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Ductility of high-performance concrete and very-high-performance concrete elements with Ni-Ti reinforcements

机译:含镍钛增强材料的高性能混凝土和超高性能混凝土元件的延展性

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This article presents an experimental study on the behavior of high performance concrete (HPC) and very high performance concrete (VHPC) concrete columns with Nickel-Titanium (Ni-Ti) shape memory alloy (SMA) reinforcements in critical regions subjected to constant axial and lateral cyclic load combinations. These materials make the cast-in-place of concrete easier by reducing the amount of transverse reinforcement, improving performance, attenuating damage in critical regions, minimizing residual deformations and reducing repair costs in structures located in seismic areas. Seven experimental tests were carried out to analyze the behavior of this element type. A nonlinear static cyclic pushover analysis was performed with finite element software (OpenSees), whose results were compared with the experimental results. This analysis allowed a parametric analysis to be run to extrapolate the experimental results. Strength capacity was approximately 41.8% greater in absolute terms in the specimens manufactured with VHPC and 6.2% greater in a dimensional terms in those manufactured with HPC. Displacement ductility was 34.0% higher in the HPC specimens, and lowered with relative normal force and with transverse reinforcement separation. A residual drift ratio below 0.70% was generally observed when specimens reached 20% strength capacity loss. The residual drift ratio increased as a result of progressive concrete cover degradation, especially in the specimens manufactured with HPC. (C) 2018 Elsevier Ltd. All rights reserved.
机译:本文提供了在承受恒定轴向力和轴向力的关键区域使用镍钛(Ni-Ti)形状记忆合金(SMA)增强材料的高性能混凝土(HPC)和超高性能混凝土(VHPC)混凝土柱的性能的实验研究。横向循环荷载组合。这些材料通过减少横向钢筋的数量,改善性能,减轻关键区域的破坏,最大程度地减少残余变形并降低位于地震区域的结构的维修成本,使混凝土的现浇变得更容易。进行了七个实验测试以分析这种元素类型的行为。使用有限元软件(OpenSees)进行了非线性静态循环推覆分析,并将其结果与实验结果进行了比较。该分析允许运行参数分析以推断实验结果。用VHPC制造的样品的绝对绝对强度提高约41.8%,而使用HPC制造的样品的强度增强6.2%。在HPC标本中,位移延展性提高了34.0%,并且随着相对法向力和横向钢筋分离而降低。当样品达到20%的强度容量损失时,通常会观察到低于0.70%的残余漂移率。由于混凝土覆盖层的逐渐退化,特别是在使用HPC制造的样品中,残余的漂流率增加了。 (C)2018 Elsevier Ltd.保留所有权利。

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