Mechanical, electrical, and damage self-sensing properties of basalt fiber/carbon nanotube/poly (arylene ether nitrile) composites

Libing Liu, Dong Xiang, Jingxiong Ma, Zhiyuan Liu, Guoqian Xie, Yusheng Gong, Chunxia Zhao, Hui Li, Bin Wang, Yuanpeng Wu
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Abstract

Basalt fiber reinforced polymer composites (BFRP) are widely applied in sectors such as aerospace, rail transportation, construction, and energy. However, developing BFRP with effective damage self-sensing capabilities remains a major technical challenge. This study utilized basalt fiber (BF) as both a reinforcement and volume exclusion phase to improve the mechanical and electrical properties of BF/carbon nanotube (CNT)/polyarylene ether nitrile (PEN) composites, aiming to achieve damage self-sensing functionality. The CNT content in BF/CNT/PEN was fixed at only 0.5 wt%. As the BF content increased from 10 wt% to 50 wt%, the mechanical properties of the BF/CNT/PEN composites improved, with tensile strength, flexural strength, and flexural modulus increasing by 39.0%, 26.3%, and 167.7%, respectively. Additionally, the electrical conductivity of composites with 40 wt% BF increased by three orders of magnitude compared to that with 10 wt% BF. Combined with acoustic emission (AE) monitoring, it was confirmed that composites with 40 wt% BF demonstrated excellent damage self-sensing and fracture warning capabilities under tensile and bending stress. This study not only improved the mechanical properties but also enhanced the electrical conductivity of the BFRP without the need for additional conductive materials, thereby ensuring effective damage self-sensing functionality. These results offer valuable insights for developing high-performance, multifunctional BFRP.

玄武岩纤维/碳纳米管/聚(芳醚腈)复合材料的机械、电气和损伤自感知性能
玄武岩纤维增强聚合物复合材料(BFRP)广泛应用于航空航天、轨道交通、建筑、能源等领域。然而,开发具有有效损伤自感知能力的BFRP仍然是主要的技术挑战。本研究利用玄武岩纤维(BF)作为增强相和体积排斥相,改善BF/碳纳米管(CNT)/聚乙烯醇醚腈(PEN)复合材料的力学性能和电学性能,旨在实现损伤自感知功能。在BF/CNT/PEN中碳纳米管的含量仅固定在0.5 wt%。当BF含量从10 wt%增加到50 wt%时,BF/CNT/PEN复合材料的力学性能得到改善,抗拉强度、抗弯强度和抗弯模量分别提高了39.0%、26.3%和167.7%。此外,与10 wt% BF相比,40 wt% BF复合材料的电导率提高了三个数量级。结合声发射(AE)监测,证实了40% BF的复合材料在拉伸和弯曲应力下表现出良好的损伤自感知和断裂预警能力。本研究不仅改善了BFRP的力学性能,而且在不需要额外导电材料的情况下提高了BFRP的导电性,从而保证了有效的损伤自感知功能。这些结果为开发高性能、多功能的BFRP提供了有价值的见解。
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