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Application of ANN to evaluate effective parameters affecting failure load and displacement of RC buildings

机译:ANN的应用评估影响破坏负荷和RC建筑物移位的有效参数

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摘要

This study investigated the efficiency of an artificial neural network (ANN) in predicting and determining failure load and failure displacement of multi story reinforced concrete (RC) buildings. The study modeled a RC building with four stories and three bays, with a load bearing system composed of columns and beams. Non-linear static pushover analysis of the key parameters in change defined in Turkish Earthquake Code (TEC-2007) for columns and beams was carried out and the capacity curves, failure loads and displacements were obtained. Totally 720 RC buildings were analyzed according to the change intervals of the parameters chosen. The input parameters were selected as longitudinal bar ratio (ρl) of columns, transverse reinforcement ratio (Asw/sc), axial load level (N/No), column and beam cross section, strength of concrete (fc) and the compression bar ratio (ρ'/ρ) on the beam supports. Data from the nonlinear analysis were assessed with ANN in terms of failure load and failure displacement. For all outputs, ANN was trained and tested using of 11 back-propagation methods. All of the ANN models were found to perform well for both failure loads and displacements. The analyses also indicated that a considerable portion of existing RC building stock in Turkey may not meet the safety standards of the Turkish Earthquake Code (TEC-2007).
机译:本研究研究了人工神经网络(ANN)的效率在多层钢筋混凝土(RC)建筑物的预测和确定故障负荷和失效位移方面。该研究用四个故事和三个托架建模了一个RC建筑,其中负载轴承系统由柱和梁组成。在土耳其地震代码(TEC-2007)中定义的键参数的非线性静态推送分析进行了柱和梁的变化,并获得了容量曲线,故障负载和位移。根据所选参数的变化间隔进行分析720个RC建筑物。选择输入参数作为柱,横向加强比(ASW / SC),轴载水平(N / NO),柱和梁横截面,混凝土强度(FC)和压缩条比的纵向杆比(ρL)。 (梁支架上的(ρ'/ρ)。在故障负荷和故障位移方面,通过ANN评估来自非线性分析的数据。对于所有输出,ANN培训并使用11个反向传播方法进行测试。发现所有ANN模型都是对故障负载和位移的表现良好。分析还表示,土耳其的相当大部分现有的RC建筑库存可能不符合土耳其地震法典的安全标准(TEC-2007)。

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