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Self-Diagnosis of Hybird CFRP Rods and As-Strengthened Concrete Structures

机译:混合CFRP杆和加筋混凝土结构的自诊断

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摘要

A literature survey reveals that extensive studies have been published on the hybridization of composite and self-diagnosis of carbon fiber reinforced polymer (CFRP) composites. In these researches, not more than one type of carbon fibers or powders is used as active materials. This article addresses a new class of smart hybrid CFRP (HCFRP) rods consisting of at least two types of carbon fibers of different strength and moduli as active materials and their applications to concrete structures. The carbon fibers function as both structural and sensing materials by virtue of their good mechanical properties, electrical conductivity, and piezoresistivity. The hybridization focuses on two aspects: to better the electrical behavior of the HCFRP rods in order to obtain a stage-based sensing function, and to upgrade their mechanical properties. The self-diagnosis and damage detection functions of the HCFRP rods and or the as-strengthened concrete structures are realized through measuring the change in electrical resistance. The sensing principles are based on the electrical resistance change with the strain change and sudden jumps in electrical resistance due to the gradual fractures of different types of carbon fibers. The results show that the electrical resistance of the HCFRP rods changes with strain in a stepwise manner. The sudden jumps in electrical resistance at different strain amplitudes are associated with the ruptures of different types of carbon fibers. Thus, the step-based sensing of HCFRP rods-selves or strengthened structures is realized. Moreover, the initiation and propagation of cracks in the HCFRP rod-strengthened concrete beams are also measured by means of clip gages and distributed fiber optic sensors (FOS).
机译:文献调查表明,关于复合材料的杂交和碳纤维增强聚合物(CFRP)复合材料的自诊断的广泛研究已经发表。在这些研究中,使用不超过一种类型的碳纤维或粉末作为活性材料。本文介绍了一种新型的智能混合CFRP(HCFRP)棒,它由至少两种类型的不同强度和模量的碳纤维作为活性材料,并将它们应用于混凝土结构。碳纤维具有良好的机械性能,导电性和压阻性,因此既可以用作结构材料,也可以用作传感材料。杂交集中在两个方面:改善HCFRP棒的电性能以获得基于阶段的传感功能,并提高其机械性能。通过测量电阻的变化,可以实现HCFRP棒和/或刚加固的混凝土结构的自诊断和损坏检测功能。传感原理基于电阻随应变的变化而变化,以及由于不同类型碳纤维的逐渐断裂而导致的电阻突然跳变。结果表明,HCFRP棒的电阻随着应变的变化呈阶梯状变化。电阻在不同应变幅度下的突然跳动与不同类型碳纤维的断裂有关。因此,实现了HCFRP棒材自身或加强结构的基于步骤的感测。此外,HCFRP杆增强混凝土梁中裂纹的萌生和扩展也通过夹规和分布式光纤传感器(FOS)进行了测量。

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