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Novel time-efficient approach to calibrate VARANS-VOF models for simulation of wave interaction with porous structures using Artificial Neural Networks

机译:校准Varans-Vof模型的新型时间有效方法,用于使用人工神经网络模拟波浪相互作用的模拟

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摘要

Numerical models are valuable tools to provide information on wave-structure interaction processes that are difficult to measure in a physical model. The current level of accuracy of numerical models is relatively high but an adequate validation to establish the models' empirical parameters is required to ensure a correct representation of the phenomena to be investigated. To this end, a "trial and error" approach is typically adopted, potentially resulting in a large number of simulations. In this study, a methodology based on Artificial Neural Networks (ANN) is presented, to obtain the optimal combination of values for the empirical coefficients that characterize the porous media in a VARANS-VOF model for predicting mean overtopping discharges. From an initial reduced set of simulations, input and output data are obtained for the training of the ANN. The ANN is then used to estimate the best values for the combination of coefficients that describe the three breakwater layers (armour, filter, and core), which are subsequently applied in the numerical model. The method was successfully applied to a set of laboratory experiments aimed at obtaining overtopping discharges for a Single-Layer Cube armoured breakwater. It resulted in a large reduction of computational effort when compared to the simulation of all possible combinations of values.
机译:数值模型是提供有关在物理模型中难以测量的波形相互作用过程的信息的有价值的工具。数值模型的当前精度水平相对较高,但需要足够的验证来建立模型的经验参数,以确保对要调查的现象的正确表示。为此,通常采用“试验和错误”方法,可能导致大量的模拟。在该研究中,提出了一种基于人工神经网络(ANN)的方法,以获得在varans-Vof模型中表征多孔介质的经验系数的最佳组合,以预测平均转换放电。根据初始减少的模拟集,获得了ANN培训的输入和输出数据。然后,该ANN用于估计用于描述三个防波堤层(装甲,过滤器和核心)的系数组合的最佳值,其随后在数值模型中应用。该方法成功地应用于一组实验室实验,旨在获得用于单层立方体铠装防波堤的概述放电。与所有可能的价值组合的模拟相比,它导致计算工作大大降低。

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