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Strength enhancement modeling of concrete cylinders confined with CFRP composites using artificial neural networks

机译:CFRP复合材料约束的混凝土圆筒强度增强的人工神经网络建模

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摘要

Enhancement of strength and ductility is the main reason for the extensive use of fiber reinforced polymer (FRP) jackets to provide external confinement to reinforced concrete columns especially in seismic areas. Therefore, numerous researches have been carried out in order to provide a better description of the behavior of FRP-confined concrete for practical design purposes. This study presents a new approach to obtain strength enhancement of concrete cylinders confined with carbon fiber reinforced polymer (CFRP) composites by applying artificial neural networks (ANNs). The proposed ANN model is based on experimental results collected from literature. It represents the ultimate strength of concrete cylinders after CFRP confinement which is also given in explicit form in terms of geometrical and mechanical parameters. The accuracy of the proposed ANN model is quite satisfactory as compared to experimental results. Moreover the results of proposed ANN model are compared with five important theoretical models proposed by researchers so far and considered to be in good agreement.
机译:强度和延展性的提高是广泛使用纤维增强聚合物(FRP)护套为钢筋混凝土柱提供外部约束的主要原因,尤其是在地震地区。因此,已经进行了许多研究,以便为实际设计目的更好地描述FRP约束混凝土的性能。这项研究提出了一种通过应用人工神经网络(ANN)获得增强碳纤维增强聚合物(CFRP)复合材料约束的混凝土圆柱体强度的新方法。拟议的人工神经网络模型是基于从文献收集的实验结果。它代表了CFRP约束后混凝土圆柱的极限强度,也以几何和机械参数的形式给出了明确的形式。与实验结果相比,所提出的人工神经网络模型的准确性非常令人满意。此外,将提出的人工神经网络模型的结果与迄今为止研究人员提出的五个重要的理论模型进行了比较,并认为它们具有很好的一致性。

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