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Article

Structural Design and Electromechanical Performance Verification of High-Voltage Optical Fiber Composite Insulators Based on Finite Element Simulation

1
Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen 518071, China
2
Electric Power Science Research Institute, State Grid Jibei Electric Power Co., Ltd., Beijing 102206, China
3
Beijing Grid Electric Power Technology Co., Ltd., Beijing 100005, China
*
Authors to whom correspondence should be addressed.
These authors contributed equally to this work.
Energies 2026, 19(5), 1202; https://doi.org/10.3390/en19051202
Submission received: 30 December 2025 / Revised: 17 February 2026 / Accepted: 25 February 2026 / Published: 27 February 2026

Abstract

Silicone rubber optical fiber composite insulators introduce interface defects due to embedded optical fibers, and their structural design remains immature, resulting in inadequate interface sealing performance. In actual operation, the combined effects of high electric fields, high humidity and heat, and mechanical loads lead to frequent failures. This study proposes replacing conventional silicone rubber with cycloaliphatic epoxy resin (CEP), which exhibits superior aging resistance, to enhance long-term operational reliability. However, the correlation mechanism between the structural parameters of CEP optical fiber insulators and their electromechanical properties remains unclear, lacking corresponding design basis. Therefore, based on finite element simulation technology, this study systematically analyzed the influence patterns of core rod diameter, fiber implantation method, spiral groove angle, fiber implantation quantity, and voltage equalization ring structural parameters (outer diameter, circular tube radius, shielding depth) on their mechanical and electrical properties. Research findings indicate that in terms of mechanical properties, the helical groove structure with a 40 mm core rod diameter, a groove angle of 135°, and six embedded optical fibers exhibits the lowest optical fiber strain. In terms of electrical performance, the minimum peak electric field strength at the end of the insulator occurs when the equalizing ring has an outer diameter of 370 mm, the circular tube radius is 25 mm, and the shielding depth is 50 mm, reaching only 4.6 kV/cm, which meets the requirements of DL/T 1000.3-2015. This study establishes optimization principles for key structural parameters of CEP optical fiber composite insulators, offering significant engineering value for enhancing the overall performance of optical fiber composite insulators and improving the operational safety of power systems.
Keywords: optical fiber composite insulator; cycloaliphatic-like epoxy resin; structural optimization optical fiber composite insulator; cycloaliphatic-like epoxy resin; structural optimization

Share and Cite

MDPI and ACS Style

Fu, J.; Gao, Y.; Wang, L.; Lu, Y.; Yin, F.; Huang, X.; Cai, D.; He, D.; Wang, K. Structural Design and Electromechanical Performance Verification of High-Voltage Optical Fiber Composite Insulators Based on Finite Element Simulation. Energies 2026, 19, 1202. https://doi.org/10.3390/en19051202

AMA Style

Fu J, Gao Y, Wang L, Lu Y, Yin F, Huang X, Cai D, He D, Wang K. Structural Design and Electromechanical Performance Verification of High-Voltage Optical Fiber Composite Insulators Based on Finite Element Simulation. Energies. 2026; 19(5):1202. https://doi.org/10.3390/en19051202

Chicago/Turabian Style

Fu, Jianbing, Yanfeng Gao, Liming Wang, Yi Lu, Fanghui Yin, Xiaolong Huang, Dexuan Cai, Dongsheng He, and Kang Wang. 2026. "Structural Design and Electromechanical Performance Verification of High-Voltage Optical Fiber Composite Insulators Based on Finite Element Simulation" Energies 19, no. 5: 1202. https://doi.org/10.3390/en19051202

APA Style

Fu, J., Gao, Y., Wang, L., Lu, Y., Yin, F., Huang, X., Cai, D., He, D., & Wang, K. (2026). Structural Design and Electromechanical Performance Verification of High-Voltage Optical Fiber Composite Insulators Based on Finite Element Simulation. Energies, 19(5), 1202. https://doi.org/10.3390/en19051202

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