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In-Plane Drift Capacity of Contemporary Point Fixed Glass Facade Systems

机译:当代点固定玻璃幕墙系统的面内漂移能力

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The point fixed glass facade system (PFGFS), also known as a spider glass system, is popular because it is the most transparent facade system available for buildings. The glass facade system is fixed to the support structure at minimal points using bolts and spider arms. Generally, the racking performance of these systems is not considered at the design stage. The facade system will be vulnerable to racking actions mainly during severe earthquakes and wind actions if the system does not have sufficient in-plane drift capacity. A unique real-scale in-plane racking laboratory test on a typical PFGFS was conducted to assess the in-plane racking performance. A maximum drift of 2.1 % was measured, which was much larger than initially anticipated because of the rigid-body articulation of the system and higher than typical maximum allowable interstory drift for buildings in regions of lower seismicity. A sophisticated nonlinear finite-element (FE) model was developed and conservatively benchmarked against the experimental results with excellent correlation. The FE analyses showed that a significant amount of the drift capacity was attributed to the rigid-body translation at the built-in oversize holes for construction tolerances provided in the facade system connections. In this paper, the laboratory test setup and experimental results are discussed together with the confirmatory FE analysis results.
机译:点固定玻璃幕墙系统(PFGFS)也称为蜘蛛玻璃系统,因为它是可用于建筑物的最透明的幕墙系统,因此很受欢迎。玻璃幕墙系统使用螺栓和星形轮固定在最小的位置上。通常,在设计阶段就不会考虑这些系统的机架性能。如果立面系统没有足够的面内漂移能力,则主要在严重地震和风力作用下,很容易受到机架作用的影响。在典型的PFGFS上进行了独特的真实面内机架试验,以评估面内机架性能。测得的最大漂移为2.1%,这比系统的刚体铰接力要大得多,并且比低地震活动地区建筑物的典型最大允许层间漂移要高。建立了复杂的非线性有限元(FE)模型,并根据实验结果保守地进行了基准检验,具有很好的相关性。有限元分析表明,很大的漂移能力归因于立面系统连接中提供的内置公差的内置超大孔处的刚体平移。在本文中,讨论了实验室测试设置和实验结果以及确定性的有限元分析结果。

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