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Seismic Performance of Hybrid Fiber Reinforced Polymer-Concrete Pier Columns

机译:混杂纤维增强聚合物 - 混凝土墩柱的抗震性能

摘要

As part of a multi-university research program funded by NSF, a comprehensive experimental and analytical study of seismic behavior of hybrid fiber reinforced polymer (FRP)-concrete column is presented in this dissertation. Experimental investigation includes cyclic tests of six large-scale concrete-filled FRP tube (CFFT) and RC columns followed by monotonic flexural tests, a nondestructive evaluation of damage using ultrasonic pulse velocity in between the two test sets and tension tests of sixty-five FRP coupons. Two analytical models using ANSYS and OpenSees were developed and favorably verified against both cyclic and monotonic flexural tests. The results of the two methods were compared. A parametric study was also carried out to investigate the effect of three main parameters on primary seismic response measures. The responses of typical CFFT columns to three representative earthquake records were also investigated. The study shows that only specimens with carbon FRP cracked, whereas specimens with glass or hybrid FRP did not show any visible cracks throughout cyclic tests. Further monotonic flexural tests showed that carbon specimens both experienced flexural cracks in tension and crumpling in compression. Glass or hybrid specimens, on the other hand, all showed local buckling of FRP tubes. Compared with conventional RC columns, CFFT column possesses higher flexural strength and energy dissipation with an extended plastic hinge region. Among all CFFT columns, the hybrid lay-up demonstrated the highest flexural strength and initial stiffness, mainly because of its high reinforcement index and FRP/concrete stiffness ratio, respectively. Moreover, at the same drift ratio, the hybrid lay-up was also considered as the best in term of energy dissipation. Specimens with glassfiber tubes, on the other hand, exhibited the highest ductility due to better flexibility of glass FRP composites. Furthermore, ductility of CFFTs showed a strong correlation with the rupture strain of FRP. Parametric study further showed that different FRP architecture and rebar types may lead to different failure modes for CFFT columns. Transient analysis of strong ground motions showed that the column with off-axis nonlinear filament-wound glass FRP tube exhibited a superior seismic performance to all other CFFTs. Moreover, higher FRP reinforcement ratios may lead to a brittle system failure, while a well-engineered FRP reinforcement configuration may significantly enhance the seismic performance of CFFT columns.
机译:作为美国国家科学基金会资助的多所大学研究计划的一部分,本文对混合纤维增强聚合物(FRP)混凝土柱的抗震性能进行了全面的实验和分析研究。实验研究包括对六个大型混凝土填充FRP管(CFFT)和RC柱进行循环测试,然后进行单调弯曲测试,在两个测试集之间使用超声波脉冲速度对损伤进行无损评估,以及对65个FRP进行拉伸测试优惠券。开发了两个使用ANSYS和OpenSees的分析模型,并针对循环和单调弯曲试验进行了验证。比较了两种方法的结果。还进行了参数研究,以研究三个主要参数对主要地震响应措施的影响。还研究了典型CFFT柱对三个代表性地震记录的响应。研究表明,只有碳FRP的试样才开裂,而玻璃或混合FRP的试样在整个循环测试中均未发现可见的裂纹。进一步的单调弯曲试验表明,碳试样在拉伸时都经历了弯曲裂纹,在压缩时都经历了弯曲。另一方面,玻璃或混合样品均显示FRP管局部弯曲。与传统的RC柱相比,CFFT柱具有更高的抗弯强度和能量消耗,并具有扩展的塑料铰链区域。在所有CFFT柱中,混合铺层均显示出最高的抗弯强度和初始刚度,这主要是由于其分别具有较高的增强指数和FRP /混凝土刚度比。而且,在相同的漂移比下,就能量耗散而言,混合叠层也被认为是最好的。另一方面,由于玻璃FRP复合材料具有更好的柔韧性,带有玻璃纤维管的标本具有最高的延展性。此外,CFFTs的延展性与FRP的断裂应变密切相关。参数研究进一步表明,不同的FRP架构和钢筋类型可能导致CFFT柱的失效模式不同。强烈地震动的瞬态分析表明,带有离轴非线性长丝缠绕玻璃纤维增​​强塑料管的圆柱比其他所有CFFT都具有出色的抗震性能。此外,较高的FRP增强比可能导致脆性系统故障,而精心设计的FRP增强配置可能会显着增强CFFT柱的抗震性能。

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    Shi Yilei;

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  • 年度 2009
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