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Predicting Temper Embrittlement of 30Cr2MoV Rotor Steel with Genetic Programming

机译:遗传编程预测30Cr2MoV转子钢的回火脆化

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摘要

The genetic programming approach is proposed to predict temper embrittlement of rotor steel (30Cr2MoV). Two independent data sets are obtained experimentally: training data and verifying data. Peak current density of reactivation, temperature of electrolyte, the general chemical composition parameter (J-factor), chemical composition of Cr and S, hardness and the grain size parameter of the material are used as independent variables, while fracture appearance transition temperature as dependent variable. On the basis of training data, the best model was obtained by genetic programming, and the accuracy of it is verified with the verifying data. The prediction error of the model is within the scatter of +/- 20 degrees C. The results suggest that, the prediction model obtained by genetic programming is feasible and effective.
机译:提出了遗传规划方法来预测转子钢(30Cr2MoV)的回火脆化。通过实验获得了两个独立的数据集:训练数据和验证数据。再活化的峰值电流密度,电解质的温度,一般化学成分参数(J因子),Cr和S的化学成分,材料的硬度和晶粒度参数均用作自变量,而断裂外观转变温度则取决于变量。在训练数据的基础上,通过遗传编程获得了最佳模型,并通过验证数据验证了模型的准确性。该模型的预测误差在+/- 20摄氏度的范围内。结果表明,通过遗传规划获得的预测模型是可行和有效的。

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