A novel exploration of how localized magnetic field affects vortex generation of trihybrid nanofluids

被引:5
作者
Ahmad, Shabbir [1 ,2 ]
Ali, Kashif [2 ]
Khalid, Fareeha [3 ]
Mckeon, John Joseph [4 ]
Alballa, Tmader [5 ]
Khalifa, Hamiden Abd El-Wahed [6 ,7 ]
Cai, Jianchao [1 ]
机构
[1] China Univ Petr, Natl Key Lab Petr Resources & Engn, Beijing 102249, Peoples R China
[2] Muhammad Nawaz Sharif Univ Engn & Technol, Dept Basic Sci & Humanities, Multan 60000, Pakistan
[3] Khawaja Fareed Univ Engn Technol KFUEIT, Rahim Yar Khan, Pakistan
[4] Temple Univ, Dept Interior Design, Philadelphia, PA USA
[5] Princess Nourah bint Abdulrahman Univ, Coll Sci, Dept Math, POB 84428, Riyadh 11671, Saudi Arabia
[6] Qassim Univ, Coll Sci & Arts, Dept Math, Al Badaya 51951, Saudi Arabia
[7] Cairo Univ, Fac Grad Studies Stat Res, Dept Operat & Management Res, Giza 12613, Egypt
关键词
nanofluidics; alternating direction implicit approach; efficiency; localized magnetic field; HYBRID NANOFLUID; FLOW; CAVITY;
D O I
10.1515/ntrev-2023-0146
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Nanofluidics have better thermal properties than regular fluids, which makes them useful for heat transfer applications. This research investigated the complex dynamics of confined magnetic forces that influence the rotation of nanostructures and vortex formation in a tri-hybrid nanofluid (Ag, Al2O3, TiO2) flow regime. The study shows that the magnetic field can change the flow and heat transfer of nanofluidic, depending on its direction and strength. The study also provides insights into the complex physics of nanofluid flow and heat transfer, which can help design devices that use nanofluids more efficiently for cooling electronics, harvesting solar energy, and generating power from fuel cells. We used a single-phase model to model the nanofluids while the governing partial differential equations were solved numerically. An alternating-direction implicit approach has been employed to analyze the impact of confined magnetic fields on the nanofluid flow and thermal properties. Unlike previous studies that assumed uniform magnetic fields, we introduced multiple confined magnetic fields in the form of horizontal and vertical strips. Using our custom MATLAB codes, we systematically examined various parameters, including the magnetic field strength, number of strips and their position, and nanoparticle volume fraction, to assess their effects on nanofluid flow and thermal characteristics. Our findings revealed that the confined Lorentz force induced the spinning of tri-hybrid nanoparticles, resulting in a complicated vortex structure within the flow regime. In the absence of a magnetic field, a single symmetric vortex can be seen in the flow field. However, the introduction of magnetic sources stretches this vortex until it splits into two smaller, weaker vortices in the lower cavity, rotating clockwise or counterclockwise. Furthermore, the magnetic field strength significantly reduces both skin friction and the Nusselt number, while Reynolds numbers mainly affect the Nusselt number.
引用
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页数:22
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