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Reliability of cold-formed steel framed shear walls as impacted by variability in fastener response

机译:受紧固件响应变化影响的冷弯型钢框架剪力墙的可靠性

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The objective of this paper is to examine the reliability of cold-formed steel framed shear walls with a particular emphasis on walls sheathed with wood structural panels. A sheathed cold-formed steel framed shear wall is a system consisting of studs, tracks, and sheathing often with bridging and/or blocking, connected with steel-to-steel and sheathing-to-steel fasteners. The shear walls may be integrally connected to foundations, floors, or other shear walls through a variety of means including hold downs, straps, diaphragm chords and collectors. Shear wall lateral resistance in cold-formed steel framed buildings varies because of the randomness in the components and connections that comprise the wall. The interaction between fasteners and sheathing is particularly important because (1) sheathing-to-steel fastener response is the main source of shear wall nonlinearity (2) there is high variability in this fastener response. Although the nominal strengths for different shear wall configurations are stated in current design specifications (e.g., AISI S400), variability of shear walls has not been explicitly considered. Existing resistance factors are extrapolations from steel diaphragm testing. To explore the impact of fastener response variability on shear wall reliability, Monte Carlo simulation of typical cold-formed steel framed wood sheathed shear walls with random fastener input was conducted. Variability in fasteners was determined based on existing physical fastener tests. Statistical properties of shear wall strength, demand capacity ratio of key fasteners, as well as relations between fastener strength and shear wall strength are all explored. Reliability evaluation is provided for four different design methods. The results indicate that shear wall strength benefits from a system effect whereby variability in fastener response is reduced through redistribution resulting in reduced variability in overall shear wall strength. Concomitant with this is a slight decrease, approximately 3%, in the mean system strength that also must be considered. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文的目的是检验冷弯型钢框架剪力墙的可靠性,尤其侧重于用木质结构板包裹的墙。带有护套的冷弯型钢框架剪力墙是一个由螺栓,轨道和护套组成的系统,该护套通常带有桥接和/或挡块,并与钢对钢和护套对钢紧固件连接。剪力墙可以通过各种方式(包括压紧装置,皮带,隔膜弦和收集器)整体连接到地基,地板或其他剪力墙。冷弯钢框架建筑中的剪力墙侧向阻力会有所变化,这是因为构成墙的组件和连接处的随机性。紧固件和护套之间的相互作用特别重要,因为(1)护套对钢的紧固件响应是剪切壁非线性的主要来源(2)紧固件响应存在很大的可变性。尽管在当前的设计规范(例如AISI S400)中说明了不同剪力墙配置的标称强度,但并未明确考虑剪力墙的可变性。现有的电阻系数是钢膜测试得出的推断。为了探讨紧固件响应变化对剪力墙可靠性的影响,对带有随机紧固件输入的典型冷弯型钢框架木护套剪力墙进行了蒙特卡洛模拟。紧固件的可变性是根据现有的物理紧固件测试确定的。讨论了剪力墙强度,关键扣件的需求能力比以及扣件强度与剪力墙强度之间的关系的统计特性。提供了四种不同设计方法的可靠性评估。结果表明,剪力墙强度得益于系统效应,该效应通过重新分配降低了紧固件响应的变化性,从而降低了整体剪力墙强度的变化性。与此相伴的是,还必须考虑平均系统强度的轻微降低,大约降低3%。 (C)2017 Elsevier Ltd.保留所有权利。

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