Enhanced Thermal Transport in Magnetized Cu-Fe3O4/Water Hybrid Nanofluid on a Curved Surface with Improved Heat Absorption Coefficient

被引:1
|
作者
Lakshmi, K. Bhanu [1 ]
Gangadhar, Kotha [2 ]
Lavanya, M. Rupa [3 ]
Wakif, Abderrahim [4 ]
机构
[1] Lakireddy Bali Reddy Coll Engn Autonomous, Mylavaram 521230, Andhra Pradesh, India
[2] Acharya Nagarjuna Univ, Dept Math, Guntur 522510, Andhra Pradesh, India
[3] DVR & Dr HS M Coll Technol, Dept Math, Kanchikacherla, Andhra Pradesh, India
[4] Hassan II Univ Casablanca, Fac Sci Ain Chock, Lab Mech, Casablanca 20220, Morocco
来源
关键词
Suction and injection; composite nanofluid; bended surface; MHD; FLOW;
D O I
10.1142/S1793292024501406
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
This research utilizes the bvp4c method to conduct a detailed numerical analysis of the hydrothermal behavior of magnetized hybrid nanofluids flowing across a permeable curved surface. The study explores the impact of crucial parameters such as curvature, magnetic field strength, viscosity and suction/injection, alongside the heat absorption coefficient, on the transport properties of copper (Cu) and ferric oxide (Fe3O4) nanomaterial's suspended in water. Results reveal that as the curvature parameter increases, velocity profiles exhibit a decrease under suction conditions and an increase under injection conditions for both conventional and hybrid nanofluids. Furthermore, higher magnetic parameters are found to decrease velocities in general. Hybrid nanofluids display enhanced velocity and thermal performance compared to conventional nanofluids, manifesting higher skin friction and heat transfer rates. Temperature profiles exhibit a complex interplay with curvature, magnetic parameters and the injection/suction scenario, where injection conditions intensify thermal effects. The incorporation of the heat absorption coefficient further amplifies the thermal efficiency of hybrid nanofluids. These findings, supported by previous research, offer valuable insights for optimizing industrial processes, especially in sectors like ceramics, plastics and polymers, where efficient heat management is paramount.
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页数:11
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