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Reinforced Concrete Structure Failure Mechanisms Resulting from Explosively-Induced Overpressures

机译:爆炸性诱导过压导致的钢筋混凝土结构失效机制

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This paper presents a two-pronged vulnerability analysis approach for treating minimally reinforced concrete (RC) structures subjected to explosive events. This work was motivated by a heightened interest in homeland protection involving both malevolent and accidental explosions and the need for assessment of critical facilities subjected to an explosive detonation. The first part of the analysis approach employs the commercial 3-D Eulerian-Lagrangian hydro-code AUTODYN, while the second part of the analysis employs Single-Degree-of-Freedom (SDOF) methods, each predicting the dynamic response of the minimally RC walls, slabs and columns to explosive loading. The concrete is treated with the newly developed RHT (Riedel, Hiermaier, Thoma) constitutive model, which accounts for failure mechanisms in brittle materials. Predictions from AUTODYN are verified using the equivalent SDOF reinforced concrete code, SPAn32, developed by the US Army Corp of Engineers and agreement between the results indicates a high level of accuracy in both methods of analysis, allowing for accurate predications of airblast-structure interactions and failure mechanisms.
机译:本文介绍了一种用于治疗经过爆炸事件的微量钢筋混凝土(RC)结构的双管齐下的脆弱性分析方法。这项工作受到涉及恶毒和意外爆炸的兴趣和易受爆炸性爆炸的关键设施的兴趣,这项工作得到了激励。分析方法的第一部分采用商业3-D Eulerian-lagrangian水电码,而分析的第二部分采用单程自由度(SDOF)方法,每个方法都预测最小RC的动态响应墙壁,板坯和柱子到爆炸载荷。混凝土用新开发的rHT(Riedel,Himaier,Thoma)本构模型进行处理,其估计脆性材料的失效机制。使用美国陆军工程公司开发的等效SDOF钢筋混凝土代码,SPAN32验证了Autodyn的预测,结果表明两种分析方法中的高度准确性,允许准确地预测空燃结构相互作用和失败机制。

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