Bai-Xiang Wang , Cai-Hua Chen , Sheng-Yuan Qiu , Ying-Qi Zhao , Cui-Kun Wang
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The in-plane flexural behavior of the shear walls including the failure mode, the seismic performance, the deformation, and the strain distribution were analyzed. Then a three-dimensional finite element model (FEM) was established to numerically simulate the behavior of the specimen. The influence of the axial compressive ratio and the spacing of the stiffeners are preliminary investigated by the experiments, and then the results were expanded by the FEM method. Parameter analysis was conducted on the axial compressive ratio, the thickness of the web plate and the thickness of the flange plate. The effectiveness of the in-plane flexural performance of the DSC composite shear wall using high strength steel and high strength concrete is validated. The combination of the high strength steel and high strength concrete exhibited considerable flexural capacity and ductility. 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The influence of the axial compressive ratio and the spacing of the stiffeners are preliminary investigated by the experiments, and then the results were expanded by the FEM method. Parameter analysis was conducted on the axial compressive ratio, the thickness of the web plate and the thickness of the flange plate. The effectiveness of the in-plane flexural performance of the DSC composite shear wall using high strength steel and high strength concrete is validated. The combination of the high strength steel and high strength concrete exhibited considerable flexural capacity and ductility. 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引用次数: 0
摘要
随着高层建筑的发展,人们提出了对高回弹性、施工效率和经济效益的要求。尽管高强度材料脆性较大,但为了提供较大的承载能力和延展性,人们提出了使用高强度材料的双层钢板混凝土(DSC)复合结构。本文主要研究了使用高强度钢和高强度混凝土的 DSC 复合剪力墙的抗震性能。采用 T 型加劲件实现钢板和混凝土之间的复合作用。在轴向压缩荷载和侧向循环荷载作用下,对三道 DSC 复合剪力墙进行了实验。实验分析了剪力墙的平面抗弯行为,包括破坏模式、抗震性能、变形和应变分布。然后建立了一个三维有限元模型(FEM),对试样的行为进行数值模拟。通过实验初步研究了轴向压缩比和加强筋间距的影响,然后利用有限元方法对结果进行了扩展。对轴向压缩比、腹板厚度和翼缘板厚度进行了参数分析。验证了使用高强度钢和高强度混凝土的 DSC 复合剪力墙平面抗弯性能的有效性。高强度钢和高强度混凝土的组合表现出相当高的抗弯能力和延展性。研究还发现,由于约束效应,暗柱中的混凝土得到了单轴加强。
Seismic performance of high strength double steel plate concrete composite shear walls
With the development of high-rise buildings, requirements have been proposed for high resilience, construction efficiency and economic benefits. A double steel plate concrete (DSC) composite structure using high strength material is proposed to provide large bearing capacity and ductility despite the brittleness of the high strength materials. This paper concentrates on the seismic performance of a DSC composite shear wall using high strength steel and high strength concrete. T-shaped stiffeners were adopted to achieve the composite action between the steel plate and concrete. Experiments were conducted on three DSC composite shear walls subjected to axial compressive and lateral cyclic loads. The in-plane flexural behavior of the shear walls including the failure mode, the seismic performance, the deformation, and the strain distribution were analyzed. Then a three-dimensional finite element model (FEM) was established to numerically simulate the behavior of the specimen. The influence of the axial compressive ratio and the spacing of the stiffeners are preliminary investigated by the experiments, and then the results were expanded by the FEM method. Parameter analysis was conducted on the axial compressive ratio, the thickness of the web plate and the thickness of the flange plate. The effectiveness of the in-plane flexural performance of the DSC composite shear wall using high strength steel and high strength concrete is validated. The combination of the high strength steel and high strength concrete exhibited considerable flexural capacity and ductility. It is also found that the concrete in the concealed columns is uniaxially strengthened due to the confinement effect.
期刊介绍:
The Journal of Building Engineering is an interdisciplinary journal that covers all aspects of science and technology concerned with the whole life cycle of the built environment; from the design phase through to construction, operation, performance, maintenance and its deterioration.