Mitigation of blast effects through novel energy-dissipating connectors

IF 2.1 Q2 ENGINEERING, CIVIL International Journal of Protective Structures Pub Date : 2022-04-08 DOI:10.1177/20414196221074058
M. Seica, J. Packer, M. Walker, M. Gow
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Abstract

Explosions generate overpressures that can cause irreparable damage to structures. For many buildings, especially critical infrastructure, continued operation after an explosive attack is essential. The use of energy-dissipating methods will enable the protection of a structure and occupants from a blast and permit the timely repair and re-occupation of the building after an event. The concept behind the system presented is the creation of panels that can be used as cladding for structures. The panels are connected to the main structure using energy-dissipating component assemblies around the panel edge. When subjected to a blast load the panels transfer the blast pressure through the assemblies, thereby reducing the forces transmitted to the underlying structure. After an event, the panels and energy-dissipating component assemblies can be replaced quickly and easily, allowing the building to be reoccupied in a short time after an attack. This study focuses on the characterization of energy-dissipating component assemblies using static and dynamic laboratory testing. A predictive theory, supported by a single degree of freedom model, is developed and a general evaluation method proposed. Further laboratory testing expands the characterization of behaviour of the assemblies through experiments, with a blast generator in tension tests and in simulated blast panel tests. The time histories developed from tension tests are then compared to examine the effect of loading rate. The investigations on blast panels also include a comparison with predictions to determine whether the latter can describe the global behaviour of the system. Lastly, the response of the energy-dissipating component assemblies is evaluated in full-scale field blast tests on cladding panels.
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通过新型耗能连接器减轻爆炸影响
爆炸产生的超压会对建筑物造成无法修复的破坏。对于许多建筑物,特别是关键的基础设施,在爆炸袭击后继续运行是至关重要的。能量耗散方法的使用将能够保护结构和居住者免受爆炸的影响,并允许在事件发生后及时修复和重新占用建筑物。系统背后的概念是创建可以用作结构包层的面板。在面板边缘周围使用耗能组件组件将面板连接到主结构上。当承受爆炸载荷时,面板通过组件传递爆炸压力,从而减少传递到底层结构的力。事件发生后,面板和耗能组件组件可以快速轻松地更换,使建筑物在袭击发生后的短时间内重新被占用。本研究的重点是表征耗能组件组件使用静态和动态实验室测试。建立了以单自由度模型为支撑的预测理论,并提出了一种通用的评价方法。进一步的实验室测试通过实验,在张力测试和模拟爆炸面板测试中使用爆炸发生器,扩大了组件行为的表征。然后比较从张力试验中得到的时程,以检验加载速率的影响。对爆炸板的研究还包括与预测的比较,以确定后者是否可以描述系统的整体行为。最后,在复层板的全尺寸现场爆炸试验中,对消能构件组合的响应进行了评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.30
自引率
25.00%
发文量
48
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