Fanaradelli Theodora D, Rousakis Theodoros C
Laboratory of Reinforced Concrete and Seismic Design of Structures, Department of Civil Engineering, Faculty of Engineering, Democritus University of Thrace (D.U.Th.), 67100 Xanthi, Greece.
Polymers (Basel). 2020 Nov 15;12(11):2691. doi: 10.3390/polym12112691.
This paper investigates the crucial design parameters for the prediction of the ultimate axial compressive deformation of reinforced concrete columns externally confined with fiber reinforced polymer (FRP) materials. Numerous test results of available columns with a square and rectangular section under cyclic axial loading were gathered in an advanced database. Herein, the database is enriched with necessary design parameters in order to address the unique tensile strain field variation of the FRP jacket. Since there is a lack of consequent recording of the FRP strain field in existing experiments, three dimensional pseudodynamic finite element analyses results from several characteristic cases of tested columns are utilized to address this gap. Therefore, a hybrid experimental-analytical database is formed, including several critical FRP strains, steel strains and deformations. A modified model is proposed to predict the ultimate axial strain for reinforced concrete columns externally confined with FRP materials. The proposed model aims to address indirectly the effects of the internal steel cage, concrete section shape and of their interaction with the external FRP jacket on the critical tensile strain of the FRP jacket at failure of the column. The predictive performance of the model over the available tests of (reinforced concrete) RC columns under cyclic compression is remarkably improved when compared against the performance of other existing models. It provides predictions with average ratio (AR) of 0.96 and average absolute error (AAE) of 36.5% and therefore may contribute to safer seismic resistant redesign.
本文研究了用于预测纤维增强聚合物(FRP)材料外部约束的钢筋混凝土柱极限轴向压缩变形的关键设计参数。在一个先进的数据库中收集了大量方形和矩形截面柱在循环轴向荷载作用下的现有试验结果。在此,该数据库通过必要的设计参数得到了充实,以解决FRP套的独特拉伸应变场变化问题。由于现有试验中缺乏对FRP应变场的连续记录,利用几根试验柱典型工况的三维拟动力有限元分析结果来弥补这一空白。因此,形成了一个混合试验-分析数据库,包括几个关键的FRP应变、钢筋应变和变形。提出了一个修正模型来预测FRP材料外部约束的钢筋混凝土柱的极限轴向应变。该模型旨在间接解决内部钢筋笼、混凝土截面形状及其与外部FRP套在柱破坏时对FRP套临界拉伸应变的相互作用的影响。与其他现有模型的性能相比,该模型在(钢筋混凝土)RC柱循环压缩现有试验中的预测性能有显著提高。它提供的预测平均比值(AR)为0.96,平均绝对误差(AAE)为36.5%,因此可能有助于更安全的抗震重新设计。