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Testing of Full-Scale Two-Story Steel Plate Shear Wall with Reduced Beam Section Connections and Composite Floors

机译:减少梁截面连接和复合地板的全尺寸两层钢板剪力墙的测试

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摘要

A two-phase experimental program was generated on a full-scale two-story steel plate shear wall with reduced beam section connections and composite floors, to experimentally address the replaceability of infill panels following an earthquake and the seismic behavior of the intermediate beam. In Phase I, the specimen was pseudodynamically tested, subjected to three ground motions of progressively decreasing intensity. The buckled panels were replaced by new panels prior to submitting the specimen to a subsequent pseudodynamic test and cyclic test to failure in Phase II. It is shown that the repaired specimen can survive and dissipate significant amounts of hysteretic energy in a subsequent earthquake without severe damage to the boundary frame or overall strength degradation. It is also found that the specimen had exceptional redundancy and exhibited stable force-displacement behavior up to the story drifts of 5.2 and 5.0% at the first and second story, respectively. Experimental results from pseudodynamic and cyclic tests are compared to seismic performance predictions obtained from a dual strip model using tension only strips and from a monotonic pushover analysis using a three-dimensional finite-element model, respectively, and good agreement is observed.
机译:在具有减小的梁截面连接和复合地板的全尺寸两层钢板剪力墙上生成了一个两阶段的实验程序,以实验方式解决地震和中间梁的地震行为后填充板的可替换性。在阶段I中,对样本进行了拟动力测试,使其经受了强度逐渐降低的三个地面运动。在将样品送至随后的假动力测试和第二阶段的循环测试之前,应将弯曲的面板替换为新面板。结果表明,修复后的标本可以在随后的地震中幸存并消散大量的滞回能量,而不会严重破坏边界框架或整体强度降低。还发现该标本具有出色的冗余度,并在第一层和第二层分别表现出高达5.2%和5.0%的层位移,表现出稳定的力-位移行为。将伪动力试验和循环试验的实验结果与使用纯张力钢带的双钢带模型和使用三维有限元模型的单调推覆分析得到的地震性能预测进行了比较,并观察到了良好的一致性。

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