基于 3D-Fick 模型的复合绝缘子用玻璃纤维增强环氧树脂材料吸湿特性研究

IF 4.4 2区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC High Voltage Pub Date : 2024-03-19 DOI:10.1049/hve2.12433
Yuming Zhang, Yunpeng Liu, Sizu Hou, Jianghai Geng, Ping Wang
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引用次数: 0

摘要

长期暴露在潮湿环境中会导致复合绝缘子中的玻璃纤维增强环氧树脂(GFRP)材料性能逐渐下降,使用寿命缩短。因此,有必要对玻璃纤维增强环氧树脂材料的吸湿特性及其内部界面特性的损坏演变进行分析。对复合绝缘子中使用的 GFRP 棒材料进行了吸湿测试,以获得其三维扩散系数。然后采用原子力显微镜获取复合材料系统的纤维/基体界面相参数。此外,还建立了一个包含界面相代表性体积元素的有限元模型,以及复合材料的中尺度瞬态吸湿有限元模型。最后,研究了热湿循环条件下 GFRP 材料的吸湿特性和界面相的损伤演变。结果表明,GFRP 材料沿纤维方向的扩散系数高于垂直方向的扩散系数。包含各向异性界面相的湿气扩散有限元模型更准确地拟合了 GFRP 材料的各向异性扩散系数。随着湿气侵入 GFRP 材料,错配应力在吸湿过程中不断增加。此外,由于纤维排列不均匀,材料内部的湿应力分布不均,导致基体中纤维排列密集区域的错配应力更高。长时间的高低湿度循环导致 GFRP 材料界面沿纤维方向出现微裂纹、微孔和界面脱粘,从而影响了材料的各向异性吸湿特性。这项研究的结果为了解复合绝缘子棒中的 GFRP 材料因湿度降解而退化的内在机制提供了宝贵的见解。
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Study on moisture absorption characteristics of glass fibre-reinforced epoxy resin material for composite insulators based on the 3D-Fick model

Long-term exposure to moisture leads to a gradual deterioration of performance and reduced service life of glass fibre-reinforced epoxy resin (GFRP) material in composite insulators. Therefore, it is necessary to analyse the moisture absorption characteristics of GFRP material and the evolution of damage to their internal interface properties. Moisture absorption tests on GFRP rod material used in composite insulators to obtain their three-dimensional diffusion coefficients are conducted. Atomic force microscopy was then employed to obtain the composite material system's fibre/matrix interfacial phase parameters. Furthermore, a finite element model incorporating representative volume elements with interfacial phases and a mesoscale transient moisture absorption finite element model for the composite material was established. Finally, the moisture absorption characteristics of GFRP material and the evolution of damage to the interfacial phase under thermal-humidity cycling conditions were investigated. The results showed that the diffusion coefficient along the fibre direction in GFRP material was higher than that in the perpendicular direction. The moisture diffusion finite element model, incorporating an anisotropic interfacial phase, fitted the anisotropic diffusion coefficients of GFRP material more accurately. As moisture invaded the GFRP material, the mismatch stresses continuously increased during the moisture absorption. Moreover, the non-uniform arrangement of fibres resulted in uneven distribution of moisture-induced stresses inside the material, leading to higher mismatch stresses in areas with dense fibre arrangements in the matrix. Prolonged high and low humidity cycles led to the development of micro-cracks, micro-porosity, and interface debonding along the fibre direction at the GFRP material interfaces, thereby affecting the anisotropic moisture absorption characteristics of the material. The findings of this study provide valuable insights into the mechanisms underlying the deterioration of GFRP material in composite insulator rods due to moisture degradation.

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来源期刊
High Voltage
High Voltage Energy-Energy Engineering and Power Technology
CiteScore
9.60
自引率
27.30%
发文量
97
审稿时长
21 weeks
期刊介绍: High Voltage aims to attract original research papers and review articles. The scope covers high-voltage power engineering and high voltage applications, including experimental, computational (including simulation and modelling) and theoretical studies, which include: Electrical Insulation ● Outdoor, indoor, solid, liquid and gas insulation ● Transient voltages and overvoltage protection ● Nano-dielectrics and new insulation materials ● Condition monitoring and maintenance Discharge and plasmas, pulsed power ● Electrical discharge, plasma generation and applications ● Interactions of plasma with surfaces ● Pulsed power science and technology High-field effects ● Computation, measurements of Intensive Electromagnetic Field ● Electromagnetic compatibility ● Biomedical effects ● Environmental effects and protection High Voltage Engineering ● Design problems, testing and measuring techniques ● Equipment development and asset management ● Smart Grid, live line working ● AC/DC power electronics ● UHV power transmission Special Issues. Call for papers: Interface Charging Phenomena for Dielectric Materials - https://digital-library.theiet.org/files/HVE_CFP_ICP.pdf Emerging Materials For High Voltage Applications - https://digital-library.theiet.org/files/HVE_CFP_EMHVA.pdf
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