Neural network analysis of ternary hybrid nanofluid flow with Darcy-Forchheimer effects

被引:0
|
作者
Ullah, Kashif [1 ]
Ullah, Hakeem [1 ]
Fiza, Mehreen [1 ]
Jan, Aasim Ullah [2 ]
Akgul, Ali [3 ,4 ,5 ]
Hendy, A. S. [6 ,7 ]
Elaissi, Samira [8 ]
Mahariq, Ibrahim [9 ,10 ]
Khan, Ilyas [11 ]
机构
[1] Abdul Wali Khan Univ Mardan, Dept Math, Khyber Pakhtunkhwa 23200, Pakistan
[2] Bacha Khan Univ, Dept Math & Stat, Khyber Pakhtunkhwa, Pakistan
[3] Siirt Univ, Art & Sci Fac, Dept Math, TR-56100 Siirt, Turkiye
[4] Biruni Univ, Dept Comp Engn, TR-34010 Istanbul, Turkiye
[5] Near East Univ, Math Res Ctr, Dept Math, Near East Blvd,Mersin 10, TR-99138 Nicosia, Turkiye
[6] Ural Fed Univ, Inst Nat Sci & Math, Dept Computat Math & Comp Sci, 19 Mira St, Ekaterinburg 620002, Russia
[7] Western Caspian Univ, Dept Mech & Math, Baku 1001, Azerbaijan
[8] Princes Nourah Bint Abdulrahman Univ, Coll Sci, Dept Phys, POB 84428, Riyadh 11671, Saudi Arabia
[9] Korea Univ, Univ Coll, Seoul 02481, South Korea
[10] China Med Univ, China Med Univ Hosp, Dept Med Res, Taichung, Taiwan
[11] Majmaah Univ, Coll Sci Al Zulfi, Dept Math, Al Majmaah 11952, Saudi Arabia
关键词
THNF; Nonlinear stretching sheet; Darcy-Forchheimer; ARNN; LMM; SHEET;
D O I
10.1016/j.jrras.2025.101362
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The study develops an advanced supervised learning algorithm integrating an artificial recurrent neural network (ARNN) with the Levenberg-Marquardt method (ARNN-LMM) to model the two-dimensional nonlinear convective flow of a ternary hybrid nanofluid over a nonlinear stretching surface (2D-NCFTNSS). The research addresses a critical gap in predictive modeling by introducing a ternary hybrid nanofluid (THNF) system, incorporating Brownian motion, thermophoresis, nonlinear thermal radiation, and Darcy-Forchheimer effects into the governing equations, which are transformed into a dimensionless form for numerical analysis. The proposed ARNN-LMM framework provides an intelligent computing approach for approximating numerical solutions with high accuracy. The study's novelty lies in the first-time application of ARNN-LMM to solving complex nonlinear transport phenomena and analyzing the impact of physical parameters on flow, thermal, and concentration profiles. Results reveal that velocity decreases with increasing nanoparticle concentration, porosity, and inertia factors, while thermal characteristics improve with higher radiation, Brownian motion, thermophoresis, and heat generation. The percentage increase in the Nusselt number is demonstrated through a statistical chart to support the study. The model's accuracy is validated using regression (RG) index measurements, error histograms (EH), auto-correlation (AC) analysis, and convergence curves, achieving a minimal mean square error (MSE) ranging between E-10 and E-3. Future prospects include extending the model to threedimensional geometries, experimental validation, and real-time applications in thermal energy systems, biomedical cooling, and aerospace heat management. The study highlights the potential of ARNN-LMM for solving nonlinear fluid dynamics problems with superior precision and computational efficiency.
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页数:21
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