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首页> 外文期刊>Journal of Hydroinformatics >Influential parameters on submerged discharge capacity of converging ogee spillways based on experimental study and machine learning-based modeling
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Influential parameters on submerged discharge capacity of converging ogee spillways based on experimental study and machine learning-based modeling

机译:基于实验研究和基于机器学习的聚结溢洪道淹没流量影响参数

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摘要

Ogee spillways with converging training walls are applied to lower the hazard of accidental flooding in locations with limited construction operations due to their unique structure. Hence, this type of structure is proposed as an emergency spillway. The present study aimed at experimental and machine learning-based modeling of the submerged discharge capacity of the converging ogee spillway. Two experimental models of Germi-Chay dam spillway were utilized: one model having a curve axis which was made in 1:50 scale and the other with a straight axis in 1:75 scale. Using visual observation, it was found that the total upstream head, the submergence degree, the ogee-crest geometries and the convergence angle of training walls are the crucial factors which alter the submerged discharge capacity of the converging ogee spillway. Furthermore, two machine-learning techniques (e.g. artificial neural networks and gene expression programming) were applied for modeling the submerged discharge capacity applying experimental data. These models were compared with four well-known traditional relationships with respect to their basic theoretical concept. The obtained results indicated that the length ratio (L2/(L'.Lch)) had the most effective role in estimating the submerged discharge capacity.
机译:具有收敛式训练壁的Ogee溢洪道,由于其独特的结构,可用于在施工操作受限的地点降低意外淹水的危险。因此,这种结构被提议作为紧急溢洪道。本研究的目的是基于实验和基于机器学习的收敛性溢洪道溢洪道水下淹没能力建模。利用了Germi-Chay大坝溢洪道的两个实验模型:一个模型的弯曲轴比例为1:50,另一个模型的直轴比例为1:75。目视观察发现,上游上游总水头,淹没度,顶峰几何形状和训练墙的收敛角是影响收敛型溢洪道淹没流量的关键因素。此外,应用了两种机器学习技术(例如,人工神经网络和基因表达程序设计),利用实验数据对淹没容量进行建模。就其基本理论概念而言,将这些模型与四个众所周知的传统关系进行了比较。所得结果表明,长度比(L2 /(L'.Lch))在估计淹没放电容量方面具有最有效的作用。

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