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Transverse reinforcement optimization of a precast special roof element through an experimental and numerical procedure

机译:通过实验和数值程序优化预制特殊屋盖单元的横向加固

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摘要

The transverse behavior of a long span three-plate precast roof element is investigated by means of an experimental and numerical research. The performed study highlights that the failure mode of this folded-plate element is strongly influenced by the amount of transverse reinforcement in the wings. This latter is usually designed through simplified methods, which often lead to over-dimensioning in terms of steel welded mesh. To avoid excessive costs for the producers, transverse reinforcement optimization should be required. In this work, a non-linear FE modelling was applied for this purpose. The reliability of the followed numerical procedure was first verified by an initial type testing (i.e. experimental load test up to failure). The agreement between numerical and experimental results showed the efficiency of the model in simulating all the main sources of nonlinearity related to both material behavior and element geometry. Numerical analyses were so used to perform a parametric study as a function of transverse reinforcement amount, aimed at determining a coefficient of "model inaccuracy". This coefficient should be used as a correction factor for the element design in routine calculations based on beam theory.
机译:通过试验和数值研究,研究了大跨度三板式预制屋盖单元的横向性能。进行的研究表明,这种折板元件的失效模式受机翼中横向加强件的数量的强烈影响。后者通常是通过简化方法设计的,通常会导致在钢焊接网方面尺寸过大。为了避免给生产商带来过多的成本,应要求优化横向钢筋。在这项工作中,为此应用了非线性有限元建模。首先通过初始类型测试(即直到失败的实验负载测试)验证了后续数值程序的可靠性。数值结果与实验结果之间的一致性表明,该模型在模拟与材料行为和元素几何形状相关的所有主要非线性源中均有效。数值分析被用来根据横向钢筋数量进行参数研究,旨在确定“模型误差”的系数。在基于梁理论的常规计算中,该系数应用作元素设计的校正因子。

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