

  • Yufei Dong
  • , Jianping Kuang
  • , Yuxuan Wang
  • , Yubin Gao
  • , Chao Liu
  • , Hongxia Yan
  • Ltd.
  • Shaanxi University of Science and Technology

科研成果: 期刊稿件文章同行评审

摘要

Polypropylene (PP) was modified with single-component filler and multi-component filler with different dimensions, including zero-dimensional spherical materials such as aluminum nitride and copper powder, one-dimensional linear materials like carbon fiber powder and carbon powder, as well as two-dimensional flaky graphite, and evaluated for the tensile strength, flexural modulus, heat deflection temperature and thermal conductivity. The structural model of the composites obtained was constructed by Materials Studio software, with molecular dynamics simulations carried out to calculate the shear modulus and interfacial interaction parameters (binding energy, mean square displacement, diffusion coefficient). The results showed that, the ternary-component filler (graphite-carbon fiber powder-aluminum nitride) modification significantly improved the thermal conductivity of PP to 0.326 W/(m·K), an increase of 74.3% compared with PP, and increased the heat deflection temperature of PP to 118.2 ℃, an increase of 34.6% compared with PP, while maintaining good mechanical properties, with a tensile strength and flexural modulus of 38.6 MPa and 2686 MPa, representing increases of 8.7% and 73.7% over PP, respectively. The shear modulus calculated through molecular dynamics simulation was basically consistent with the flexural modulus tested by experiments, and the binding energy, mean square displacement, diffusion coefficient showed the same trend.

投稿的翻译标题Preparation, properties and interfacial interaction of polypropylene/thermally conductive filler composites
源语言繁体中文
页(从-至)516-523
页数8
期刊Jingxi Huagong/Fine Chemicals
43
3
DOI
出版状态已出版 - 3月 2026

关键词

  • functional materials
  • interfacial interaction
  • modification
  • molecular dynamics simulation
  • performance
  • polypropylene

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