Preparation and application of corona noise-suppressing anti-shedding materials for UHV transmission lines

IF 1.9 4区 材料科学 Q3 Materials Science
Xiangyu Cui, Xin Shi, Xiaobang Hou, Jianguang Yin, Fangwei Li, Yuwei Zang, Jingchuan Hu, Lianke Xie, Jiashun Peng
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Abstract

Abstract With the continuous expansion of the construction scale of the State Grid and the gradual improvement of people’s awareness of environmental protection, the power contradictions and disputes caused by the North–South Power Transmission and Transformation Project have become increasingly prominent, which has attracted widespread attention from all walks of life. This study focuses on the development of conductive silicone gel for UHV transmission lines using carbon fiber (CF) powder, carbon black (CB), and carbon nanotubes as fillers, and organic silicone polymer as the matrix. The aim was to address the issues of corona noise and detachment. We prepared a series of conductive silicone gels with different proportions of CF and CB conductive fillers and conducted a comprehensive analysis of their electrical conductivity, tensile performance, hydrophobicity, and rheological properties. The research results demonstrated that the maximum electrical conductivity of the conductive silicone gel was achieved when the CF and CB contents reached a ratio of 2:1. In the case of a 70% organic silicone polymer gel, the electrical conductivity reached 0.73 S/cm, while it increased to 1.17 S/cm in an 80% organic silicone polymer gel. This indicates that optimizing the proportion of fillers can significantly enhance the electrical conductivity of the conductive silicone gel, meeting the requirements of UHV transmission lines. Additionally, the study evaluated the tensile performance, hydrophobicity, and rheological properties of the conductive silicone gel. The results showed that the 70% organic silicone polymer gel exhibited a tensile strength, Young’s modulus, and elongation at a break of 678.6 MPa, 1.3 MPa, and 15.22%, respectively. The corresponding values for the 80% organic silicone polymer gel were 129.9 MPa, 1.6 MPa, and 55.89%. This indicates that the conductive silicone gel possesses excellent mechanical properties and ductility, enabling it to withstand stress and deformation in UHV transmission lines while providing anti-detachment effects. In summary, this study successfully developed a conductive silicone gel that meets the requirements of UHV transmission lines. By optimizing the ratio of CF and CB contents, the electrical conductivity of the gel was maximized. Furthermore, the conductive silicone gel exhibited favorable tensile performance, electrical conductivity, and anti-detachment effects, effectively addressing corona noise and detachment issues in UHV transmission lines. These research findings are of great significance for the design and application of UHV transmission lines.
特高压输电线路电晕降噪防脱落材料的制备及应用
随着国家电网建设规模的不断扩大和人们环保意识的逐步提高,南北输变电工程引发的电力矛盾和纠纷日益突出,引起了社会各界的广泛关注。本研究主要以碳纤维(CF)粉、炭黑(CB)、碳纳米管为填料,有机硅聚合物为基体,开发特高压输电线路用导电硅凝胶。目的是解决电晕噪声和分离问题。我们用不同比例的CF和CB导电填料制备了一系列导电硅胶,并对其电导率、拉伸性能、疏水性和流变性能进行了综合分析。研究结果表明,当CF与CB含量为2:1时,导电硅胶的导电性达到最大。在70%有机硅聚合物凝胶中,电导率达到0.73 S/cm,而在80%有机硅聚合物凝胶中,电导率提高到1.17 S/cm。这表明,优化填料配比可以显著提高导电硅胶的导电性,满足特高压输电线路的要求。此外,研究还评估了导电硅胶的拉伸性能、疏水性和流变性能。结果表明:70%有机硅聚合物凝胶的抗拉强度、杨氏模量和断裂伸长率分别为678.6 MPa、1.3 MPa和15.22%;80%有机硅聚合物凝胶的对应值分别为129.9 MPa、1.6 MPa和55.89%。这表明导电硅凝胶具有优异的机械性能和延展性,使其能够承受特高压输电线路中的应力和变形,同时提供防脱离效果。综上所述,本研究成功研制出一种满足特高压输电线路要求的导电硅胶。通过优化CF和CB含量的比例,使凝胶的电导率达到最大。此外,导电硅胶具有良好的拉伸性能、导电性和抗脱离效果,可有效解决特高压输电线路中的电晕噪声和脱离问题。这些研究成果对特高压输电线路的设计和应用具有重要意义。
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来源期刊
Science and Engineering of Composite Materials
Science and Engineering of Composite Materials 工程技术-材料科学:复合
CiteScore
3.10
自引率
5.30%
发文量
0
审稿时长
4 months
期刊介绍: Science and Engineering of Composite Materials is a quarterly publication which provides a forum for discussion of all aspects related to the structure and performance under simulated and actual service conditions of composites. The publication covers a variety of subjects, such as macro and micro and nano structure of materials, their mechanics and nanomechanics, the interphase, physical and chemical aging, fatigue, environmental interactions, and process modeling. The interdisciplinary character of the subject as well as the possible development and use of composites for novel and specific applications receives special attention.
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