Abstract

Power transmission technology plays an important role in energy sustainability. Bushing is an indispensable type of equipment in power transmission. In production, the accelerator changes the temperature distribution during the curing process, influencing the formation of defects and thus the safety output of renewable energy. In this study, uncured epoxy resin samples with different accelerator contents were prepared and measured by differential scanning calorimetry (DSC). The obtained heat flow curves were analyzed for curing kinetics. Then, the curing process of large length–diameter ratio bushings was simulated by using the finite element method combined with a curing kinetics model, transient Fourier heat transfer model, and stress–strain model. The study reveals that the curing system can be established by the Sestak–Berggren autocatalytic model with different accelerator contents. The overall curing degree and the maximum radial temperature difference of the capacitor core tend to increase and then decrease with the accelerator content. This is mainly attributable to the rapid exotherm excluding the participation of some molecular chains in the reaction, resulting in permanent under-curing. As the accelerator content increases, the strain peak decreases and then increases. This paper provides guidance for the comprehensive evaluation and manufacturing of the low-defect capacitor cores of large-size high voltage direct current (HVDC) bushings.

Highlights

  • In recent years, sustainable development and carbon-neutrality have been promoted around the world [1]

  • Less research has been carried out to analyze the effect of the accelerator contents on the internal temperature distribution of large-size bushing with different length-to-diameter ratios during the curing process, which is important for the regulation of the curing conditions and the performance of the bushings

  • Based on the obtained curing kinetics and the actual direct current (DC) dry-type bushings with different voltage levels, a simulation model of the temperature distribution within the capacitor core during curing was constructed using curing kinetics theory coupled with a Fourier heat transfer model

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Summary

A Study on Temperature Distribution within HVDC Bushing

Yuanxiang Zhou 1,2, *, Xuewei Wang 1,2 , Chenyuan Teng 3, *, Yunxiao Zhang 2 , Xin Huang 2 and Jianning Chen 2. Study on Temperature Distribution within HVDC Bushing Influenced by Accelerator Content during the Curing Process. College of Information Engineering, Zhejiang University of Technology, Hangzhou 310014, China

Introduction
Specimen Preparation
DSC Measurement
Simulation Model
Capacitor
Results and
Reaction mechanismsof ofthe theacid acidanhydride anhydride system under effect of BDMA
Determine
Determine the Curing Reaction Modely(α) = dt e dα T
Relationship
Simulation
Maximum
Effect of Bushing Size on the Curing Process
Conclusions
Full Text
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