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Enhanced mechanical properties and thermal stability of cellulose insulation paper achieved by doping with melamine-grafted nano-SiO2

机译:通过用三聚氰胺接枝纳米-SiO2掺杂实现纤维素绝缘纸的力学性能和热稳定性

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摘要

In the long-term operation of power transformer, the traditional cellulose insulation paper undergoes aging phenomena, making it difficult for this type of paper to meet severe insulation requirements. In this study, cellulose is modified by doping with melamine-grafted nano-SiO2, and cellulose/water (C-H2O), nano-SiO2-modified cellulose/water (CN-H2O) and melamine-grafted nano-SiO2-modified cellulose/water (CAN-H2O) models are developed. The results show that the mechanical properties of CN-H2O and CAN-H2O are improved relative to those of C-H2O and that CAN-H2O exhibits the best mechanical properties. Furthermore, the glass transition temperatures of CN-H2O and CAN-H2O are, respectively, 39 and 69 K, higher than that of C-H2O. Near the glass transition temperature, the mean square displacement of the water molecules changes considerably. Therefore, increasing the glass transition temperature and thus the thermal stability of cellulose can be achieved by modifying cellulose with melamine-grafted SiO2 nanoparticles. Experimental studies show that with an increase in the aging time, the moisture content in the modified insulation paper will be less than that in the unmodified insulation paper, while the tensile strength, degree of polymerization (DP) and breakdown strength were greater than that in the unmodified insulation paper. In particular, the melamine-grafted nano-SiO2-modified insulation paper has the lowest moisture content and highest tensile strength DP and breakdown strength during the entire aging time. Thus, this study shows that the thermal stability and electrical characteristics of the melamine-grafted nano-SiO2-modified insulation paper is the highest at both the microscopic and macroscopic levels, indicating that this insulation paper could meet the insulation performance requirements of large transformers under high-temperature and high-pressure conditions.
机译:在电力变压器的长期运行中,传统的纤维素绝缘纸进行了老化现象,使这种类型的纸张难以满足严重的绝缘要求。在该研究中,通过用三聚氰胺接枝的纳米SiO 2掺杂和纤维素/水(C-H2O),纳米-SiO 2改性纤维素/水(CN-H2O)和三聚氰胺 - 接枝纳米-SiO2改性纤维素来改变纤维素/水(CAN-H2O)型号开发。结果表明,相对于C-H2O的那些,CN-H 2 O和CAN-H2O的机械性能得到改善,并且CAN-H2O表现出最佳的机械性能。此外,CN-H 2 O和CAN-H 2 O的玻璃化转变温度分别为39和69K,高于C-H 2 O的69 k。在玻璃化转变温度附近,水分子的平均方形位移大大变化。因此,通过用三聚氰胺接枝的SiO2纳米颗粒改性纤维素,可以增加玻璃化转变温度,从而提高纤维素的热稳定性。实验研究表明,随着老化时间的增加,改性绝缘纸中的水分含量将小于未改性绝缘纸中的水分含量,而抗拉强度,聚合程度(DP)和击穿强度大于其未改性的绝缘纸。特别地,三聚氰胺接枝的纳米-SiO2改性的绝缘纸具有最低的含水量和最高的抗拉强度DP和在整个老化时间期间的击穿强度。因此,该研究表明,三聚氰胺接枝的纳米SiO2改性绝缘纸的热稳定性和电气特性是微观和宏观水平的最高,表明该绝缘纸可以满足大型变压器的绝缘性能要求高温和高压条件。

著录项

  • 来源
    《Cellulose》 |2018年第6期|共15页
  • 作者单位

    Southwest Univ Coll Engn &

    Technol Chongqing 400715 Peoples R China;

    Southwest Univ Coll Engn &

    Technol Chongqing 400715 Peoples R China;

    Southwest Univ Coll Engn &

    Technol Chongqing 400715 Peoples R China;

    Chongqing Univ State Key Lab Power Transmiss Equipment &

    Syst Se Chongqing 400044 Peoples R China;

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

    Nano-SiO2; Melamine; Cellulose; Doping; Insulation paper;

    机译:纳米SiO2;三聚氰胺;纤维素;掺杂;绝缘纸;

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