Liu Hechen, Yu Yunfei, Liu Yunpeng, Zhang Mingjia, Li Le, Ma Long, Sun Yu, Wang Wanxian
Hebei Key Laboratory of Distributed Energy Storage and Micro-Grid, North China Electric Power University, Yonghua North Street No. 619, Baoding 071003, China.
State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources, North China Electric Power University, Beinong Road No. 2, Beijing 102206, China.
Polymers (Basel). 2022 Jun 12;14(12):2376. doi: 10.3390/polym14122376.
Basalt fiber (BF) has a high mechanical strength, excellent temperature resistance, good chemical stability, low energy consumption, and an environmentally friendly production process. In addition, BF-reinforced polymers (BFRPs) have good corrosion resistance and designability; thus, they meet the application requirements of electrical equipment, such as new conductors, insulating pull rods, and composite cross-arms. However, there are still a series of technical issues in the mass production of BF, and the stability of the products needs to be further improved. Therefore, the research on the production, modification, and application of BF is necessary. This paper discusses the chemical composition and production technology of BF, describes the morphology and properties of BF, summarizes the interface problems and modification methods of composites, and finally, introduces the application prospects of BF in the field of electrical materials, which is expected to provide a reference for the application and promotion of BFRP in the future.
玄武岩纤维(BF)具有较高的机械强度、优异的耐高温性能、良好的化学稳定性、低能耗以及环保的生产工艺。此外,玄武岩纤维增强聚合物(BFRPs)具有良好的耐腐蚀性和可设计性;因此,它们满足电气设备的应用要求,如新型导体、绝缘拉杆和复合横担。然而,玄武岩纤维的大规模生产仍存在一系列技术问题,产品的稳定性有待进一步提高。因此,有必要对玄武岩纤维的生产、改性及应用进行研究。本文论述了玄武岩纤维的化学成分和生产工艺,描述了玄武岩纤维的形态和性能,总结了复合材料的界面问题及改性方法,最后介绍了玄武岩纤维在电气材料领域的应用前景,期望为今后玄武岩纤维增强聚合物的应用与推广提供参考。