Development of Self-Sensing Cement Composite Using Nanomaterials for Structural Health Monitoring of Concrete Columns – A Comprehensive Review

A. Dinesh
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引用次数: 8

Abstract

Abstract. Due to age, structural deterioration, and other factors, concrete constructions such as beams and columns will inevitably deteriorate. The growth of nanomaterials and recent advances in multidisciplinary research has broadened cement composites' applicability in various fields. A self-sensing cement composite can detect its own deformation, strain, and stress by changing its electrical characteristics, which may be measured with electrical resistivity. Carbon-based nanomaterials, such as carbon fiber, carbon black, and carbon nanotube, have a strong potential to increase cement composite's mechanical (strength) and electrical (resistivity, sensitivity) potentials due to their remarkable strength and conductivity. Due to the artificial integration of conductive carbon-based components will generate piezoresistive properties in typical cement composites, transforming them into self-sensing cement composites. As a result, the review focuses primarily on the development of nanoparticle-based self-sensing cement composites and their use in the health monitoring of structural columns. This research critically examines the materials used, fabrication techniques, strength, and sensing methodologies used to develop the self-sensing cement composite. The difficulties of commercializing self-sensing cement composites, as well as potential solutions, are also highlighted. According to the review, the difference in Poisson ratio and youngs modulus between the self-sensing cement composite and columns leads the self-sensing cement composite to have different strength and conductivity before and after embedding in columns. According to the study, the addition of conductive material diminishes the composite's workability due to its large specific surface area. Because of the well-distributed conductive network, the composite's resistivity is significantly lowered. The study also shows that the inclusion of a self-sensing cement composite has no bearing capacity influence on the column. Finally, according to the review, the self-sensing cement composite has the ability to monitor the health of structural columns.
纳米自传感水泥复合材料在混凝土柱结构健康监测中的研究进展
摘要由于使用年限、结构劣化等因素,梁、柱等混凝土结构不可避免地会劣化。纳米材料的发展和多学科研究的最新进展扩大了水泥复合材料在各个领域的适用性。自传感水泥复合材料可以通过改变其电特性来检测自身的变形、应变和应力,这些特性可以用电阻率来测量。碳基纳米材料,如碳纤维、炭黑和碳纳米管,由于其显著的强度和导电性,具有提高水泥复合材料机械(强度)和电(电阻率、灵敏度)电位的强大潜力。由于人工集成的导电碳基组件会在典型的水泥复合材料中产生压阻特性,使其转变为自传感水泥复合材料。因此,本文主要综述了基于纳米颗粒的自传感水泥复合材料的发展及其在结构柱健康监测中的应用。本研究严格检查了用于开发自传感水泥复合材料的材料、制造技术、强度和传感方法。此外,还强调了自传感水泥复合材料商业化的困难以及潜在的解决方案。综上所述,自感水泥复合材料与柱体的泊松比和杨氏模量存在差异,导致自感水泥复合材料在柱体嵌入前后具有不同的强度和导电性。根据该研究,导电材料的加入由于其较大的比表面积而降低了复合材料的可加工性。由于导电网络分布均匀,复合材料的电阻率显著降低。研究还表明,自感水泥复合材料的掺入对柱的承载力没有影响。最后,根据综述,自感知水泥复合材料具有监测结构柱健康状况的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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