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首页> 外文期刊>Procedia CIRP >Flow curve prediction of ZAM100 magnesium alloy sheets using artificial neural network-based models
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Flow curve prediction of ZAM100 magnesium alloy sheets using artificial neural network-based models

机译:基于人工神经网络的ZAM100镁合金薄板流动曲线预测

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摘要

A multivariable empirical model, based on an artificial neural network (ANN), was developed to predict flow curves of ZAM100 magnesium alloy sheets as a function of process parameters in hot forming conditions. Tensile tests were performed in a wide range of temperature and strain rate to collect the dataset used in the training and testing stages of the network. The generalization ability of the model was tested using both the leave-one-out cross-validation method and flow curves not belonging to the training set. The excellent fitting between experimental and predicted curves was proven the very good predictive capability of the model.
机译:建立了基于人工神经网络(ANN)的多变量经验模型,以预测ZAM100镁合金薄板的流动曲线与热成型条件下工艺参数的关系。在广泛的温度和应变率范围内进行了拉伸测试,以收集网络训练和测试阶段中使用的数据集。使用留一法交叉验证方法和不属于训练集的流量曲线测试了模型的泛化能力。实验曲线和预测曲线之间的出色拟合证明了该模型具有很好的预测能力。

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