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Characterization of structural effects from above-ground explosion using coupled numerical simulation

机译:利用耦合数值模拟表征地上爆炸的结构效应

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摘要

The response of a building structure to a nearby explosion is complicated by the drastic spatial and time variation of the blast load. Existing studies on the structural responses to explosion effects often employ simplified structural model with assumed loading patterns, such as element-based (beam-column, slab) models, single degree of freedom or lumped mass systems. The validity of a simplified approach depends on whether the governing response and failure mechanisms are well represented in the simplified scheme. For such validation more sophisticated models are required. This paper presents a numerical simulation study aiming to characterize the various structural effects of above-ground explosions. A coupled numerical approach with combined Lagrangian and Eulerian methods is adopted to allow for the incorporation of the essential processes, namely the explosion, shock wave propagation, shock wave-structure interaction and structural response, in the same model. The computational domain extends to the soil around the base of the structure, allowing also for an evaluation of the significance of the ground vibration effect. Results show that for a typical above-ground explosion scenario, the critical structural damage is dominated by air shock loading, while the ground shock induces only some additional vibration whose structural effect is minor. The distribution of structural damage tends to be governed by member level effects on the front face of the structure, whereas the global dynamic response of the system appears to be insignificant. Similar modeling approach may be applied to explore other blast-induced complex response phenomena.
机译:爆炸载荷的剧烈空间和时间变化使建筑结构对附近爆炸的响应变得复杂。现有的对爆炸影响的结构响应的研究通常采用具有假定载荷模式的简化结构模型,例如基于单元的(梁柱,平板)模型,单自由度或集总质量系统。简化方法的有效性取决于简化方案中是否充分体现了控制响应和故障机制。为了进行这种验证,需要更复杂的模型。本文提出了一个数值模拟研究,旨在表征地上爆炸的各种结构效应。采用了结合拉格朗日方法和欧拉方法的耦合数值方法,以允许在同一模型中纳入基本过程,即爆炸,冲击波传播,冲击波-结构相互作用和结构响应。计算域扩展到结构基础周围的土壤,还可以评估地面振动效应的重要性。结果表明,对于典型的地上爆炸场景,关键的结构破坏主要由空气冲击载荷决定,而地面冲击仅引起一些额外的振动,其结构影响较小。结构损伤的分布倾向于由结构正面的成员水平效应决定,而系统的整体动力响应似乎微不足道。类似的建模方法可用于探索其他爆炸诱发的复杂响应现象。

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