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Rotational stiffness of cold-formed steel roof purlin-sheeting connections

机译:冷弯型钢屋顶pur条连接件的旋转刚度

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摘要

Cold-formed steel (CFS) sections are commonly used in modern roof construction. Most purlin members are of thin-walled open cross section. They are usually subjected to roof loading at the top flange in either an upward or a downward direction. The load application points, where the sheeting/purlin connections are located, are often eccentric to the shear centre, and thus inevitably generate a torsional moment that will induce twisting and/or warping deformations in addition to bending deflection. This type of complexity associated with the loading conditions will be exacerbated by the occurrence of single- or mixed-mode buckling (e.g. overall, distortional and local buckling) due to compression flanges tending to move sideways. The connections between purlin and roof sheeting provide a restraining effect on purlin members by preventing such lateral and twisting movements, and thus have a beneficial effect on their load-carrying capacity. In design practice, this effect should be taken into account from a design-efficiency perspective. To this end, a key step is to quantify the rotational restraint stiffness by using an engineering-orientated model. This paper firstly reports a series of torsional restraint tests (F-tests) for both sigma and zed sections. Two loading directions were examined by adjusting the purlin fixing direction. The rotational angles between the connected flange and sheeting were recorded at each loading step, from which the moment-rotation curves were produced and presented for each test case. A linear relationship has been observed for the moment-rotation relationship from all test specimens. Secondly, a hand calculation model for calculating the rotational stiffness at each connection was developed. In that model, the rotation was deemed to be primarily caused by the localised deformation of the roof sheeting and the distortional deformation of the purlin flange. The rotation caused by the separation of connection was found to be negligible. The model was validated by the experimental test results and an example was presented to demonstrate the application of the model proposed. The rotational stiffness calculated by this model can be used to evaluate the input parameters required for numerical modelling of purlin-sheeting interaction.
机译:冷弯型钢(CFS)型材通常用于现代屋顶结构。大多数pur条构件的横截面均为薄壁。它们通常在顶部凸缘上沿向上或向下方向承受屋顶载荷。薄板/ pur条连接件所在的载荷施加点通常偏心于剪切中心,因此不可避免地会产生扭转力矩,除了弯曲挠度外,还会引起扭曲和/或翘曲变形。由于压缩凸缘趋向于侧向移动,因此发生单模或混合模屈曲(例如,整体,变形和局部屈曲)会加剧与载荷条件相关的这种复杂性。 pur条与屋顶板之间的连接通过防止这种侧向和扭转运动而对pur条构件提供了抑制作用,因此对其承载能力具有有益的作用。在设计实践中,应从设计效率的角度考虑这种影响。为此,关键步骤是通过使用面向工程的模型来量化旋转约束刚度。本文首先报告了针对sigma和zed截面的一系列扭转约束试验(F-tests)。通过调节pur条固定方向检查了两个加载方向。在每个加载步骤中记录连接的法兰和薄板之间的旋转角度,由此产生力矩旋转曲线,并给出每个测试案例。从所有试样中观察到了力矩-旋转关系的线性关系。其次,建立了用于计算每个连接处的旋转刚度的手动计算模型。在该模型中,旋转被认为主要是由于顶板的局部变形和the条法兰的变形引起的。发现由连接分离引起的旋转可以忽略不计。通过实验测试结果验证了该模型,并给出了一个实例来说明所提出模型的应用。通过该模型计算出的旋转刚度可用于评估pur条-片材相互作用的数值模型所需的输入参数。

著录项

  • 来源
    《Engineering Structures 》 |2014年第2期| 284-297| 共14页
  • 作者单位

    School of Civil Engineering, University of Birmingham. Edgbaston B15 2TT, UK;

    School of Naval Architecture, Ocean and Civil Engineering, Shanghai jiao Tong University, Shanghai 200240, PR China,State Key Laboratory of Ocean Engineering, Shanghai Jiao Tong University, Shanghai 200240, PR China,School of Civil Engineering, University of Birmingham, Birmingham, Edgbaston B15 2TT, UK;

    School of Civil Engineering, University of Birmingham. Edgbaston B15 2TT, UK;

    School of Science, Information Technology & Engineering, University of Ballarat, 3350, Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Cold-formed steel; Purlin; Roof sheeting; Rotational stiffness; Connections; Analytical method; Experimental studies;

    机译:冷弯型钢;檩;屋顶板旋转刚度;连接;分析方法;实验研究;

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