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Theoretical Analysis on Absorption of Carbon Dioxide (CO2) into Solutions of Phenyl Glycidyl Ether (PGE) Using Nonlinear Autoregressive Exogenous Neural Networks

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TLDR
In this article, the authors analyzed the mass transfer model with chemical reactions during the absorption of carbon dioxide (CO2) into phenyl glycidyl ether (PGE) solution.
Abstract
In this paper, we analyzed the mass transfer model with chemical reactions during the absorption of carbon dioxide (CO2) into phenyl glycidyl ether (PGE) solution. The mathematical model of the phenomenon is governed by a coupled nonlinear differential equation that corresponds to the reaction kinetics and diffusion. The system of differential equations is subjected to Dirichlet boundary conditions and a mixed set of Neumann and Dirichlet boundary conditions. Further, to calculate the concentration of CO2, PGE, and the flux in terms of reaction rate constants, we adopt the supervised learning strategy of a nonlinear autoregressive exogenous (NARX) neural network model with two activation functions (Log-sigmoid and Hyperbolic tangent). The reference data set for the possible outcomes of different scenarios based on variations in normalized parameters (α1, α2, β1, β2, k) are obtained using the MATLAB solver “pdex4”. The dataset is further interpreted by the Levenberg–Marquardt (LM) backpropagation algorithm for validation, testing, and training. The results obtained by the NARX-LM algorithm are compared with the Adomian decomposition method and residual method. The rapid convergence of solutions, smooth implementation, computational complexity, absolute errors, and statistics of the mean square error further validate the design scheme’s worth and efficiency.

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Study of Rolling Motion of Ships in Random Beam Seas with Nonlinear Restoring Moment and Damping Effects Using Neuroevolutionary Technique

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Analysis of Nanofluid Particles in a Duct with Thermal Radiation by Using an Efficient Metaheuristic-Driven Approach

TL;DR: In this article , the authors investigated the steady two-phase flow of a nanofluid in a permeable duct with thermal radiation, a magnetic field, and external forces.
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Falkner-Skan Flow with Stream-Wise Pressure Gradient and Transfer of Mass over a Dynamic Wall.

TL;DR: In this article, a hybrid neurocomputing algorithm called ANN-SCA-SQP algorithm was proposed to analyze the boundary flow of the Falkner-Skan (FS) model.
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Heat transfer and thermal conductivity of magneto micropolar fluid with thermal non-equilibrium condition passing through the vertical porous medium

TL;DR: In this paper , the authors investigated the incompressible mixed convection flow of electrically conductive micropolar fluid with a thermal non-equilibrium condition that passes through the vertical circular (pipe) porous medium.
References
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Analysis of Multi-Phase Flow Through Porous Media for Imbibition Phenomena by Using the LeNN-WOA-NM Algorithm

TL;DR: This article has analyzed the governing mathematical model of the imbibition phenomenon occurring during the secondary oil recovery process and established, that the algorithm LeNN-WOA-NM is efficient and reliable in calculating high-quality solutions in less time.
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Artificial intelligent based energy scheduling of steel mill gas utilization system towards carbon neutrality

TL;DR: Wang et al. as discussed by the authors developed a low-carbon steel mill gas utilization system with the integration of solvent-based carbon capture, methanol production based carbon utilization and renewable power, and an artificial intelligent based optimal scheduling is then proposed to coordinate the interactions among gas, heat, electricity and carbon under variant weather and load conditions.
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Optimal homotopy analysis method for the non-isothermal reaction–diffusion model equations in a spherical catalyst

TL;DR: In this article, the optimal homotopy analysis method is used to solve two specific models of the Lane-Emden boundary value problem in chemical applications, biochemical applications, and scientific disciplines.
Journal ArticleDOI

A Soft Computing Approach Based on Fractional Order DPSO Algorithm Designed to Solve the Corneal Model for Eye Surgery

TL;DR: The proposed Fractional-Order Darwinian Particle Swarm Optimization algorithm is hybridized with feed-forward artificial neural network to suggest and calculate better solutions for non-linear second-order ordinary differential equation representing the corneal shape model (CSM).
Journal ArticleDOI

Analysis of Temperature Profiles in Longitudinal Fin Designs by a Novel Neuroevolutionary Approach

TL;DR: A new neuroevolutionary algorithm is developed that combines the power of feed- forward artificial neural networks (ANNs) and a modern metaheuristic, the Symbiotic Organism Search (SOS) algorithm, for simultaneous surface convection and radiation during heat transfer in different models of fins/heat exchangers.
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