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Application Of Artificial Neural Networks To Predict Local Bridge Pier Scour, Mia Marrocco
Application Of Artificial Neural Networks To Predict Local Bridge Pier Scour, Mia Marrocco
Electronic Theses and Dissertations
Accurate equilibrium scour depth and width estimations are essential to both safe and economic designs of bridge foundations. Review of current scour estimation methods demonstrate that the empirical equations produce scour values that are overestimated, resulting in uneconomical designs. In the current investigation, artificial neural networks (ANNs) were optimized and applied to scour data under laboratory conditions, field conditions, and a combination of the two conditions. Additionally, physics-based parameters – in place of empirical parameters (e.g., shape factors) – and parameters incorporating blockage effects were introduced as input parameters to the ANNs in an attempt to improve scour predictions. Finally, …