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Corrosion Engineering, Science and Technology
The International Journal of Corrosion Processes and Corrosion Control
Volume 58, 2023 - Issue 8
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Research Articles

Artificial neural network modelling to predict the efficiency of aluminium sacrificial anode

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Pages 747-754 | Received 10 Jun 2023, Accepted 23 Aug 2023, Published online: 01 Sep 2023
 

ABSTRACT

Study explores the potential of a deep learning-based approach for predicting the current efficiency of aluminium sacrificial anodes in marine environments. The model takes into account various input variables, including the chemical composition of the sacrificial anode, pH, dissolved oxygen (DO), temperature, pressure, cathode electrode, current density, and the ratio of the surface area of the cathode to anode, with the anode current efficiency serving as the output variable. Utilising artificial neural networks in this study shows a mean absolute percentage error of 6.4% and 7.8% for the training and validation for predicting the current efficiency. The proposed model shows promising potential to predict the current efficiency of aluminium sacrificial anodes and improve the design of cathodic protection systems based on aluminium sacrificial anodes.

Disclosure statement

No potential conflict of interest was reported by the author(s).

Data availability statement

Data sets generated and/or analysed during the current study are available from the corresponding author upon request.

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