Characterization and machine learning analysis of hybrid alumina-copper oxide nanoparticles in therminol 55 for medium temperature heat transfer fluid

被引:2
作者
Kadirgama, G. [1 ]
Ramasamy, D. [1 ]
Kadirgama, K. [1 ,2 ,3 ]
Samylingam, L. [4 ]
Aslfattahi, Navid [5 ]
Qazani, Mohammad Reza Chalak [6 ]
Kok, Chee Kuang [4 ]
Yusaf, Talal [7 ]
Schmirler, Michal [5 ]
机构
[1] Univ Malaysia Pahang, Fac Mech & Automot Engn Technol, Pekan 26600, Pahang, Malaysia
[2] Univ Malaysia Pahang, Ctr Excellence Adv Res Fluid Flow, Pekan 26600, Pahang, Malaysia
[3] Chennai Inst Technol, Ctr Sustainable Mat & Surface Metamorphosis CSMSM, Chennai, India
[4] Multimedia Univ, Fac Engn & Technol, Ctr Adv Mech & Green Technol, Jalan Ayer Keroh Lama, Bukit Beruang 75450, Melaka, Malaysia
[5] Czech Tech Univ, Inst Fluid Dynam & Thermodynam, Fac Mech Engn, Tech 4, Prague 16607, Czech Republic
[6] Sohar Univ, Fac Comp & Informat Technol, Sohar, Oman
[7] Cent Queensland Univ, Sch Engn & Technol, Brisbane, Qld 4008, Australia
关键词
THERMAL-CONDUCTIVITY; NANOFLUIDS; PERFORMANCE; STABILITY;
D O I
10.1038/s41598-025-92461-3
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
Efficient heat dissipation is crucial for various industrial and technological applications, ensuring system reliability and performance. Advanced thermal management systems rely on materials with superior thermal conductivity and stability for effective heat transfer. This study investigates the thermal conductivity, viscosity, and stability of hybrid Al2O3-CuO nanoparticles dispersed in Therminol 55, a medium-temperature heat transfer fluid. The nanofluid formulations were prepared with CuO-Al2O3 mass ratios of 10:90, 20:80, and 30:70 and tested at nanoparticle concentrations ranging from 0.1 wt% to 1.0 wt%. Experimental results indicate that the hybrid nanofluids exhibit enhanced thermal conductivity, with a maximum improvement of 32.82% at 1.0 wt% concentration, compared to the base fluid. However, viscosity increases with nanoparticle loading, requiring careful optimization for practical applications. To further analyze and predict thermal conductivity, a Type-2 Fuzzy Neural Network (T2FNN) was employed, demonstrating a correlation coefficient of 96.892%, ensuring high predictive accuracy. The integration of machine learning enables efficient modeling of complex thermal behavior, reducing experimental costs and facilitating optimization. These findings provide insights into the potential application of hybrid nanofluids in solar thermal systems, heat exchangers, and industrial cooling applications.
引用
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页数:24
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