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Steel modules of composite plate shear walls: Behavior, stability, and design

机译:复合板剪力墙的钢模块:行为,稳定性和设计

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Concrete-filled composite plate shear walls (CPSW) consist of a concrete (infill) wall sandwiched between two steel plates that are connected to each other using ties and anchored to the concrete infill using these embedded ties or shear connectors. Steel modules consisting of plates, ties and shear connectors are prefabricated in the shop, transported to the field, and assembled first. The erected modules serve as falsework for construction activities and stay-in-place formwork for concrete casting. This is a primary advantage and appeal of this system. However, there is a lack of knowledge regarding the structural behavior of empty steel modules (before and during concrete casting). This paper presents the results of analytical, numerical, and experimental investigations conducted to evaluate: (i) the structural behavior of empty steel modules under their own self-weight, (ii) the stability and axial load capacity of steel modules for construction loads and activities, and (iii) the effects of concrete casting (hydrostatic pressure) in terms of the deflections and stresses induced in the steel plates. The results indicate that the effective shear stiffness of the empty modules governs their structural behavior as well as their stability. The effective shear stiffness can be estimated using the finite element method (verified using test results), or conservatively using mechanics-based equations presented in this paper. The effective shear stiffness is governed by plate slenderness, defined by the tie spacing and plate thickness, and the relative flexural rigidity of the steel plates and the connecting ties. These parameters can be designed to limit the flexibility and the critical buckling stress of the empty modules. The paper also provides equations for calculating the out-of-plane displacement and stresses induced in the steel plates by the concrete casting hydostatic pressure.
机译:填充混凝土的复合板剪力墙(CPSW)由夹在两块钢板之间的混凝土(填充)壁组成,这两块钢板通过拉杆相互连接,并使用这些嵌入式拉杆或剪切连接器锚固到混凝土填充物中。由板,扎带和剪切连接器组成的钢模块在车间内预制,运输到现场,然后首先组装。竖立的模块充当建筑活动的模板,并充当混凝土浇铸的固定模板。这是该系统的主要优点和吸引力。但是,缺乏有关空钢模块(在混凝土浇筑之前和期间)的结构性能的知识。本文介绍了分析,数值和实验研究的结果,这些结果用于评估:(i)空钢模块在自重作用下的结构性能;(ii)钢模块在建筑荷载和荷载作用下的稳定性和轴向荷载能力。活动;以及(iii)就钢板中产生的挠度和应力而言,混凝土浇铸的影响(静水压力)。结果表明,空模块的有效剪切刚度决定了它们的结构行为以及稳定性。可以使用有限元方法(使用测试结果进行验证)或使用本文介绍的基于力学的方程式保守地估计有效剪切刚度。有效的剪切刚度取决于钢板的细长度,钢板的细长度由扎带间距和板厚以及钢板和连接扎带的相对抗弯刚度定义。这些参数可以设计为限制空模块的灵活性和临界屈曲应力。本文还提供了方程,用于计算混凝土浇注静水压力在钢板中引起的平面外位移和应力。

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