Impregnation Model and Experimental Study of Mineral Oil/Meta-Aramid Paper Combination Insulation

被引:0
|
作者
Fan, Xiaozhou [1 ]
Sun, Zekun [1 ]
Zhang, Xinwei [1 ]
Bi, Hanwen [1 ]
Xiao, Hai [1 ]
Lv, Fangcheng [1 ]
机构
[1] North China Elect Power Univ, Hebei Prov Key Lab Power Transmiss Equipment Secur, Baoding 071003, Peoples R China
关键词
Insulation; Insulators; Oils; Viscosity; Power transformer insulation; Oil insulation; Minerals; Meta-aramid; multilayer insulation paper; normal-direction impregnation; oil-paper insulation; surfacewise impregnation; transformer bushing; TRANSFORMER BOARDS; OIL IMPREGNATION;
D O I
10.1109/TDEI.2024.3381092
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Meta-aramid paper is considered as an ideal insulation material for the next generation of oil-paper internal insulation for oil-impregnated-paper bushings (OIP bushings) due to its excellent insulation performance and far superior high-temperature resistance compared with the cellulose paper. In the production process of OIP bushings, in order to improve the insulation performance, the insulation paper is usually pre-impregnated with insulation oil in the manufacturing process to fully fill the internal air gaps and capillaries, greatly improving the thermal conductivity and insulation strength of the oil-paper insulation system. To explore the impregnation law of the new-type mineral oil/meta-aramid paper insulation system, this article analyzed the impregnation mechanism, where the internal pressure, insulation oil viscosity, and capillary gravity were regarded as the main factors affecting the impregnation process of oil-paper insulation. After obtaining the influencing factors, a study on the impregnation rate of single-layer insulation paper was first carried out, and experimental models for surfacewise and normal-direction impregnation were designed. Through experiments, the impregnation rates of mineral oil with different types of aramid paper at different temperatures were obtained, based on which a calculation formula was proposed to quantitatively calculate the time required for full impregnation of different types of insulation paper at different temperatures. Then, a miniaturized bushing capacitor core model was wound using Nomex T410 insulation paper. The multilayer insulation paper impregnation rate experiment was conducted, and the time required for the bushing model to fully impregnate along the surface and normal directions under different temperature conditions was calculated. The experimental results verified the correctness of the proposed time calculation model, and it was confirmed that 60 degrees C can be selected as the best impregnation temperature for Nomex T410, effectively increasing the impregnation speed by 51.406%, in order to achieve the goal of not increasing the production cost caused by excessive impregnation temperature while increasing the impregnation speed. The adequacy of impregnation and the correctness of the calculation model were further verified by measuring the dielectric loss and capacitance of the bushing model after impregnation. This study provides important data support for the production and application of a new-type oil-paper insulation system in high-voltage transformer bushings.
引用
收藏
页码:2003 / 2012
页数:10
相关论文
共 50 条
  • [21] Effect of Moisture on Mechanical Properties and Thermal Stability of Meta-Aramid Fiber Used in Insulating Paper
    Yin, Fei
    Tang, Chao
    Li, Xu
    Wang, Xiaobo
    POLYMERS, 2017, 9 (10)
  • [22] Effect of nano-SiO2 particles modified by 3-aminopropyltriethyloxy silane on mechanical properties and thermal stability of meta-aramid insulation paper
    Li, Xu
    Li, Zhiwei
    Liu, Jinghong
    Bai, Hao
    Yuan, Xueshi
    Shen, Yin
    Luo, Xinxin
    Xiong, Bifeng
    Xie, Jingyu
    Wang, Jingna
    Tang, Chao
    MOLECULAR SIMULATION, 2021, 47 (16) : 1349 - 1357
  • [23] Closed loop recycling of electrically damaged meta-aramid papers with high electrical insulation and mechanical strength
    Lv, Fangcheng
    Fu, Lvqian
    Wang, Qibin
    Sun, Kaixuan
    Yang, Rui
    Fan, Sidi
    Yu, Xiang
    COMPOSITES SCIENCE AND TECHNOLOGY, 2024, 254
  • [24] Experimental Simulation of Effects of High Temperatures on Paper oil Insulation of Transformers in Presence of DBDS in Mineral Oil
    Flora, S. Daisy
    Thirumurthy
    Meena, K. P.
    Rajan, J. Sundara
    IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2017, 24 (05) : 2819 - 2827
  • [25] Synthesis of modified meta-aramid and study on it's heat-resistant properties
    State Key Laboratory for Modification of Polymeric Fibers and Materials, Donghua University, Shanghai 200051, China
    Hua Dong Li Gong Da Xue/J East China Univ Sci Technol, 2006, 1 (55-59):
  • [26] Effect of organophilic group of coupling agent on the electrical performance of Boron Nitride/meta-aramid composite paper
    Ruan, Haoou
    Xie, Qing
    Song, Jingxuan
    Wang, Shenghui
    Chang, Xiaobin
    Xu, Yuqin
    Lu, Fangcheng
    HIGH VOLTAGE, 2023, 8 (04) : 760 - 771
  • [27] Partial Discharge Inception Voltage Tests of Meta-aramid Paper Under Sinusoidal and Repetitive Square Voltages
    Zhao W.
    Wang P.
    Zhongguo Dianji Gongcheng Xuebao/Proceedings of the Chinese Society of Electrical Engineering, 2023, 43 (07): : 2858 - 2866
  • [28] A New Mathematical Model of Moisture Equilibrium in Mineral and Vegetable Oil-Paper Insulation
    Li, Jian
    Zhang, Zhaotao
    Grzybowski, Stanislaw
    Zahn, Markus
    IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2012, 19 (05) : 1615 - 1622
  • [29] Flexible and conductive meta-aramid fiber paper with high thermal and chemical stability for electromagnetic interference shielding
    Zhou, Yanfen
    Sun, Zhenhua
    Jiang, Liang
    Chen, Shaojuan
    Ma, Jianwei
    Zhou, Fenglei
    APPLIED SURFACE SCIENCE, 2020, 533
  • [30] Preparation of high breakdown strength meta-aramid composite paper reinforced by polyphenylene sulfide superfine fiber
    Zhao, Yuzhen
    Yao, Songjun
    Xiong, Siwei
    Li, Bingyang
    Wang, Xuyi
    Yang, Feihua
    Jia, Yingbin
    Wang, Luoxin
    Wang, Hua
    POLYMER ENGINEERING AND SCIENCE, 2023, 63 (05): : 1579 - 1587