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Experimental and numerical investigations on seismic behavior of hybrid braced precast concrete shear walls

机译:混合支撑预制混凝土剪力墙抗震性能的试验与数值研究。

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This paper experimentally and numerically investigates the seismic behavior of two innovative types of hybrid precast concrete shear walls with diagonal-shaped or cross-shaped concealed bracings. Six 0.75-scaled braced precast concrete shear (BPCS) wall specimens and one monolithic cast-in-situ shear (MCS) wall were fabricated and employed to conduct the displacement-controlled pseudo-static tests. The length and thickness of the specimens were identical, whereas the heights of BPCS wall specimens were different owing to the different shear span ratios (SSRs) of 1.0, 1.5 and 2.0. Using the MCS wall specimen as a reference, the effects of bracing type and SSR on the seismic behavior of BPCS walls were studied in terms of failure mode, hysteretic behavior and energy dissipation capacity. Finite element (FE) analyses of the wall specimens were further performed using the multi-layer shell element model on the Opensees platform. The numerically calculated hysteresis loops of the wall specimens show good agreement with the experimental data, which proves that the employed FE model is adequately accurate in the seismic behavior assessment of BPCS walls. The experimental and numerical results indicate that the developed BPCS walls not only possess similar bearing capacity but also outperform the MCS wall in saving concrete usage and enhancing energy dissipation capacity. The diagonal and cross BPCS walls exhibit diametrically opposite characteristics as SSR increases. The diagonal BPCS wall with low SSR of 1.0 performs better in drift capacity, while the cross BPCS walls are more suitable for earthquake resistance at higher SSRs of 1.5 and 2.0.
机译:本文通过实验和数值研究了两种创新类型的带有对角线形或十字形隐藏式支撑的混合型预制混凝土剪力墙的抗震性能。制作了6个0.75比例的支撑式预制混凝土剪力墙(BPCS)墙样本和1个整体式现浇剪力墙(MCS)墙,并将其用于进行位移控制的拟静力试验。试样的长度和厚度相同,而BPCS壁试样的高度因1.0、1.5和2.0的不同的剪切跨度比(SSR)而不同。以MCS墙试件为参考,从破坏模式,滞回特性和能量耗散能力等方面研究了支撑类型和SSR对BPCS墙抗震性能的影响。使用Opensees平台上的多层壳单元模型进一步对壁试样进行了有限元分析。数值计算的墙体滞回线与实验数据吻合良好,证明所采用的有限元模型在BPCS墙体抗震性​​能评估中具有足够的精度。实验和数值结果表明,所开发的BPCS墙不仅具有相似的承载能力,而且在节省混凝土用量和提高能量消散能力方面也优于MCS墙。随着SSR的增加,对角线和交叉BPCS墙展现出截然相反的特性。 SSR为1.0的对角BPCS墙的漂移能力更好,而BPCS交叉的墙更适用于1.5和2.0的SSR较高的抗震性能。

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