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A methodology to calibrate structural finite element models for reinforced concrete structures subject to blast loads

机译:一种校准钢筋混凝土结构的结构有限元模型的方法,以进行喷射载荷

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Civil buildings are not specifically designed to support blast loads, but it is important to take into account these potential scenarios because of their catastrophic effects, on persons and structures. A practical way to consider explosions on reinforced concrete structures is necessary. With this objective we propose a methodology to evaluate blast loads on large concrete buildings, using LS-DYNA code for calculation, with Lagrangian finite elements and explicit time integration. The methodology has three steps. First, individual structural elements of the building like columns and slabs are studied, using continuum 3D elements models subjected to blast loads. In these models reinforced concrete is represented with high precision, using advanced material models such as CSCMCONCRETE model, and segregated rebars constrained within the continuum mesh. Regrettably this approach cannot be used for large structures because of its excessive computational cost. Second, models based on structural elements are developed, using shells and beam elements. In these models concrete is represented using CONCRETEEC2 model and segregated rebars with offset formulation, being calibrated with continuum elements models from step one to obtain the same structural response: displacement, velocity, acceleration, damage and erosion. Third, models based on structural elements are used to develop large models of complete buildings. They are used to study the global response of buildings subjected to blast loads and progressive collapse.This article carries out different techniques needed to calibrate properly the models based on structural elements, using shells and beam elements, in order to provide results of sufficient accuracy that can be used with moderate computational cost.
机译:民用建筑没有专门用于支持爆炸载荷,但由于其灾难性的影响,对人和结构来说,重要的是考虑这些潜在的情景。考虑钢筋混凝土结构爆炸的实用方法是必要的。通过此目标,我们提出了一种使用LS-DYNA代码来计算大型混凝土建筑物的爆破载荷的方法,利用拉格朗日有限元和明确的时间集成。该方法有三个步骤。首先,研究了像柱和板坯的楼层的各个结构元素,使用持有的爆破载荷的连续3D元件模型。在这些型号中,钢筋混凝土用高精度表示,采用高级材料型号,如CSCMConcrete模型,并在连续内网格中受到限制的隔离钢筋。令人遗憾的是,由于其计算成本过高,这种方法不能用于大型结构。其次,使用壳和梁元件开发基于结构元件的模型。在这些模型中,使用ConcreteC2模型和分离钢筋与偏移配方进行混凝土,用来自第一步的连续元件模型进行校准,以获得相同的结构响应:位移,速度,加速度,损坏和侵蚀。第三,基于结构元素的模型用于开发大型型号的完整建筑物。它们用于研究经过爆炸载荷和逐步崩溃的建筑物的全球响应。这篇文章使用壳和梁元件,基于结构元件正确校准模型所需的不同技术,以便提供足够的准确性的结果可以以适度的计算成本使用。

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