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A stress-path dependent stress-strain model for FRP-confined concrete

机译:FRP约束混凝土的应力路径相关应力-应变模型

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High-strength concrete (HSC) has higher strength-to-weight ratio and stiffness than normal-strength concrete (NSC). Therefore, the use of HSC can decrease the construction and demolition waste and embodied carbon content of structural members that enhances the urban sustainability. However, HSC is more brittle than NSC. To further push up the maximum concrete strength limit in practical construction, confining concrete by fibre-reinforced polymer (FRP) has been advocated to restore ductility. Compared with using hollow-steel tube as confinement, FRP has lighter weight, higher tensile strength, better corrosion resistance, and is more durable and flexible. Nevertheless, it is up to now a difficult task to predict accurately the uni-axial stress-strain behaviour of FRP-confined concrete since the effect of confining stress, concrete strength, hoop and axial strains are interrelated and need to be determined simultaneously. Herein, to better understand and simulate the behaviour of FRP-confined concrete, a stress-strain model has been developed, which consists of the following three main components: (1) A hoop strain equation elaborated from the authors' previous study on steel-confined concrete columns for application to FRP-confined concrete; (2) A modified confined concrete model considering stress-path of confining stress (or history of hoop strain); (3) Interaction between FRP and concrete. The model was verified based on 321 test results obtained from the literature, the design application of the which to a broad range of FRP-confined concrete structures is thus ensured.
机译:高强度混凝土(HSC)比普通强度混凝土(NSC)具有更高的强度重量比和刚度。因此,使用HSC可以减少建筑和拆迁浪费,并减少结构构件的含碳量,从而增强城市的可持续性。但是,HSC比NSC更脆。为了进一步提高实际施工中的最大混凝土强度极限,有人提倡用纤维增强聚合物(FRP)限制混凝土,以恢复延展性。与采用空心钢管作密闭空间相比,FRP的重量更轻,抗拉强度更高,抗腐蚀性能更佳,更耐用,更灵活。尽管如此,到目前为止,准确预测FRP约束混凝土的单轴应力-应变行为是一项艰巨的任务,因为约束应力,混凝土强度,环向和轴向应变的影响是相互关联的,需要同时确定。在此,为了更好地理解和模拟FRP约束混凝土的性能,建立了应力-应变模型,该模型包括以下三个主要部分:(1)作者从先前对钢结构的研究得出的环向应变方程式如下:用于FRP约束混凝土的承压混凝土柱; (2)考虑约束应力的应力路径(或环向应变的历史)的改进的约束混凝土模型; (3)FRP与混凝土的相互作用。根据从文献中获得的321个测试结果对模型进行了验证,从而确保了该模型在FRP约束混凝土结构的广泛设计中的应用。

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