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Axial compressive behavior of engineered cementitious composite confined by fiber-reinforced polymer

机译:由纤维增强聚合物限制的工程化水泥复合材料的轴向压缩行为

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摘要

A novel hybrid member made from two kinds of composite materials, ductile engineered cementitious composite (ECC) as the core material and linear elastic fiber-reinforced polymer (FRP) as the confining material was proposed for application. A series of axial compressive experiments on FRP-confined ECC cylinders were carried out. The test results indicated that FRP-confined ECC specimens exhibited similar compression hardening behavior in the axial stress-strain curve to FRP-confined normal concrete specimens. Moreover, the "self-confinement" effect of ECC and the confinement stiffness of FRP had significant influence on the stress-strain response and failure mode. Based on the FRP strain distribution, a failure mechanism was proposed for FRP-confined cement-based materials under compression. FRP-confined ECC cylinders underwent three distinct stages under compression: formation of microcracks, formation of multiple cracks, and formation and propagation of major cracks. A qualitative model for FRP confined ECC was developed, which illustrates the effects of different tensile properties of cement-based materials on the failure mode and explains why the hoop rupture strain is lower than the ultimate tensile strain of FRP. In addition, fitting equations were proposed for predicting the compressive strength and ultimate strain of FRP-confined ECC cylinders at the ultimate state.
机译:提出了一种新型杂交构件,由两种复合材料,延性工程化水泥复合材料(ECC)作为芯材料和线性弹性纤维增强聚合物(FRP)作为限制材料。进行了一系列关于FRP限制ECC气缸的轴向压缩实验。测试结果表明,FRP限制ECC标本在轴向应力 - 应变曲线中表现出类似的压缩硬化行为至FRP限制普通混凝土样本。此外,ECC和FRP的限制刚度对压力 - 应变反应和失效模式的影响效果有显着影响。基于FRP应变分布,提出了一种破坏机理,用于压缩下的FRP限制水泥基材料。 FRP限制ECC气缸在压缩下进行三个不同的阶段:形成微裂纹,形成多个裂缝,以及主要裂缝的形成和传播。开发了FRP狭窄ECC的定性模型,其说明了水泥基材料对失效模式的不同拉伸性能的影响,并解释了箍破裂应变低于FRP的最终拉伸应变。此外,提出了用于预测最终状态的FRP限制ECC气缸的抗压强度和最终应变的拟合方程。

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