首页> 外文期刊>Materials science forum >Incorporation of Hybrid Pre-Dispersed Organo-Montmorillonite/Destabilized Bentonite Nanofillers for Improving Tensile Strength of PEVA Copolymer with 40% Vinyl Acetate Composition
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Incorporation of Hybrid Pre-Dispersed Organo-Montmorillonite/Destabilized Bentonite Nanofillers for Improving Tensile Strength of PEVA Copolymer with 40% Vinyl Acetate Composition

机译:掺入杂种预分散的有机锰矿/不稳定的膨润土纳米填料,用于提高Peva共聚物的拉伸强度,具有40%乙酸乙烯酯组合物

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摘要

In this work, soft and flexible poly (ethylene-co-vinyl acetate) (PEVA) with 40% vinyl acetate (VA) composition was used as matrix material to form nanocomposites with single nanofiller (organo-montmorillonite (OMMT) or Bentonite (Bent)) and hybrid nanofillers (OMMT+Bent in the ratios of 4∶1, 3∶2, 2∶3 and 1∶4). In order to achieve greater exfoliation and dispersion of the hybrid nanofillers in the PEVA matrix, the pre- dispersing and destabilization technique was applied to the O-MMT and Bent, respectively. The procedures were done prior to the melt compounding process of the nanocomposite. A tensile test was done to evaluate the mechanical properties of the resultant nanocomposites and to allow the selection of the best OMMT/Bent ratio for the production of the hybrid nanocomposite. The structure and fractured surfaces of the neat PEVA and nanocomposite were analyzed using Fourier Transform Infrared (FTIR) and Scanning Electron Microscopy (SEM), respectively. Results indicated that the addition of hybrid pre-dispersed OMMT/destabilized bentonite nanofillers into the PEVA matrix resulted in greater mechanical performance as compared to the single OMMT or single Bent nanofiller. The best achievement in the tensile strength and elongation at break of the PEVA hybrid nanocomposite was obtained when the hybrid nanofillers was added in the ratio of 4∶1 (OMMT: Bent). The SEM analysis showed that the PEVA hybrid nanocomposite with 4OMMT: 1Bent had greater matrix deformation than the neat PEVA when subjected to tensile load. This mechanical deformation could be related to the increased flexibility of the PEVA chains which facilitated more energy absorption during the stretching of the material. Apparently, this mechanism acted as a matrix toughening process which allowed the increment of both tensile strength and elongation at break values of the PEVA upon the addition of the hybrid nanofillers.
机译:在该工作中,使用具有40%乙酸乙烯酯(Va)组合物的软和柔性聚(乙烯 - 乙烯基乙酸乙烯酯)(PEVA)作为基质材料,以形成具有单纳米填充物的纳米复合材料(Organo-montmorillonite(OMMT)或膨润土(弯曲)))和杂交纳米填充物(在4:1,3:2,2:3和1:4的比率中弯曲弯曲)。为了在PEVA基质中获得更高的杂交纳米填料的剥离和分散,将预分散和稳定化技术分别施加到O-MMT和弯曲。该程序在纳米复合材料的熔融配合方法之前完成。进行拉伸试验以评价所得纳米复合材料的机械性能,并允许选择杂化纳米复合材料的最佳OMMT /弯曲比。使用傅里叶变换红外(FTIR)和扫描电子显微镜(SEM)分析整齐Peva和纳米复合材料的结构和裂缝表面。结果表明,与单轴或单弯纳米孔相比,将杂种预先分散的OMMT /稳定的膨润土纳米填料加入PEVA基质中导致更大的机械性能。当以4:1(OMMT:弯曲)的比例加入杂合纳米氧化物时,获得了Peva杂交纳米复合材料的抗拉强度和断裂处的伸长率的最佳成果。 SEM分析表明,具有4MMT的PEVA杂交纳米复合材料:1,当受到拉伸载荷时,具有比整齐PEVA更大的基质变形。这种机械变形可能与Peva链的柔韧性增加有关,其促进了在材料拉伸期间的能量吸收。显然,这种机制充当了基质增韧过程,其在加入杂交纳米填充物时允许抗拉强度的增量和Peva断裂值处的伸长率。

著录项

  • 来源
    《Materials science forum》 |2020年第1期|118-123|共6页
  • 作者单位

    Center of Excellence Geopolymer and Green Technology (CEGeoGTech) School of Materials Engineering Universiti Malaysia Perlis 02600 Arau Perlis Malaysia;

    Center of Excellence Geopolymer and Green Technology (CEGeoGTech) School of Materials Engineering Universiti Malaysia Perlis 02600 Arau Perlis Malaysia;

    School of Bioprocess Engineering Universiti Malaysia Perlis 02600 Arau Perlis Malaysia;

    Fakulti Kejuruteraan Pembuatan Universiti Teknikal Malaysia (UTeM) Hang Tuah Jaya 76100 Durian Tunggal Melaka Malaysia;

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

    Bentonite; Hybrid nanofillers; Organo-montmorillonite; Poly(ethylene-co-vinyl acetate);

    机译:膨润土;杂交纳米填料;有机莫尔米尔尼岩;聚(乙烯 - 乙烯基乙酸乙烯酯);

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