Evaluating Joule heating influence on heat transfer and entropy generation in MHD channel flow: A parametric study and ill-posed problem solution using PINNs
Ehsan Ghaderi, MohammadAli Bijarchi, Siamak Kazemzadeh Hannani, Ali, Nouri-Borujerdi

TL;DR
This paper uses Physics-Informed Neural Networks to analyze how Joule heating affects heat transfer and entropy in MHD channel flow, addressing a parametric study and solving an ill-posed problem with boundary conditions.
Contribution
It introduces a PINNs-based method for parametric analysis of Joule heating effects and demonstrates handling of Neumann boundary conditions and ill-posed problems.
Findings
PINNs accurately model heat transfer and entropy generation.
Method generalizes beyond trained parameter ranges.
Successfully solves ill-posed problem with Joule heating parameter.
Abstract
In this study the effects of Joule heating parameter on entropy generation and heat transfer in MHD flow inside a channel is investigated by means of Physics-Informed Neural Networks (PINNs) in form of a parametric analysis in addition to exploring the solution to the ill-posed problem. All of the governing equations are reformulated in terms of first order derivatives and the dimensionless form of the governing equations has been employed to further lessen the number of parameters and achieve better compatibility with loss function terms. Dimensionless groups such as Reynolds number, Prandtl number, Hartmann number and Joule heating parameter have been designated as the input for the neural network in order to perform the parametric study. Besides achieving high accuracy for case of parameters confined in the predefined ranges, the generalization ability of the method is depicted by…
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Taxonomy
TopicsHeat transfer and supercritical fluids · Nuclear Engineering Thermal-Hydraulics
