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Preparation of PVC/Kaolin Nanocomposites through Solid State Shear Compounding Based on Pan-milling

机译:潘铣固相剪切复合制备PVC /高岭土纳米复合材料。

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摘要

Solid state shear compounding technology (S3C) based on pan-milling is an effective method to prepare polymer/layered mineral composites with nano intercalating structure. The PVC/Kaolin compounding powders were successfully prepared by pan-milling at ambient temperature, and then the PVC/Kaolin nanocomposites were processed by moulding The structure and properties of PVC/Kaolin compounding powder and nanocomposites were investigated by X-ray Diffraction (XRD), Scanning Electron Microscopy (SEM), Transmission Electron Microscopy (TEM) and mechanical tests. The results showed that the mechanical properties of PVC/Kaolin nanocomposites prepared through S3C based on pan-milling 30 cycles at ambient temperature including elongation, tensile strength and notched impact strength were remarkably improved compared with conventional filled composites. The elongation of PVC / Kaolin nanocomposites with 4 %wt. Kaolin was 274.6%, which is 187.3 % higher than that for a conventional filled composite. The tensile strength was 54.0 MPa, which is 6.3 MPa higher than that for a conventional filled composite. The tensile strength of the nanocomposites with 8 %wt. Kaolin was 57.5 MPa, which is 9.1 MPa higher than that for a conventional filled composite. At the same time, the notched impact strength was 4.9 kJ/m2, which is 1.0 kJ/m2 higher than a conventional filled composite. Strengthening and toughening for PVC were synchronously realized. XRD, SEM and TEM verified that S3C based on pan-milling realized synchronously pulverizing, dispersion and compounding of PVC with kaolin Through 25-30 cycles pan-milling, PVC and Kaolin powders imbedded each other and made into uniform PVC/Kaolin compounding powders and nanocomposites. The strip flake of Kaolin particles with thickness less than 50 nanometer and the aspect ratio of 10 times dispersed homogeneously in the PVC matrix.
机译:基于平磨的固态剪切复合技术(S3C)是制备具有纳米插层结构的聚合物/层状矿物复合材料的有效方法。通过室温碾磨成功制备了PVC /高岭土复合粉体,然后通过成型加工了PVC /高岭土纳米复合材料。X射线衍射(XRD)研究了PVC /高岭土复合粉体和纳米复合材料的结构与性能。 ,扫描电子显微镜(SEM),透射电子显微镜(TEM)和机械测试。结果表明,与常规的填充复合材料相比,在室温下通过S3C进行30次循环碾磨而制备的PVC /高岭土纳米复合材料的力学性能包括伸长率,拉伸强度和缺口冲击强度显着提高。 PVC /高岭土纳米复合材料的伸长率为4%。高岭土为274.6%,比传统的填充复合材料高187.3%。拉伸强度为54.0 MPa,比传统的填充复合材料高6.3 MPa。纳米复合材料的抗张强度为8%。高岭土为57.5 MPa,比常规的填充复合材料高9.1 MPa。同时,缺口冲击强度为4.9 kJ / m2,比常规填充复合材料高1.0 kJ / m2。同步实现了PVC的增强和增韧。 XRD,SEM和TEM证实,基于Pan-milling的S3C实现了PVC与高岭土的同步粉碎,分散和复合。通过25-30次循环研磨,将PVC和高岭土粉末相互包埋,制成了均匀的PVC / Kaolin复合粉末。纳米复合材料。厚度小于50纳米,长径比为10倍的高岭土颗粒的条状薄片均匀地分散在PVC基质中。

著录项

  • 来源
  • 会议地点 Kunming(CN);Kunming(CN)
  • 作者单位

    College of Chemistry and Chemical Engineering, Polymer Research Institute of Xi'an University of Science and Technology, Xi'an, 710054, China,The State Key Laboratory of Polymer Materials Engineering (Sichuan University), Chengdu, 610065,China;

    The State Key Laboratory of Polymer Materials Engineering (Sichuan University), Chengdu, 610065,China;

    College of Chemistry and Chemical Engineering, Polymer Research Institute of Xi'an University of Science and Technology, Xi'an, 710054, China;

    College of Chemistry and Chemical Engineering, Polymer Research Institute of Xi'an University of Science and Technology, Xi'an, 710054, China;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料一般性问题;
  • 关键词

    polyvinyl chloride (PVC); kaolin; nanocomposites; solid state shear compounding (S~3C); pan-milling;

    机译:聚氯乙烯(PVC);高岭土纳米复合材料;固态剪切配混(S〜3C);泛铣;

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