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Analytical Model of Concrete-Filled Fiber-Reinforced Polymer Tubes based on Multiaxial Constitutive Laws

机译:基于多轴本构律的混凝土填充纤维增强聚合物管分析模型

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摘要

A model is proposed for predicting the compression behavior of axially loaded concrete cylinders confined by fiber reinforced polymer (FRP) shells. To capture the active confinement applied by the FRP, an orthotropic hypoelasticity-based constitutive law is used for the concrete. This law is defined the triaxial stress space. The confinement-induced concrete strength enhancements are computed from a four-parameter failure surface. The corresponding peak strain increase is computed using a newly proposed strain enhancement factor. The FRP shell behavior is modeled using a stress-strain relation for plane stress orthotropic laminated composites. The proposed model is implemented into an incremental approach for the analysis of compression tests. No iterations are needed to find the stresses corresponding to prescribed axial strains. The model is verified with correlation studies with different experimental tests on concrete-filled FRP cylinders.
机译:提出了一个模型来预测由纤维增强聚合物(FRP)壳体约束的轴向加载混凝土圆柱的压缩行为。为了捕获FRP施加的主动约束,混凝土使用了基于正交各向异性低弹性的本构定律。该定律定义为三轴应力空间。约束引起的混凝土强度增强是根据四参数破坏面计算得出的。使用新提出的应变增强因子来计算相应的峰值应变增加。 FRP壳的行为是使用应力-应变关系对平面应力正交各向异性层压复合材料进行建模的。所提出的模型被实现为用于压缩测试分析的增量方法。无需迭代即可找到与规定轴向应变相对应的应力。对模型进行了相关性研究,并在玻璃钢填充的FRP钢瓶上进行了不同的实验测试,从而验证了该模型。

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