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Seismic performance evaluation of timber-steel hybrid structure through large-scale shaking table tests

机译:通过大型振动台试验评估木钢混合结构的抗震性能

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The experimental results and numerical simulation of shaking table tests on a two-thirds scale four-story timber steel hybrid structure are reported in this paper. The hybrid structural system, developed recently, consists of prefabricated infill wood shear walls and moment-resisting steel frames serving as structural subassemblies to resist seismic loads together. The hybrid structure was subjected to earthquake ground motions at three different hazard levels with peak ground accelerations scaled to 0.14 g, 0.40 g, and 0.80 g, respectively. The responses of the structure, in terms of acceleration, inter-story drift, roof displacement, load sharing between the steel frames and infill walls, etc., were measured by different types of sensors. Peak shear force ratio (R) was defined to assess the proportion of the shear force resisted by the infill wood shear walls, and the results showed that the infill walls significantly contributed to the lateral resistance of the hybrid structure. The structure performed very well with little damage observed after severe earthquake excitations corresponding to the maximum credible earthquake. In addition, a non-linear numerical model of the hybrid structure was established in Abaqus with the Abaqus User Element to model the seismic behavior of the infill wood shear walls, and the numerical model was further validated by shaking table test results.
机译:报道了在三分之二规模的四层木结构钢混合结构上进行振动台试验的实验结果和数值模拟。最近开发的混合结构系统包括预制的填充木剪力墙和抗弯钢框架,它们用作结构子组件以共同抵抗地震载荷。混合结构在三种不同的危险等级下经受了地震地面运动,最大地面加速度分别定为0.14 g,0.40 g和0.80 g。通过不同类型的传感器测量了结构的响应,包括加速度,层间位移,屋顶位移,钢框架和填充墙之间的载荷分配等。定义了峰值剪切力比(R)来评估填充木剪力墙抵抗的剪切力的比例,结果表明,填充墙显着促进了混合结构的侧向阻力。在与最大可信地震相对应的剧烈地震激励下,该结构运行良好,几乎没有损坏。此外,在Abaqus中使用Abaqus用户元素建立了混合结构的非线性数值模型,以对填充木剪力墙的地震行为进行建模,并通过振动台试验结果进一步验证了该数值模型。

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