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Passive control systems for the blast enhancement of glazing curtain walls under explosive loads

机译:被动控制系统,用于爆炸载荷下玻璃幕墙的爆炸增强

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摘要

Glass curtain walls are used in modern buildings as envelopes for wide surfaces due to a multitude of aspects. In glass curtain walls, tensile brittle panels are connected - through mechanical or adhesive joints - with steel frameworks or aluminum bracing systems, and due to the interaction of several structural components, the behaviour of the so assembled system is complex to predict, especially under exceptional loading conditions such as explosive events. In the paper, glazing curtain walls are investigated by means of Finite-Element (FE) numerical simulations, under the effect of air blast pressures of variable intensity. Their typical dynamic behaviour and criticalities under high-strain impact loads are first analyzed. By means of extended nonlinear dynamic FE parametric studies, innovative devices are applied to traditional curtain walls, at their support points, in order to improve their expected dynamic response. Two possible solutions, namely consisting of viscoelastic (VE) or elasto-plastic (PL) dampers, are proposed as passive control systems for the mitigation of maximum effects in the façade components deriving from the incoming blast pressures. As shown, although characterized by specific intrinsic mechanical behaviours, either VE or PL dampers can offer beneficial structural effects. In the first case, major advantages for the façade components derive from the additional flexibility and damping capacities of VE devices. In the latter case, PL dampers introduce additional plastic energy dissipation in the traditionaludcurtain wall assembly, hence allowing preventing severe damage in the glazing components. It is thus expected that the current outcomes could represent a valid background for further experimental validation as well as detailed assessment and optimization of the proposed design concept.
机译:由于许多方面,玻璃幕墙在现代建筑中用作宽表面的信封。在玻璃幕墙中,拉伸脆性板通过机械或粘合接头与钢框架或铝制支撑系统连接,并且由于多个结构组件的相互作用,如此组装的系统的行为很难预测,特别是在特殊情况下爆炸事件等装载条件。在本文中,在可变强度的鼓风压力的作用下,通过有限元(FE)数值模拟研究了玻璃幕墙。首先分析了它们在高应变冲击载荷下的典型动态行为和临界状态。通过扩展的非线性动态有限元参数研究,将创新的设备应用于传统幕墙的支撑点,以改善其预期的动态响应。提出了两种可能的解决方案,即由粘弹性(VE)或弹塑性(PL)阻尼器组成,作为被动控制系统,用于缓解来自传入爆炸压力的立面组件的最大影响。如图所示,尽管具有特定的固有机械性能,但VE或PL阻尼器均可提供有益的结构效果。在第一种情况下,立面组件的主要优势来自VE设备的额外灵活性和阻尼能力。在后一种情况下,PL阻尼器会在传统的幕布墙组件中引入额外的塑料能量消散,因此可以防止玻璃组件受到严重破坏。因此,可以预期的是,当前的结果可以为进一步的实验验证以及拟议设计概念的详细评估和优化提供有效的背景。

著录项

  • 作者

    Bedon Chiara; Amadio Claudio;

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  • 年度 2017
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  • 原文格式 PDF
  • 正文语种 eng
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