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January 14, 2026Membranes1 citationsOpen Access

Application of Artificial Intelligence in Mathematical Modeling and Numerical Investigation of Transport Processes in Electromembrane Systems

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EKEkaterina KazakovtsevaEKEvgenia KirillovaAKAnna Vkalimirovna Kovalenko

Key Points

  • To enhance desalination efficiency through advanced mathematical modeling and AI integration in electromembrane systems.
  • Developed a hybrid approach combining neural networks with numerical simulations of electroconvection.
  • Established relationships based on dimensionless similarity criteria like Reynolds and Péclet numbers.
  • Generated training datasets through extensive numerical experiments with a mathematical model.
  • Implemented multilayer feedforward neural networks for regression tasks.
  • Demonstrated rapid prediction and optimization of EMS design parameters.
  • Showed potential reduction in computational and experimental costs.

Abstract

To enhance desalination efficiency and reduce experimental costs, the development of advanced mathematical models for EMS is essential. In this study, we propose a novel hybrid approach that integrates neural networks with high-accuracy numerical simulations of electroconvection. Based on dimensionless similarity criteria (Reynolds, Péclet numbers, etc.), we establish functional relationships between critical parameters, such as the dimensionless electroconvective vortex diameter and the plateau length of current–voltage curves. Training datasets were generated through extensive numerical experiments using our in-house developed mathematical model, while multilayer feedforward neural networks with backpropagation optimization were employed for regression tasks. The resulting AI (artificial intelligence)-driven hybrid models enable rapid prediction and optimization of EMS design and operating parameters, reducing computational and experimental costs. This research is situated at the intersection of membrane science, artificial intelligence, and computational modeling, forming part of a broader foresight agenda aimed at developing next-generation intelligent membranes and adaptive control strategies for sustainable water treatment. The methodology provides a scalable framework for integrating physically based modeling and machine learning into the design of high-performance electromembrane systems.

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Cite This Study

Kazakovtseva et al. (2026) studied this question.

synapsesocial.com/papers/6966f33213bf7a6f02c010a0https://doi.org/10.3390/membranes16010041
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