首页> 外文期刊>Bulletin of earthquake engineering >Pseudodynamic testing of a full-size two-story reinforced concrete frame retrofitted with an H-section steel frame installed using a length-adjustment control box
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Pseudodynamic testing of a full-size two-story reinforced concrete frame retrofitted with an H-section steel frame installed using a length-adjustment control box

机译:使用长度调整控制箱安装的H型钢框改装了全尺寸两层钢筋混凝土框架的假影动力学测试

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摘要

In this study, to overcome the construction drawbacks of conventional seismic retrofitting techniques, we proposed a new H-section steel frame (HSF) system for seismic strengthening of existing medium-to-low-rise reinforced concrete (RC) buildings. This HSF strengthening method exhibits excellent constructability because a control box is applied as a length adjustment device to cope with errors in the field associated with assembly works between the existing structure and reinforcing frame. The method represents a strength design approach implemented via retrofitting, to easily increase the ultimate lateral load capacity of RC buildings lacking seismic data, which exhibit shear failure. Two full-size two-story RC frame specimens were designed based on an existing RC building in Korea lacking seismic data, and then strengthened using the HSF system; thus, one control specimen and one specimen strengthened with the HSF system were used. Pseudodynamic tests were conducted to verify the effects of seismic retrofitting, and the earthquake response behavior with use of the proposed method, in terms of the maximum response strength, response displacement, and degree of earthquake damage compared with a control RC frame. Nonlinear dynamic analysis was performed based on the material properties of the test specimens, including a mathematical nonlinear hysteresis model to compare the results of the pseudodynamic tests. Test results revealed that the proposed HSF strengthening method, internally applied to the RC frame, effectively increased the lateral ultimate strength, resulting in reduced response displacement of RC structures under large-scale earthquake conditions. The nonlinear dynamic analysis and test results were in good agreement.
机译:在这项研究中,为了克服传统地震改造技术的施工缺点,我们提出了一种新的H型钢架(HSF)系统,用于现有中低层钢筋混凝土(RC)建筑物的地震强化。该HSF强化方法具有出色的结构性,因为控制箱作为长度调节装置应用以应对现有结构和加强框架之间的组装有效的场中的误差。该方法代表了通过改装实施的强度设计方法,以容易地提高缺乏地震数据的RC建筑物的最终横向负载能力,其表现出剪切失效。根据韩国的现有RC建筑设计了两个全尺寸的两层RC框架标本,然后使用HSF系统加强;因此,使用了一种用HSF系统加强的一种对照样品和一个试样。对PSeudoGynamic测试进行了验证地震改造的影响,以及使用所提出的方法的抗震响应行为,就与控制RC帧相比的最大响应强度,响应位移和地震损坏程度。基于试样的材料特性进行非线性动态分析,包括数学非线性滞后模型,以比较假实际测试的结果。试验结果表明,所提出的HSF强化方法,内部施加到RC框架,有效提高了横向极限强度,导致RC结构在大规模地震条件下减少响应位移。非线性动态分析和测试结果非常一致。

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