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首页> 外文期刊>Journal of Applied Polymer Science >Improved creep performance of melt-extruded polycaprolactone/organo-bentonite nanocomposites
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Improved creep performance of melt-extruded polycaprolactone/organo-bentonite nanocomposites

机译:改善了熔融挤出的聚己内酯/有机膨润土纳米复合材料的蠕变性能

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摘要

In this work, biodegradable nanocomposites based on polycaprolactone reinforced with pristine and organo-modified bentonites are prepared by melt extrusion. Bentonite is exchanged with benzalkonium chloride (CBK) in a pilot plant scale reactor. The influence of clay type and loading on morphology, rheology, mechanical properties, and creep performance of the resulting materials is analyzed. Besides, several theoretical models then applied to experimental creep data and master curves are used to relate time and temperature with the compliance of the materials. The morphology characterization of the nanocomposites show that the organo-modification of the clay greatly improves its dispersion in the polymer matrix. As a consequence, it is demonstrated that reinforcement of PCL with 3 wt% loading of organoclay produces the strongest improvement in creep resistance. The instantaneous creep strain and the experimental creep rate decrease more than 9% and 27%, respectively, in the range of temperatures analyzed. Moreover, the experimental values are used to adequately fit theoretical creep models for different clay loadings. On the other hand, the material with optimal creep behavior also shows the greatest improvements in tensile mechanical properties.
机译:本研究采用熔融挤出法制备了以聚己内酯为基料、有机改性膨润土为增强剂的可生物降解纳米复合材料。在中试规模的反应器中,膨润土与苯扎氯铵(CBK)交换。分析了粘土类型和荷载对所得材料的形态、流变学、力学性能和蠕变性能的影响。此外,将几个理论模型应用于实验蠕变数据和主曲线,将时间和温度与材料的柔度联系起来。纳米复合材料的形貌表征表明,粘土的有机改性大大改善了其在聚合物基体中的分散性。结果表明,有机粘土负载量为3 wt%时,PCL的增强对抗蠕变性能的改善最强。在分析的温度范围内,瞬时蠕变应变和实验蠕变率分别降低了9%和27%以上。此外,试验值被用于充分拟合不同粘土荷载下的理论蠕变模型。另一方面,具有最佳蠕变行为的材料在拉伸力学性能方面也表现出最大的改善。

著录项

  • 来源
    《Journal of Applied Polymer Science》 |2021年第38期|共11页
  • 作者单位

    Univ Mar del Plata UNMdP Inst Invest Ciencia &

    Tecnol Mat INTEMA Consejo Nacl Invest Cient &

    Tecn CONICET Av Colon 10850 RA-7600 Mar Del Plata Argentina;

    Univ Mar del Plata UNMdP Inst Invest Ciencia &

    Tecnol Mat INTEMA Consejo Nacl Invest Cient &

    Tecn CONICET Av Colon 10850 RA-7600 Mar Del Plata Argentina;

    Univ Mar del Plata UNMdP Inst Invest Ciencia &

    Tecnol Mat INTEMA Consejo Nacl Invest Cient &

    Tecn CONICET Av Colon 10850 RA-7600 Mar Del Plata Argentina;

    Univ Mar del Plata UNMdP Inst Invest Ciencia &

    Tecnol Mat INTEMA Consejo Nacl Invest Cient &

    Tecn CONICET Av Colon 10850 RA-7600 Mar Del Plata Argentina;

    Univ Mar del Plata UNMdP Inst Invest Ciencia &

    Tecnol Mat INTEMA Consejo Nacl Invest Cient &

    Tecn CONICET Av Colon 10850 RA-7600 Mar Del Plata Argentina;

    Univ Mar del Plata UNMdP Inst Invest Ciencia &

    Tecnol Mat INTEMA Consejo Nacl Invest Cient &

    Tecn CONICET Av Colon 10850 RA-7600 Mar Del Plata Argentina;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 高分子化合物工业(高聚物工业);
  • 关键词

    biodegradable; creep; extrusion; mechanical properties; nanocrystals; nanoparticles;

    机译:可生物降解;蠕变;挤出;机械性能;纳米晶体;纳米粒子;

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