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Axial and lateral stress-strain model for concrete-filled steel tubes with FRP jackets

机译:带FRP夹套的钢管混凝土的轴向和横向应力应变模型。

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In a concrete-filled steel tube under axial compression, since the steel tube has a larger Poisson's ratio than the concrete, delamination at the steel-concrete interface occurs and the steel tube is ineffective in providing confinement at the elastic stage. For resolving this problem and enhancing the concrete confinement, the provision of an external FRP (fiber reinforced polymer) jacket to restrict the lateral expansion of the steel tube is an effective means. Herein, to investigate the effectiveness of FRP-jacketed steel tube confinement, a theoretical model for evaluating the lateral strain, confining stress and axial stress in a concrete filled steel tube with FRP jacket at various stages of loading is developed. The theoretical model is first applied to analyze specimens tested by other researches to verify its accuracy and then used to work out the FRP confining stiffness required to eliminate steel-concrete delamination and the FRP confining stiffness required to achieve Level I ductility (no strain softening at the inelastic stage until failure). (C) 2016 Elsevier Ltd. All rights reserved.
机译:在轴向压缩下的钢管混凝土中,由于钢管的泊松比比混凝土大,因此在钢管与混凝土的界面处发生分层,钢管在弹性阶段不能发挥约束作用。为了解决该问题并增强混凝土的密闭性,设置外部FRP(纤维增强聚合物)护套来限制钢管的横向膨胀是有效的手段。在此,为了研究FRP夹套钢管约束的有效性,建立了一个理论模型,用于评估带有FRP夹套的钢管混凝土在不同载荷阶段的侧向应变,约束应力和轴向应力。该理论模型首先用于分析其他研究测试的样品,以验证其准确性,然后用于计算消除钢混凝土分层所需的FRP约束刚度和达到I级延展性所需的FRP约束刚度(无应变软化)直到失败的无弹性阶段)。 (C)2016 Elsevier Ltd.保留所有权利。

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