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Influence of the concrete DIF model on the numerical predictions of RC wall responses to blast loadings

机译:混凝土DIF模型对钢筋混凝土墙爆炸冲击响应数值预测的影响

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摘要

Reliable prediction of structural responses to blast loadings requires an accurate dynamic material model. The dynamic strength of concrete material is normally higher than the static strength. Based on extensive experimental data, a number of empirical DIF (dynamic increase factor) relations have been proposed to model concrete material strength increment at high strain rates. Most of these empirical relations are obtained by fitting the scattered dynamic testing data. It is commonly acknowledged that the induced structural effects such as lateral inertia confinement effect are inevitable in high-speed impact tests. Therefore directly fitting the laboratory testing data may not necessarily obtain the true dynamic concrete material properties. Some recent studies investigated the contributions of lateral inertia and end friction confinement effects on DIF of concrete materials in laboratory tests, and proposed relations to remove these influences to obtain the true DIF for concrete materials. The present study carries out numerical simulations of a reinforced concrete wall under different blast loadings. Different DIF relations including CEB defined DIF, DIF proposed in previous studies after removing structural effect in laboratory tests, and NO DIF, i.e., neglecting dynamic strength increment, are considered in numerical simulations. Verification of the numerical model is made through the comparisons of the numerical simulation results with field test data. The results demonstrate that using the new DIF model yields the best prediction of the structural responses. The responses of a typical RC wall under blast loads with a 5 m stand-off distance but different TNT explosive charge weights are also simulated using different DIF relations. The responses of RC wall obtained from numerical models with different DIF relations of concrete material are compared. From the numerical simulation results, the range of scaled distance that DIF relation has significant influences on the numerical simulation results is identified.
机译:可靠地预测爆炸载荷的结构响应需要精确的动态材料模型。混凝土材料的动态强度通常高于静态强度。基于大量的实验数据,已提出了许多经验DIF(动态增加因子)关系,以模拟高应变速率下混凝土材料的强度增加。这些经验关系大部分是通过拟合分散的动态测试数据获得的。通常公认的是,在高速冲击试验中不可避免地会引起诸如横向惯性约束效应之类的结构效应。因此,直接拟合实验室测试数据不一定能获得真正的动态混凝土材料性能。最近的一些研究调查了在实验室测试中横向惯性和端部摩擦约束作用对混凝土材料DIF的贡献,并提出了消除这些影响的关系以获得混凝土材料的真实DIF。本研究对不同爆炸载荷下的钢筋混凝土墙进行了数值模拟。在数值模拟中考虑了不同的DIF关系,包括CEB定义的DIF,在先前研究中提出的DIF(在实验室测试中消除了结构效应之后)以及NO DIF(即,忽略了动态强度增量)。通过将数值模拟结果与现场测试数据进行比较,可以对数值模型进行验证。结果表明,使用新的DIF模型可产生最佳的结构响应预测。还使用不同的DIF关系模拟了爆炸距离为5 m的爆炸荷载下典型RC墙的响应,但不同的TNT炸药装药重量也是如此。比较了混凝土材料不同DIF关系的数值模型得到的RC墙的响应。从数值模拟结果中,确定了DIF关系对数值模拟结果有重要影响的比例距离范围。

著录项

  • 来源
    《Engineering Structures》 |2014年第15期|24-38|共15页
  • 作者

    Yifei Hao; Hong Hao;

  • 作者单位

    Tianjin University and Curtin University Joint Research Center of Structural Monitoring and Protection, School of Civil and Mechanical Engineering, Curtin University, Kent Street, Bentley, WA 6102, Australia;

    Tianjin University and Curtin University Joint Research Center of Structural Monitoring and Protection, School of Civil and Mechanical Engineering, Curtin University, Kent Street, Bentley, WA 6102, Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Blast; Reinforced concrete; Strain rate effect; DIF;

    机译:爆破;钢筋混凝土;应变率效应;DIF;

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