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Analytical study of point fixed glass facade systems under monotonic in-plane loading

机译:单调平面载荷下点固定玻璃幕墙系统的分析研究

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The point fixed glass facade system is popular and considered a more elegant facade option compared to the framed glass facade system mainly for storefront, walkways and lobby areas in buildings. Point fixed glass facade system is fixed to the support structure using special bolt fittings and structural spider arms. Generally, the racking performance of these systems is not considered at the design stage in low to moderate seismic region and the system may be vulnerable if there is insufficient in-plane drift capacity compared with the demand imposed during earthquakes and wind actions. A unique full-scale in-plane racking laboratory test on a typical point fixed glass facade system was conducted and a maximum drift of 2.1% was measured before catastrophic failure. Non-linear finite element models were then developed and benchmarked against experimental results. The experimental results and finite element analyses indicated that a significant amount of the drift capacity was attributed to the rigid body translation in the facade system connections at the built-in oversize holes provided for construction tolerances. In this article, the laboratory test setup and the experimental results are summarised, and the finite element modelling methodology and non-linear analysis approach undertaken using ANSYS for the experimental test are discussed along with number of parametric studies.
机译:与框架式玻璃幕墙系统相比,定点玻璃幕墙系统很受欢迎,并且被认为是更优雅的幕墙选择,主要用于建筑物的店面,走道和大厅区域。点固定式玻璃幕墙系统使用特殊的螺栓配件和结构星形臂固定在支撑结构上。通常,在中低地震区域的设计阶段就不会考虑这些系统的机架性能,并且与地震和风行动期间的需求相比,如果平面内漂移能力不足,则该系统可能会很脆弱。在典型的点固定式玻璃幕墙系统上进行了独特的全面平面机架实验室测试,在灾难性故障发生之前,测得的最大漂移为2.1%。然后开发了非线性有限元模型,并根据实验结果进行了基准测试。实验结果和有限元分析表明,相当大的漂移能力归因于立面系统连接处的刚体平移,该连接位于为施工公差提供的内置超大孔处。在本文中,总结了实验室测试设置和实验结果,并讨论了使用ANSYS进行实验测试的有限元建模方法和非线性分析方法,以及许多参数研究。

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