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Adhesively bonded glass-metal fagade elements with composite structural behaviour under in-plane and out-of-plane loading

机译:在平面内和平面外载荷下具有复合结构行为的玻璃金属表面粘合元件

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The structural efficiency of transparent facades can be increased by achieving a composite structural behaviour between the framing elements and the glass panes. The use of suitable intermediary materials is substantial for obtaining a composite structural behaviour for both out-of-plane and in-plane loading. This article presents two novel configurations for such glass-metal elements. For the first configuration, a perimetrical bonding with a silicone adhesive between the glass pane and the filigree metal framing is responsible for transferring stresses in out-of-plane direction, and grouting blocks are used near the glass pane corners for transferring stresses in in-plane direction. In the case of the second configuration, a perimetrical bonding with an acrylic adhesive between the glass pane and the filigree metal framing is responsible for transferring stresses in both out-of-plane and in-plane direction. Full-scale tests and finite element simulations with loads acting in three different directions, both separately and combined, are performed for the two configurations. The results of the tests performed under in-plane shear loading reveal a high load-bearing capacity of both configurations and show that failure is initiated within the adhesive joints. The numerical models, which include previously derived non-linear material models for the adhesives, allow a good prediction of the mechanical response of the investigated glass-metal elements. The presented load vs. displacement diagrams illustrate that the elements with acrylic adhesive behave stiffer both under out-of-plane and under in-plane loading before the adhesive starts to yield. Overall, the configuration with silicone adhesive and grouting represents a solution which can be applied in real projects based on existing technical approvals for the involved materials in similar applications. On the other hand, the configuration with acrylic adhesive indicates the potential of glass-metal elements with stiffer adhesives, assuming that the knowledge on such adhesives will continue to grow and that, eventually, new enhanced products will be developed by the adhesive industry.
机译:通过在框架元素和玻璃窗格之间实现复合结构行为,可以提高透明立面的结构效率。适当的中间材料的使用对于获得平面外和平面内载荷的复合结构行为是很重要的。本文介绍了这种玻璃金属元素的两种新颖配置。对于第一种配置,玻璃板和金银丝金属框架之间通过硅酮粘合剂进行周向粘结,负责沿平面外方向传递应力,并且在玻璃板角附近使用灌浆块将应力传递至玻璃内角。平面方向。在第二种配置的情况下,玻璃板和花丝金属框架之间的丙烯酸粘合剂的周向粘结负责在平面外和平面内方向上传递应力。对于这两种配置,分别进行了荷载和荷载在三个不同方向上的全尺寸测试和有限元模拟,并进行了组合。在面内剪切载荷下进行的测试结果表明,这两种配置均具有很高的承重能力,并且表明在粘合缝内引发了破坏。包括先前导出的粘合剂非线性材料模型在内的数值模型可以很好地预测所研究的玻璃金属元素的机械响应。呈现的载荷与位移关系图说明,在粘合剂开始屈服之前,具有丙烯酸粘合剂的元件在平面外和平面内载荷下均表现出较硬的性能。总体而言,有机硅粘合剂和灌浆的配置代表了一种解决方案,该解决方案可以基于对类似应用中涉及的材料的现有技术许可,在实际项目中应用。另一方面,假设丙烯酸粘合剂的知识将继续增长,并且粘合剂工业最终将开发出新的增强产品,那么丙烯酸粘合剂的配置表明玻璃金属元件具有较硬粘合剂的潜力。

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