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纳米材料对碳纤维/水泥基体界面的改性研究进展

Research Progress on the Modification of Carbon Fiber/cement Matrix Interface by Nanomaterials

  • 摘要: 碳纤维(CF)表面光滑且表现为化学惰性,与水泥基材料的相容性较差,CF/基体界面会成为薄弱环节。为改善CF/基体界面性能和提高CF增强水泥基材料性能,将纳米材料引入CF增强水泥基材料中。本文系统综述了纳米材料改性CF/基体界面的研究进展,介绍了纳米SiO2(NS)、碳基纳米材料改性CF增强水泥基材料,以及NS、碳纳米管(CNT)、氧化石墨烯(GO)接枝CF增强水泥基材料。研究结果表明,将纳米材料与CF复掺,利用纳米材料优化水泥基体微观结构以改善界面性能,相较于在CF表面接枝纳米材料的复杂工艺,该方法更为简便易行。然而,现有研究多集中于宏观力学性能,对微观改性机理、界面性能强化机制及复掺的正混杂效应研究不足,且复掺后材料的耐久性有待深入探究。此外,CF-NS、CF-CNT、CF-GO等接枝材料需提升性能稳定性、降低成本并与工程需求结合;其中CF-CNT和CF-GO兼具增强与功能特性,展现出广阔的功能化应用前景。因此,未来研究应加强微观机理与界面性能的基础研究,关注复掺效应与长期耐久性,推进接枝材料的工程化应用,并拓展CNT与GO在功能化领域的创新应用,以实现水泥基材料性能的全面提升与多功能化发展。

     

    Abstract: The surface of carbon fiber (CF) is smooth and chemically inert, and its compatibility with cement-based materials is poor, and the CF/matrix interface becomes a weak link. In order to improve the interface properties of CF/matrix and improve the properties of CF reinforced cement-based materials, nanomaterials are introduced into CF reinforced cement-based materials. This paper reviews the research progress on the modification of CF/cement matrix interface by nanomaterials, and introduces nano-SiO2 (NS), carbon-based nanomaterials modified CF reinforced cement-based materials, as well as NS, carbon nanotube (CNT), and graphene oxide (GO) grafted CF reinforced cement-based materials. The research results show that by co-addition nanomaterials with CF and using nanomaterials to optimize the microstructure of the cement matrix to improve interface properties, this method is simpler and more feasible than the complex process of grafting nanomaterials onto the surface of CF. However, existing studies mostly focus on macroscopic mechanical properties, while insufficient attention has been paid to the microscopic modification mechanism, interface performance enhancement mechanism, and the positive admixture effect of co-addition. Moreover, the durability of the materials after co-addition needs to be further explored. Additionally, the grafted materials such as CF-NS, CF-CNT, and CF-GO need to improve performance stability, reduce costs, and integrate with engineering requirements; Among them, CF-CNT and CF-GO have both enhanced and functional characteristics, demonstrating broad prospects for functional applications. Therefore, future research should strengthen the basic study of micro mechanisms and interface properties, focus on the effects of compounding and long-term durability, promote the engineering application of graft materials, and expand the innovative application of CNT and GO in the field of functionalization, in order to achieve comprehensive improvement of cement-based material properties and multifunctional development.

     

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