Evaluation of critical damage location of contact blast on conventionally reinforced one-way square concrete slab applying CEL-FEM blast modeling technique

IF 2.1 Q2 ENGINEERING, CIVIL
S. Anas, M. Shariq, M. Alam, M. Umair
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引用次数: 23

Abstract

Nowadays, accidental explosions in residential and factory buildings are common owing to poor maintenance and mishandling of fuel gas and chemical explosive appliances leading to grievous injuries and infrastructure damages. Contact blast on slabs using explosives is noticed as a simpler act of subversion as compared to other components of the building and is more damaging than a close-in blast. In general, damage caused by contact blast is localized in the form of concrete cratering, scabbing, and rupture of the reinforcement. A recently published state-of-the-art review on the performance of reinforced concrete (RC) slabs under contact and close-in explosion loading scenario by the authors (Anas et al., 2021b) reveals the common perception for the location of contact blast to cause maximum damage is the centroid of the slab. It develops a curiosity with sufficient interest to investigate the effect of the location of contact explosive charge on the damage response of the slab. Several numerical techniques such as empirical, ConWEP (semi-empirical), Smooth Particle Hydrodynamics (mesh-free method), and Coupled-Eulerian-Lagrangian (CEL) are in use for simulation of blast loading on structures. Current literature reveals that the CEL is the most advanced and realistic blast modeling technique. This study applies Coupled-Eulerian–Lagrangian (CEL) formulation with finite element method (FEM) using the dynamic computer code ABAQUS/Explicit-v.6.15 to investigate the performance of singly reinforced one-way spanning concrete slab subjected to concentric contact blast loading. The numerical model is validated with the experiment results in the open literature. The validated model is then employed to investigate whether or not the maximum damage is really caused by the central location of the contact blast. For this purpose, one-quarter of the slab with nine symmetrical points (or locations) of contact blast of explosive charge, which reflect the coverage of the entire slab, in contact with the top face of the slab is considered in the study. Two constitutive material models, Concrete Damage Plasticity and Johnson–Cook, with strain rate effects are used to simulate the non-linear behavior of the concrete and steel, respectively. The results reveal that the most critical location of maximum damage to the slab is along the line of symmetry parallel to the supports at an eccentricity of B/4 from the centroid of the slab, where “B” is the width of the one-way slab.
应用CEL-FEM爆破模拟技术评价常规配筋单向方形混凝土板接触爆破的临界损伤位置
如今,由于燃气和化学爆炸装置的维护不善和处理不当,住宅和工厂建筑物中的意外爆炸很常见,导致严重伤害和基础设施损坏。与建筑物的其他部分相比,在楼板上使用炸药的接触爆炸被认为是一种更简单的颠覆行为,而且比近距离爆炸更具破坏性。一般情况下,接触爆炸造成的破坏以混凝土弹坑、结痂和钢筋断裂的形式局部存在。作者最近发表的一篇关于钢筋混凝土(RC)板在接触和近距离爆炸荷载情景下的性能的最新评论(Anas等人,2021b)揭示了对接触爆炸造成最大损伤的位置是板的质心的普遍看法。研究接触装药位置对板坯损伤响应的影响,引起了人们极大的兴趣。一些数值技术,如经验,ConWEP(半经验),光滑颗粒流体力学(无网格法)和耦合欧拉-拉格朗日(CEL)被用于模拟爆炸荷载对结构的影响。目前的文献表明,CEL是最先进和最真实的爆炸建模技术。本研究采用耦合欧拉-拉格朗日(CEL)公式和有限元法(FEM),采用动态计算机代码ABAQUS/Explicit-v.6.15研究了单筋单向跨混凝土板在同心接触爆炸荷载作用下的性能。数值模型与公开文献的实验结果进行了验证。然后利用验证的模型来研究最大损伤是否真的是由接触爆炸的中心位置引起的。为此,研究中考虑了四分之一的板坯与板坯顶面接触,其中有九个对称的爆药接触爆点(或位置),反映了整个板坯的覆盖范围。采用考虑应变率效应的混凝土损伤塑性和Johnson-Cook两种本构材料模型分别模拟了混凝土和钢的非线性行为。结果表明:沿与支座平行的对称线(距楼板质心偏心率为B/4)是楼板最大损伤的最关键位置,其中“B”为单向楼板的宽度。
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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