硅烷表面改性纤维增强水泥基复合材料界面性能的研究进展

Research on interface properties of silane-surface modified fiber-reinforced cement-based composite materials

  • 摘要: 与传统水泥基材料相比,纤维增强水泥基复合材料(FRCCs)因其优异的韧性、强度与耐久性,在工程中获得了广泛的关注和应用。然而,纤维与水泥基体间薄弱的界面效果,往往导致纤维未能充分发挥增强作用,从而限制了材料性能的进一步提升。硅烷偶联剂(SCA)作为一种有效的表面处理剂,为解决该问题提供了重要途径。为此,本文系统研究了SCA改性纤维增强水泥基复合材料(SFRCCs)的力学性能、耐久性及微观结构特性,系统阐明了SCA改性纤维的作用机制。结果表明,在硅烷浓度为0.5%~2%,纤维掺量保持在0.1%~2%时,SFRCC的力学性能显著提升。微观分析显示,SCA改性有效改善了纤维的表面形貌,优化了界面过渡区结构,促使纤维与水泥基体间形成了“机械互锁”与“连接桥作用”的双重增强机制。此外,这种强化的界面效应能有效阻隔外界侵蚀,从而延长材料在严苛环境下的服役寿命。研究进一步指出,SCA的种类适配性和浓度条件是影响纤维改性的关键因素,而引入纳米材料可实现更为稳定、优异的协同增强效果。最后,本文针对目前研究中SFRCCs设计方法困难、复杂环境耐久性研究匮乏以及界面强化机理认知不深等不足提出展望,以望为SCA优化SFRCC性能提供坚实的理论依据与实践指导。

     

    Abstract: Compared with traditional cement-based materials, fiber-reinforced cement-based composites (FRCCs) have received extensive attention and found widespread engineering applications due to their excellent toughness, strength, and durability. However, the weak interfacial bonding between fibers and the cement matrix often prevents the fibers from fully exerting their reinforcing effects, thereby limiting the further improvement of material performance. Silane coupling agent (SCA) serves as an effective surface treatment agent, providing a promising solution to this problem. Therefore, this paper systematically reviews the mechanical properties, durability, and microstructural characteristics of SCA-modified fiber-reinforced cement-based composites (SFRCCs) and clarifies the mechanisms underlying SCA modification of fibers. The results show that when the silane concentration ranges from 0.5% to 2% and the fiber content ranges from 0.1% to 2%, the mechanical properties of SFRCCs are significantly improved. Microstructural analysis reveals that SCA modification effectively improves the surface morphology of fibers, optimizes the interfacial transition zone, and promotes the formation of a dual reinforcement mechanism involving "mechanical interlocking" and "bridging effect" between fibers and the cement matrix. Moreover, the enhanced interfacial effect can effectively prevent external erosion, thereby extending the service life of the material in harsh environments. The study further indicates that the type and concentration of SCA are key factors affecting fiber modification, and the incorporation of nanomaterials can produce a more stable and effective synergistic reinforcement effect. Finally, this paper discusses the current limitations in the design methods of SFRCCs, the lack of research on durability in complex environments, and the insufficient understanding of the interface strengthening mechanism, thereby providing a solid theoretical basis and practical guidance for optimizing the performance of SFRCCs through SCA modification.

     

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