Application of Magnesium Hydroxide/Diphenoxy Phosphate in Silicone Rubber Flame Retardant Cable Material
Author:
Wang Wei1, Yang Fan2, Lu Yunlai3, Luo Zhi2, Li Fangya2, Wu You2, Zhang Jianbing2, Xiao Zufeng1, Li Wei13, Qin Caiqin1ORCID
Affiliation:
1. School of Chemistry and Materials Science, Hubei Engineering University, Xiaogan 432000, China 2. State Grid Hubei Electric Power Co., Ltd., Xiaogan Electric Power Supply Company, Xiaogan 432000, China 3. Hubei Yunlai Plastic Technology Co., Ltd., Xiaogan 432000, China
Abstract
Deketoxime–type room–temperature vulcanized silicone rubber cable materials were prepared using α, ω–dihydroxy polydimethylsiloxane, carbon black, calcium carbonate, magnesium hydroxide, piperazine bis (diphenoxy phosphate) salt (PBDP), and melamine diphenoxy phosphate (MDP). The effects of carbon black and flame retardants on the mechanical properties, flame–retardant properties, and electrical insulation properties of silicone cable coatings were investigated. The research results showed that the products obtained had good mechanical and electrical insulation properties, with tensile strength greater than 3.0 MPa, dielectric strength greater than 22 kV/mm, and volume resistivity higher than 6.5 × 1014 Ω·cm. When 30 parts of Mg(OH)2:MDP = 2:1 are added to 100 parts of resin, the flame–retardant performance of wire and cable materials can be significantly improved. Under the thermal radiation illumination of 50 kW/m2, the ignition time (TTI) of the Mg(OH)2/MDP coating increased by 16 s, and the maximum heat release rate (pkHRR) and total heat release rate (THR) decreased by 29.7% and 68.8%, respectively, compared with silicone rubber without flame retardant. The silicone rubber coatings prepared were flame retardant up to the FV–1 level.
Funder
Hubei Province 2023 Science and Technology Talent Service Enterprise Project
Subject
Materials Chemistry,Surfaces, Coatings and Films,Surfaces and Interfaces
Reference32 articles.
1. Gomez, F.A., De Maria, J.G., Puertas, D.G., Baïri, A., and Arrabe, R.G. (2011). Numerical study of the thermal behaviour of bare overhead conductors in electrical power lines. Recent Res. Commun. Electr. Comput. Eng., 149–153. 2. A Three–Phase Weather–Dependent Power Flow Approach for 4–Wire Multi–Grounded Unbalanced Microgrids with Bare Overhead Conductors;Pompodakis;IEEE Trans. Power Syst.,2020 3. Review of Thermal Stress and Condition Monitoring Technologies for Overhead Transmission Lines: Issues and Challenges;Zainuddin;IEEE Access,2020 4. Analysis of high–temperature wideband dielectric properties of ath–filled silicone rubber used for on–site insulation of bare overhead conductors;Shang;IEEE Trans. Dielectr. Electr. Insul.,2022 5. Jiang, J., Jia, Z., Wang, X., Wang, S., and Yang, C. (2019, January 7–10). Analysis of conductor sag change after bare overhead conductor is covered with insulation material. Proceedings of the 2019 2nd International Conference on Electrical Materials and Power Equipment (ICEMPE) 2019 IEEE, Guangzhou, China.
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|