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Seismic Retrofit of Reinforced Concrete Shear Walls using Fibre Reinforced Polymer Composites

机译:纤维增强聚合物复合材料对钢筋混凝土剪力墙的抗震改造

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摘要

In the past few decades, there have been considerable advancements in the design of reinforced concrete (RC) shear walls for new construction, such as performance-based seismic design and capacity design principles. These advancements have resulted in a concurrent need for upgrading the seismic performance of existing RC shear walls so that they can meet the safety requirements of modern seismic design codes. As such, there is a need to retrofit existing RC structural shear walls to increase their capacity at locations of higher seismic demands. These upgrades could be at the plastic hinge zone at the base of a wall, or at higher stories due to the effects of higher modes of vibration.udThis research aims to evaluate the effectiveness of using externally bonded carbon fibre-reinforced polymers (CFRP) in the seismic retrofit of RC shear walls. The research program comprises three phases. First, the testing of two 8-storey RC shear walls rehabilitated using CFRP composites under dynamic excitation. The walls were designed according to the NBCC 2005 and the CSA-A23.3-04. The walls were first tested under a simulated earthquake excitation using the shake table at the École Polytechnique de Montréal, where they experienced higher demands and nonlinearity at the sixth storey panel due to the effect of higher modes of vibrations. The tested walls were rehabilitated at the ground and at the sixth-storey level and retested on the shake table when subjected to several levels of ground motion excitation. In the second phase, three RC shear walludivudpanels were tested under cyclic lateral excitation at the Structures Laboratory of Concordia University. The tested wall panels represent the control wall and two FRP-retrofitted panels using two different retrofit schemes. All three wall panels had reinforcement details similar to those of the sixth-storey panel of the code-designed 8-storey shear walls from the first phase. The walls were tested when subjected to a constant axial load along with synchronized cyclic moment and shear force at the top of the tested panel. The main purpose of the FRP-retrofit schemes was to increase the flexural and shear capacities of the tested wall panels and to assess the effectiveness of the FRP-retrofit schemes up to failure. In the third phase, a numerical macro-model was proposed to simulate the behaviour of the control and the retrofitted wall panels tested under cyclic loading.udThe experimental test results of the FRP-retrofit schemes used in the two 8-storey RC shear walls and the three RC wall panels showed a satisfactory performance with improved flexural strength; the testing showed that the main retrofit objectives were achieved. The nonlinear numerical macro-model was able to simulate the monotonic and cyclic behaviour of the wall panels tested under cyclic loading.
机译:在过去的几十年中,用于新建建筑的钢筋混凝土(RC)剪力墙的设计取得了相当大的进步,例如基于性能的抗震设计和能力设计原则。这些进步导致同时需要升级现有RC剪力墙的抗震性能,以使其能够满足现代抗震设计规范的安全要求。因此,需要对现有的RC结构剪力墙进行改造,以提高其在地震要求较高的位置的能力。这些升级可能是在墙底的塑料铰链区域,也可能是由于较高振动模式的影响而在较高楼层。 ud本研究旨在评估使用外部粘结的碳纤维增强聚合物(CFRP)的有效性在钢筋混凝土剪力墙的抗震改造中。研究计划包括三个阶段。首先,在动态激励下测试了使用CFRP复合材料修复的两座8层RC剪力墙。墙壁是根据NBCC 2005和CSA-A23.3-04设计的。墙首先在蒙特利尔高等理工学院的振动台上通过模拟地震激发进行了测试,由于振动模式的提高,在第六层面板上墙体遇到了更高的要求和非线性。被测试的墙壁在地面和第六层进行了修复,并在受到多个水平的地面激励时在振动台上进行了重新测试。在第二阶段,在Concordia大学结构实验室的循环横向激励下测试了三个RC剪力墙 udiv udpanels。测试的墙板代表控制墙和两个采用两种不同改造方案的FRP翻新板。所有三块墙板的加固细节均类似于第一阶段规范设计的8层剪力墙的第六层板。当墙体承受恒定的轴向载荷以及同步的弯矩和被测面板顶部的剪力时,进行了测试。 FRP改造方案的主要目的是增加测试墙板的挠曲和剪切能力,并评估FRP改造方案直至失效的有效性。在第三阶段中,提出了一个数值宏模型来模拟在循环荷载下测试的控制面板和翻新墙板的行为。 ud在两个8层RC剪力墙中使用FRP-retrofit方案的实验测试结果三块RC墙板表现出令人满意的性能,并且弯曲强度有所提高;测试表明,达到了主要的改装目标。非线性数值宏模型能够模拟墙体在循环载荷下的单调性和循环行为。

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    El-Sokkary Hossam;

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  • 年度 2012
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