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Article

Monitoring and Simulation of Curing-Induced Residual Strain in Epoxy Core of Ultra-High-Voltage Bushing

1
State Grid Sichuan Electric Power Company Electric Power Research Institute, Chengdu 610041, China
2
State Grid Sichuan Ultra High Voltage Branch, Chengdu 610041, China
*
Author to whom correspondence should be addressed.
Energies 2026, 19(11), 2718; https://doi.org/10.3390/en19112718
Submission received: 20 April 2026 / Revised: 6 May 2026 / Accepted: 28 May 2026 / Published: 4 June 2026
(This article belongs to the Special Issue Simulation and Analysis of Electrical Power Systems—2nd Edition)

Abstract

The UHV dry-type bushing plays a critical role in power transmission by enabling electrical connection, electrical insulation, and mechanical support, making it a core component for ensuring the safe and stable operation of UHV direct current (DC) transmission projects. Epoxy resin, serving as the fundamental insulating material for the bushing core, undergoes significant residual strain during high-temperature curing due to chemical shrinkage and thermal strain, which directly affects the molding quality and service reliability of the component. This paper investigates the curing process of a large-thickness epoxy material, which is on the same scale as a UHV bushing. An in situ monitoring system combining fiber Bragg grating (FBG) sensors and thermocouples, together with COMSOL Multiphysics simulations, is employed to systematically study the evolution of the temperature field and residual strain throughout the entire curing process, considering the demolding effect. The results show that during the curing stage, the internal temperature distribution is non-uniform, with a maximum temperature difference of 65 °C between the center and the edge. The residual strain is dominated by chemical shrinkage (accounting for 73.25%) and exhibits a pronounced radial gradient. Mold constraint and demolding cause abrupt changes in the strain. The developed thermo-chemo-mechanical coupled model shows good agreement between simulations and experimental measurements. Thermal cycling relaxes the residual stress, achieving a reduction of 3.89–5.77%. This study provides support for process optimization and defect prevention in large-scale epoxy insulation components.
Keywords: ultra-high voltage (UHV) dry-type bushing; epoxy resin; curing process; residual strain; fiber Bragg grating (FBG); in situ monitoring; thermal cycling ultra-high voltage (UHV) dry-type bushing; epoxy resin; curing process; residual strain; fiber Bragg grating (FBG); in situ monitoring; thermal cycling

Share and Cite

MDPI and ACS Style

Zhang, Y.; Liu, R.; Feng, Y.; Liao, W.; Mu, Z.; Yang, Y.; Wang, Z.; Yan, L.; Nie, H. Monitoring and Simulation of Curing-Induced Residual Strain in Epoxy Core of Ultra-High-Voltage Bushing. Energies 2026, 19, 2718. https://doi.org/10.3390/en19112718

AMA Style

Zhang Y, Liu R, Feng Y, Liao W, Mu Z, Yang Y, Wang Z, Yan L, Nie H. Monitoring and Simulation of Curing-Induced Residual Strain in Epoxy Core of Ultra-High-Voltage Bushing. Energies. 2026; 19(11):2718. https://doi.org/10.3390/en19112718

Chicago/Turabian Style

Zhang, Yu, Rui Liu, Yun Feng, Wenlong Liao, Zhou Mu, Yueping Yang, Zhenyu Wang, Lei Yan, and Hongyu Nie. 2026. "Monitoring and Simulation of Curing-Induced Residual Strain in Epoxy Core of Ultra-High-Voltage Bushing" Energies 19, no. 11: 2718. https://doi.org/10.3390/en19112718

APA Style

Zhang, Y., Liu, R., Feng, Y., Liao, W., Mu, Z., Yang, Y., Wang, Z., Yan, L., & Nie, H. (2026). Monitoring and Simulation of Curing-Induced Residual Strain in Epoxy Core of Ultra-High-Voltage Bushing. Energies, 19(11), 2718. https://doi.org/10.3390/en19112718

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