New Analytical Analysis-Oriented Stress-Strain Model for FRP-and-Steel Confined Concrete

Diogo Zignago, Michele Barbato
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引用次数: 2

Abstract

Application of fiber-reinforced polymer (FRP) composites in the strengthening of reinforced concrete (RC) structures has become an increasingly accepted engineering practice. In particular, the use of externally bonded FRP wraps as a confining material for concrete can enhance both the compressive strength and the ultimate strain of concrete, making it suitable for strengthening and/or seismic retrofit of existing RC columns. This paper focuses on a recently developed analysis-oriented iterative FRP-and-steel confinement model for concrete and proposes a new optimization procedure to obtain an analytical expression for the corresponding monotonic envelope, reduce the associated computational cost, and increase the corresponding numerical robustness. Several analytical functions were evaluated in terms of their capability to fit the iteratively-generated stress-strain monotonic envelope for confined concrete. The newly proposed analytical formulation of the confined concrete stress-strain model was compared with the original iterative formulation in terms of computational cost for two examples of nonlinear seismic response analyses for: (1) an experimentally-tested concrete-filled FRP tube bridge column of a two-column bridge pier; and (2) a five-span bridge structure with FRP-retrofitted RC piers. It is found that the use of the newly proposed optimization-based analytical monotonic envelope can reduce by more than 30% the computational time associated with the original iteration-based monotonic envelope with negligible changes in the structural response prediction at both global and local levels.
面向解析分析的frp -钢约束混凝土应力-应变新模型
纤维增强聚合物(FRP)复合材料在钢筋混凝土(RC)结构加固中的应用已成为一种日益普遍的工程实践。特别是,使用外部粘结FRP包作为混凝土的围合材料,可以提高混凝土的抗压强度和极限应变,使其适用于加固和/或现有RC柱的抗震改造。本文针对最近发展的一种面向分析的frp -钢混凝土约束迭代模型,提出了一种新的优化过程,以获得相应单调包络线的解析表达式,降低了相关的计算成本,并提高了相应的数值鲁棒性。几个分析函数被评估在他们的能力,以适应迭代产生的应力-应变单调包络限制混凝土。以2个非线性地震反应分析实例为例,将新提出的约束混凝土应力应变模型解析公式与原迭代公式进行了计算成本的比较:(1)某两柱桥墩的FRP钢管混凝土桥柱的试验测试;(2)采用frp加固RC桥墩的五跨桥梁结构。研究发现,使用新提出的基于优化的解析单调包络可以减少与原始基于迭代的单调包络相关的30%以上的计算时间,并且在全局和局部水平上的结构响应预测变化可以忽略不计。
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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