Study on surface discharge of nonlinear conductive epoxy resin/SrTiO3 composites in 80–300 K temperature zone

Author:

Xing Yunqi123ORCID,Wang Bin12,Wang Mingyang4ORCID,Chi Jiakai5,Jia Peng6,Huang Rongjin6

Affiliation:

1. State Key Laboratory of Reliability and Intelligence of Electrical Equipment Hebei University of Technology Tianjin China

2. Key Laboratory of Electormagnetic Field and Electrical Apparatus Reliability of Hebei Province Hebei University of Technology Tianjin China

3. Key Laboratory of Special Machine and High Voltage Apparatus (Ministry of Education) Shenyang University of Technology Shenyang China

4. State Grid Tianjin High Voltage Company Tianjin China

5. China Energy Engineering Group Tianjin Electric Power Design Institute Co., Ltd. Tianjin China

6. CAS Key Laboratory of Cryogenics Technical Institute of Physics and Chemistry Beijing China

Abstract

AbstractBisphenol F epoxy resin (EP) is often used in terminal current lead insulation of superconducting equipment because of its good insulation performance, high mechanical strength, good toughness at cryogenic temperatures, and resistance to cold shock and heat shock. However, due to the wide temperature range of 80–300 K and the strong electric field, the EP‐N2 interface is prone to surface flashover, resulting in terminal insulation failure. To improve the reliability of the current lead insulation, non‐linear conductive EP/strontium titanate (SrTiO3) composites were prepared by modification with nano filling. The changes of dielectric, surface discharge, flashover, and trap distribution characteristics of composite materials were studied, and the mechanism of SrTiO3 on the surface flashover of composite materials was analysed. The results show that the conductivity of the composite increases with the rise of SrTiO3 filling content, and the amplitude of improvement is greater under the strong electric field, showing a more significant non‐linearity. The composite has a lower trap energy level and a greater number of shallow traps compared to pure EP, which accelerates surface charge de‐trapping and reduces charge accumulation, effectively enhancing the discharge and surface flashover voltage of the composite.

Funder

National Natural Science Foundation of China

Publisher

Institution of Engineering and Technology (IET)

Subject

Electrical and Electronic Engineering,Energy Engineering and Power Technology

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