Model Parameter Estimation for Hysteretic Behavior Simulation of FRP-Jacketed Reinforced Concrete Columns

IF 4.3 2区 工程技术 Q1 ENGINEERING, CIVIL
Yoon Jae Kim, Chang Seok Lee, Jong-Su Jeon
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引用次数: 0

Abstract

Fiber-reinforced polymer (FRP) composite jackets have been widely used to retrofit reinforced concrete (RC) columns within structural systems. This study proposes a lumped plasticity model to simulate the nonlinear load-deformation response of FRP-jacketed RC columns under seismic loading. An experimental database of 98 FRP-jacketed RC columns was assembled, including those with partial- or full-height jackets, circular or rectangular cross-sections, continuous or lap-spliced longitudinal reinforcement, and various FRP materials. The database is used to calibrate parameters of the hysteretic material model. Regression analysis was conducted to develop model predictive equations. Each predictive equation was established using leave-one-out cross-validation from 10 candidate design variables. Among the candidate FRP-related design variables, the FRP quantitative ratio and its ultimate strength were selected for inclusion in the empirical model parameter equations. The proposed model demonstrates better accuracy than the existing model in reproducing experimental load-deformation responses. Finally, the proposed model was applied to an FRP-retrofitted RC building frame with lap-spliced rebars to examine the seismic performance of the FRP retrofit compared with existing approaches. Overall, the proposed lumped plasticity approach for FRP-jacketed RC columns offers improved versatility, accommodating a broad spectrum of column geometries, and computational efficiency with reasonable accuracy in predicting load-deformation response.

Abstract Image

frp夹套钢筋混凝土柱滞回特性仿真模型参数估计
纤维增强聚合物(FRP)复合夹套已广泛应用于结构体系中钢筋混凝土(RC)柱的加固。本文提出了一种集总塑性模型来模拟地震荷载作用下frp夹套RC柱的非线性荷载-变形响应。98个FRP夹套RC柱的实验数据库被组装起来,包括那些部分或全高夹套,圆形或矩形截面,连续或搭接纵向钢筋,以及各种FRP材料。该数据库用于校正迟滞材料模型的参数。通过回归分析建立模型预测方程。对10个候选设计变量进行留一交叉验证,建立预测方程。在候选FRP相关设计变量中,选择FRP定量比和FRP极限强度纳入经验模型参数方程。该模型在模拟试验荷载-变形响应方面比现有模型具有更高的精度。最后,将提出的模型应用于带有搭接钢筋的FRP加固RC建筑框架,与现有方法相比,检验FRP加固的抗震性能。总的来说,提出的frp夹套RC柱的集总塑性方法提供了改进的多功能性,适应柱几何形状的广谱,以及在预测荷载-变形响应方面具有合理精度的计算效率。
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来源期刊
Earthquake Engineering & Structural Dynamics
Earthquake Engineering & Structural Dynamics 工程技术-工程:地质
CiteScore
7.20
自引率
13.30%
发文量
180
审稿时长
4.8 months
期刊介绍: Earthquake Engineering and Structural Dynamics provides a forum for the publication of papers on several aspects of engineering related to earthquakes. The problems in this field, and their solutions, are international in character and require knowledge of several traditional disciplines; the Journal will reflect this. Papers that may be relevant but do not emphasize earthquake engineering and related structural dynamics are not suitable for the Journal. Relevant topics include the following: ground motions for analysis and design geotechnical earthquake engineering probabilistic and deterministic methods of dynamic analysis experimental behaviour of structures seismic protective systems system identification risk assessment seismic code requirements methods for earthquake-resistant design and retrofit of structures.
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