首页> 外文期刊>Composites Science and Technology >Computer simulation study on the compatibility of cyclotriphosphazene containing aminopropylsilicone functional group in flame retarded polypropylene/ammonium polyphosphate composites
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Computer simulation study on the compatibility of cyclotriphosphazene containing aminopropylsilicone functional group in flame retarded polypropylene/ammonium polyphosphate composites

机译:阻燃聚丙烯/聚磷酸铵复合材料中含氨基丙基硅氧烷官能团的环三磷腈相容性的计算机模拟研究

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摘要

The compatibilization of cyclotriphosphazene N_3P_3[NH(CH_2)_3Si(OCH_2CH_3)_3]_6 (APESP) in flame retarded polypropylene (PP)/ammonium polyphosphate (APP) composites was investigated by atomistic and mesoscale simulations. Molecular dynamics (MD) and dissipative particle dynamics (DPD) simulation method were used to study the binding energy (E_(binding)). radius distribution function, hydrogen bond, Flory-Huggins parameter (x) and mesoscopic morphology of the composites. It was found that the compatibility of APP in PP matrix significantly got better due to the loading of the cyclotriphosphazene derivative APESP, compared with the loading of γ-aminopropyltriethoxysilane (APES) or hexachlorocyclotriphos phazene. The E_(binding) value of APP and PP increased to 161.45 kJ/mol in PP/APP/APESP, in contrast to 2.82 kJ/mol in PP/APP. Furthermore, the last frame of MD profiles indicated the presence of strong hydrogen bond between APP and APESP molecules. The DPD data showed that APESP made the dispersion and distribution of APP in PP matrix more homogeneous because of improved interfacial interaction. To verify the simulation results, the PP/APP, PP/APP/APES and PP/APP/APESP composites were prepared to analyze mechanical properties, morphologies and flame retardancy. Elongation at break of PP/APESP/APP was 334.79%, nearly four times as much as that of PP/APP. Scanning Electron Microscope (SEM) microphotographs indicated that the dispersion of APP in PP matrix was improved because of the loading of APESP. At the same time, LOI value of the composites with APESP levelled up from 21.7% to 26.5%, and UL 94 rating reached to V-2. The above experimental data demonstrated that the simulation strategy in this investigation is an effective path for molecular design and performance prediction of the flame retarded systems.
机译:通过原子和中尺度模拟研究了环三磷腈N_3P_3 [NH(CH_2)_3Si(OCH_2CH_3)_3] _6(APESP)在阻燃聚丙烯(PP)/聚磷酸铵(APP)复合材料中的相容性。利用分子动力学(MD)和耗散粒子动力学(DPD)模拟方法研究了结合能(E_(binding))。半径分布函数,氢键,Flory-Huggins参数(x)和复合材料的介观形态。结果表明,与γ-氨基丙基三乙氧基硅烷(APES)或六氯环三磷苯的负载量相比,由于环三磷腈衍生物APESP的负载,APP在PP基质中的相容性明显提高。在PP / APP / APESP中,APP和PP的E_(binding)值增加到161.45 kJ / mol,而在PP / APP中,则为2.82 kJ / mol。此外,MD曲线的最后一帧表明APP和APESP分子之间存在强氢键。 DPD数据表明,由于改善了界面相互作用,APESP使APP在PP基质中的分散和分布更加均匀。为了验证仿真结果,制备了PP / APP,PP / APP / APES和PP / APP / APESP复合材料,以分析其机械性能,形态和阻燃性。 PP / APESP / APP的断裂伸长率为334.79%,几乎是PP / APP的四倍。扫描电子显微镜(SEM)显微照片表明,由于APESP的负载,APP在PP基质中的分散性得到改善。同时,具有APESP的复合材料的LOI值从21.7%增至26.5%,UL 94等级达到V-2。上述实验数据表明,本研究中的模拟策略是分子设计和阻燃系统性能预测的有效途径。

著录项

  • 来源
    《Composites Science and Technology》 |2013年第11期|9-15|共7页
  • 作者单位

    National Engineering Research Center of Flame Retardant Materials, National Laboratory of Flame Retardant Materials, School of Materials, Beijing Institute of Technology, Beijing 100081, PR China;

    National Engineering Research Center of Flame Retardant Materials, National Laboratory of Flame Retardant Materials, School of Materials, Beijing Institute of Technology, Beijing 100081, PR China;

    National Engineering Research Center of Flame Retardant Materials, National Laboratory of Flame Retardant Materials, School of Materials, Beijing Institute of Technology, Beijing 100081, PR China;

    High School Affiliated to Beijing Institute of Technology, Beijing 100081, PR China;

    High School Affiliated to Beijing Institute of Technology, Beijing 100081, PR China;

    High School Affiliated to Beijing Institute of Technology, Beijing 100081, PR China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    A.Polymer-matrix composites (PMCs); B.Interphase; B.Mechanical properties; C.Multiscale modeling; Compatibility;

    机译:A.聚合物基复合材料(PMC);B.相间;机械性能C.多尺度建模兼容性;

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