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Prediction of static globularization of Ti-17 alloy with starting lamellar microstructure during heat treatment

机译:热处理过程中具有起始层状显微组织的Ti-17合金静态球化预测

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Isothermal forging experiments of Ti-17 alloy with starting lamellar microstructure were conducted on 2000T hydropress. Materials were deformed to the height reductions of 20%, 40%, 60% and 80% at 820 ℃. After deformation, the samples were heat treated for times ranging from 10 min to 8 h at 820 ℃, 840 ℃ and 860 ℃. Globularization fraction of alpha phase was obtained by quantitative analysis. On the basis of experimental data, an artificial neural network (ANN) model with a back-propagation learning algorithm was established to predict static globularization kinetics of Ti-17 alloy. The amount of strain prior to heat treatment, heat treatment temperature and time were taken as inputs, and static globularization fraction as output. The results showed that the maximum and mean deviations between the predictions and the experimental data were 3.58% and 1.27%, respectively. The trained neural network had a good performance for static globularization behavior of Ti-17 alloy. A comparison of the predicted value by the neural network and calculated results by the regression method was carried out. The result indicated that the ANN model is more accurate and efficient than the regression method in terms of the prediction of static globularization kinetics of Ti-17 alloy.
机译:在2000T水压机上进行了具有初始层状组织的Ti-17合金的等温锻造实验。材料在820℃变形至高度降低20%,40%,60%和80%。变形后,将样品在820℃,840℃和860℃下热处理10分钟至8小时。通过定量分析获得α相的球化率。在实验数据的基础上,建立了带有反向传播学习算法的人工神经网络模型,以预测Ti-17合金的静态球化动力学。将热处理之前的应变量,热处理温度和时间作为输入,并且将静态球化率作为输出。结果表明,预测值与实验数据之间的最大偏差和平均偏差分别为3.58%和1.27%。经过训练的神经网络对于Ti-17合金的静态球化行为具有良好的性能。通过神经网络比较预测值和通过回归方法计算出的结果。结果表明,在预测Ti-17合金静态球化动力学方面,ANN模型比回归方法更准确,更有效。

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