Prediction of Creep Curves Based on Back Propagation Neural Networks for Superalloys

Creep deformation is one of the main failure forms for superalloys during service and predicting their creep life and curves is important to evaluate their safety. In this paper, we proposed a back propagation neural networks (BPNN) model to predict the creep curves of MarM247LC superalloy under dif...

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Veröffentlicht in:Materials 2022-09, Vol.15 (19), p.6523
Hauptverfasser: Ma, Bohao, Wang, Xitao, Xu, Gang, Xu, Jinwu, He, Jinshan
Format: Artikel
Sprache:eng
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Zusammenfassung:Creep deformation is one of the main failure forms for superalloys during service and predicting their creep life and curves is important to evaluate their safety. In this paper, we proposed a back propagation neural networks (BPNN) model to predict the creep curves of MarM247LC superalloy under different conditions. It was found that the prediction errors for the creep curves were within ±20% after using six creep curves for training. Compared with the θ projection model, the maximum error was reduced by 30%. In addition, it is validated that this method is applicable to the prediction of creep curves for other superalloys such as DZ125 and CMSX-4, indicating that the model has a wide range of applicability.
ISSN:1996-1944
1996-1944
DOI:10.3390/ma15196523