表面粗糙度以及速度和热滑移影响下的混合纳米流体传热分析

IF 2.8 Q2 THERMODYNAMICS
Heat Transfer Pub Date : 2024-11-01 DOI:10.1002/htj.23206
Imran Siddique, Muhammad Irfan, Mawaheb Al-Dossari, A. Alqahtani, Mubbashar Nazeer, Shaxnoza Saydaxmetova
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引用次数: 0

摘要

表面粗糙度对纳米流体的蠕动运动有很大的影响,在工程、制造业和材料科学中具有重要的作用。在组织工程,成像技术,种植体表面光洁度,手术器械纹理,和组织工程,等等。本研究探讨了双电层、表面粗糙度、速度滑移和热滑移的影响,以研究钴和氧化铝纳米颗粒通过均匀和非均匀水平管与水的传热速率。本文采用Jeffrey纳米流体流动模型,研究了氧化铝和钴纳米颗粒混合纳米流体悬浮在水中的传热现象。考虑了电渗透、表面粗糙度、粘性耗散、热源/汇参数、速度和热滑移等因素对混合纳米流体在均匀管和非均匀管中蠕动运动的影响。利用数学软件MATHEMATICA 13.3求出精确解和图形化结果,研究复杂的流动特性。注意到管壁附近的速度对表面粗糙度参数的影响较小,而对核心部分的影响较大。其余参数的速度行为则相反。除表面粗糙度参数外,当前流体流动的温度对所有参数都升高。与核心部分的纳米流体相比,混合纳米流体的速度效应更为显著。与纳米流体相比,混合纳米流体的温度分布和传热速率更低,显示出冷却效果。本研究对热疗、基因治疗、给药、组织工程等领域具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Heat transfer analysis of hybrid nanofluid under the effects of surface roughness along with velocity and thermal slips

Surface roughness has a great impact on the peristaltic motion of nanofluid flow and plays an important role in engineering, manufacturing, and material sciences. During tissue engineering, imaging techniques, implant surface finish, surgical instrument texture, and tissue engineering, and so forth. This study explores the effects of electrical double layers, surface roughness, velocity slip, and thermal slip to investigate the heat transfer rate of cobalt and alumina nanoparticles with water through uniform and nonuniform horizontal tubes. In the present study, the Jeffrey nanofluid flow model is chosen to investigate the heat transfer phenomenon of hybrid nanofluids based on alumina and cobalt nanoparticles suspension in water. The effects of electroosmosis, surface roughness, viscous dissipation, heat source/sink parameter, velocity, and thermal slips are also under consideration during the peristaltic motion of hybrid nanofluid in uniform and nonuniform tubes. The mathematical software MATHEMATICA 13.3 is utilized to find the exact solution and graphical results to investigate the complicated flow behavior. It is noticed that the velocity near the walls of the tube is lower for the surface roughness parameter and higher in the core part. The behavior of velocity for the remaining parameter is the opposite. The temperature of the current fluid flow increases for all parameters except the surface roughness parameter. The effects of velocity for hybrid nanofluid are prominent as compared with nanofluid in the core part. The temperature profile and heat transfer rate for hybrid nanofluids are lower as compared with nanofluids, which shows the cooling effects. This study is beneficial for hyperthermia, gene therapy, drug delivery, and tissue engineering.

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来源期刊
Heat Transfer
Heat Transfer THERMODYNAMICS-
CiteScore
6.30
自引率
19.40%
发文量
342
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