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Lifetime prediction for organic coating under alternating hydrostatic pressure by artificial neural network
Tian, W.; Meng, F.; Li, Y.; Wang, F. (2017). Lifetime prediction for organic coating under alternating hydrostatic pressure by artificial neural network. NPG Scientific Reports 7(40827): 12 pp. http://dx.doi.org/10.1038/srep40827
In: Scientific Reports (Nature Publishing Group). Nature Publishing Group: London. ISSN 2045-2322; e-ISSN 2045-2322, more
Peer reviewed article  

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Keyword
    Marine/Coastal

Authors  Top 
  • Tian, W.
  • Meng, F.
  • Li, Y.
  • Wang, F.

Abstract
    A concept for prediction of organic coatings, based on the alternating hydrostatic pressure (AHP) accelerated tests, has been presented. An AHP accelerated test with different pressure values has been employed to evaluate coating degradation. And a back-propagation artificial neural network (BP-ANN) has been established to predict the service property and the service lifetime of coatings. The pressure value (P), immersion time (t) and service property (impedance modulus |Z|) are utilized as the parameters of the network. The average accuracies of the predicted service property and immersion time by the established network are 98.6% and 84.8%, respectively. The combination of accelerated test and prediction method by BP-ANN is promising to evaluate and predict coating property used in deep sea.

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