FRP-Confinement of Hollow Concrete Cylinders and Prisms

R. Modarelli, F. Micelli, O. Manni
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引用次数: 42

Abstract

Synopsis: The use of hollow-core reinforced concrete (RC) sections for bridge piers has become a popular engineering practice to obtain a reduction of the self-weight (especially in seismic zones) and a better structural efficiency in terms of the strength/ mass and stiffness/mass ratios. In contrast to this popularity in practice, scientific studies on the mechanical behavior of such structural elements are limited. The use of Fiber Reinforced Polymer (FRP) materials for external confinement of hollow core columns and piers is an almost unknown field at the moment. The research work presented herein aims at evaluating the influence of various experimental parameters on the effectiveness of FRP jackets applied to hollow concrete columns. Hollow-core concrete prisms and cylinders were tested under uniaxial compression to study the stress-strain relationship before and after FRP jacketing. A range of experimental parameters were investigated: different concrete strength, type of fibers, number of wrap layers, column shape and dimensions, and for square and rectangular sections, the corner radius and the cross-sectional aspect ratio. Axial strain was measured by LVDTs, while strains in the fibers were recorded by electrical strain gauges. Circular columns wrapped with FRP showed a significant increase in terms of both strength and ultimate displacements. Results obtained by laboratory tests were close to those recorded for FRP-confined concrete, which means that the increase in ultimate load was found to be comparable to that found in full circular sections. Rectangular columns showed a lower increase in ultimate capacity, compared to circular sections, even if the results related to ultimate axial displacement encourage adopting this technique for seismic retrofit to fulfill higher ductility requirements in both prismatic and cylindrical columns.
空心混凝土柱和棱柱的frp约束
摘要:使用空心核心钢筋混凝土(RC)截面的桥墩已成为一种流行的工程实践,以获得减轻自重(特别是在地震带)和更好的结构效率,在强度/质量和刚度/质量比方面。与这种在实践中的流行相反,对这种结构元件的力学行为的科学研究是有限的。纤维增强聚合物(FRP)材料用于空心柱和墩的外约束目前几乎是一个未知的领域。本文的研究工作旨在评估各种试验参数对FRP护套应用于空心混凝土柱的有效性的影响。在单轴压缩条件下对空心混凝土柱体和圆柱体进行了试验,研究了FRP护套前后的应力-应变关系。研究了一系列试验参数:不同的混凝土强度、纤维类型、包裹层数、柱的形状和尺寸,以及方形和矩形截面的角半径和截面宽高比。轴向应变由lvdt测量,而纤维中的应变由电应变计记录。用FRP包裹的圆形柱在强度和极限位移方面都有显著增加。通过实验室测试获得的结果与frp约束混凝土的记录接近,这意味着发现极限荷载的增加与在全圆形截面中发现的增加相当。与圆形截面相比,矩形柱显示出较低的极限承载力增长,即使与极限轴向位移相关的结果鼓励采用这种技术进行抗震改造,以满足棱柱和圆柱柱更高的延性要求。
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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