Intelligent neuro computing paradigm for thermophoresis in carboxymethyl cellulose–water trihybrid nanoliquid with heat generation effects

This research uses thermophoretic particle deposition and a heat source to examine the effects of heat production on a trihybrid nanofluid based on carboxymethyl cellulose and water. A fundamental technique in electrical and aero solution engineering for transporting small particles over a heat gradient is thermophoretic particle deposition. This model is beneficial for increasing the efficacy and architecture of modern thermal management systems that rely on thermophoretic particle movement, like as industrial heat exchangers, electronic component cooling, and polymer processing with CMC-based fluid. The framework, which includes Stefan blowing, internal heat generation, and intelligent neuro-computing techniques, enables efficient control of nanoparticle distribution and heat transfer rates, resulting in predictive optimization and better performance in complex thermal processing and energy applications. With the advancement of associated technologies, the importance of artificial intelligence and machine learning has grown significantly. To address the mathematical formulation, this study trains a ML (machine learning) model based on artificial neural networks using the Bayesian-Regularized approach. The concentration profile decreases as the values of the thermophoretic parameters grow.

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Publication Details

Journal
Discover Nano
Published
2026-09-08
DOI
https://doi.org/10.1186/s11671-026-04818-w
Primary Topic
Field-Flow Fractionation Techniques
Type
article
Field-Weighted Citation Impact
0.00

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article

Intelligent neuro computing paradigm for thermophoresis in carboxymethyl cellulose–water trihybrid nanoliquid with heat generation effects

Achraf Ben Miled, Fawaz Alanazi, Ilkhom Khaydarov, Nidhal Ben Khedher et al.
Discover Nano
Field-Flow Fractionation Techniques
article

Intelligent neuro computing paradigm for thermophoresis in carboxymethyl cellulose–water trihybrid nanoliquid with heat generation effects

Achraf Ben Miled, Fawaz Alanazi, Ilkhom Khaydarov, Nidhal Ben Khedher, Ghada A. Alsawah, Gulnar Hamidova Abdulhamid, Fuad Alsarari, Ansar Abbas
article en

Abstract

This research uses thermophoretic particle deposition and a heat source to examine the effects of heat production on a trihybrid nanofluid based on carboxymethyl cellulose and water. A fundamental technique in electrical and aero solution engineering for transporting small particles over a heat gradient is thermophoretic particle deposition. This model is beneficial for increasing the efficacy and architecture of modern thermal management systems that rely on thermophoretic particle movement, like as industrial heat exchangers, electronic component cooling, and polymer processing with CMC-based fluid. The framework, which includes Stefan blowing, internal heat generation, and intelligent neuro-computing techniques, enables efficient control of nanoparticle distribution and heat transfer rates, resulting in predictive optimization and better performance in complex thermal processing and energy applications. With the advancement of associated technologies, the importance of artificial intelligence and machine learning has grown significantly. To address the mathematical formulation, this study trains a ML (machine learning) model based on artificial neural networks using the Bayesian-Regularized approach. The concentration profile decreases as the values of the thermophoretic parameters grow.

Discover NanoVol. 21(1)
Princess Nourah bint Abdulrahman University (SA), Northern Border University (SA), Western Caspian University (AZ), University of Ha'il (SA), Biruni University (TR), National Pedagogical University of Uzbekistan (UZ), Amran University (YE), National University of Uzbekistan (UZ)
Northern Border University
Clean water and sanitation
Openalex Percentile: Top 13%
Field-Flow Fractionation Techniques
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