双重分层对具有粘性耗散和焦耳加热的指数拉伸可渗透薄片上Jeffrey纳米流体磁流体动力流动的影响。

IF 4.2 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY Frontiers in Chemistry Pub Date : 2025-02-10 eCollection Date: 2024-01-01 DOI:10.3389/fchem.2024.1451053
M Siva Sankari, M Eswara Rao, Fuad A Awwad, Emad A A Ismail, O D Makinde, Waris Khan
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摘要

与传统的颗粒-液体悬浮液相比,纳米颗粒在增强热性能方面表现出优越的潜力。这项研究深入研究了磁流体动力学(MHD)漂移,热和传质效应在杰弗瑞纳米颗粒液体。该研究包括考虑热泳动和布朗运动对颗粒沉积影响的转移方程。该分析考察了纳米流体通过多孔、指数伸长薄片的影响,重点关注传热和传质的双重分层效应。主要的重点是制定热能方程,其中包括焦耳加热,热产生,和欧姆耗散项。第一步是利用相似变量将非线性初等方程及其相关边界条件转化为无量纲形式。然后应用同伦分析方法得到了方程的解析结果。给出了各种参数对速度和温度值影响的图形表示,并详细讨论了这些影响。给出并说明了具体参数对阻力因子的影响,即努塞尔数和舍伍德数。此外,该研究可应用于环境工程,特别是在水体热污染管理中,通过帮助预测温度分布和流出物的混合行为。
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Influence of dual stratification on the magnetohydrodynamic flow of Jeffrey nanofluid over an exponentially stretching permeable sheet with viscous dissipation and Joule heating.

Nanoparticles show superior potential for enhancing thermal properties compared to conventional particle-liquid suspensions. This investigation delves into magnetohydrodynamics (MHD) drift, heat, and mass transfer effects within a Jeffery nanoparticle liquid. The study includes transference equations that consider the influences of thermophoresis and Brownian motion on particle deposition. The analysis examines the impact of a nanofluid through a porous, exponentially elongating sheet, focusing on the double-stratification effects on heat and mass transference. The primary emphasis is on the formulated thermal energy equation, which incorporates Joule heating, heat generation, and ohmic dissipation terms. The initial step involves transforming the non-linear primary equations and their related boundary conditions into non-dimensional forms using similarity variables. The homotopy analysis method is then applied to obtain analytical results for the equations. Graphical representations of the impacts of various parameters on velocity and temperature values are presented, along with a detailed discussion of these impacts. A comprehensive analysis of specific parameters on the drag force factor-reduced Nusselt number and Sherwood number is provided and illustrated. Additionally, this research is applicable in environmental engineering, particularly in managing thermal pollution in water bodies, by aiding in predicting temperature distribution and the mixing behavior of effluents.

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来源期刊
Frontiers in Chemistry
Frontiers in Chemistry Chemistry-General Chemistry
CiteScore
8.50
自引率
3.60%
发文量
1540
审稿时长
12 weeks
期刊介绍: Frontiers in Chemistry is a high visiblity and quality journal, publishing rigorously peer-reviewed research across the chemical sciences. Field Chief Editor Steve Suib at the University of Connecticut is supported by an outstanding Editorial Board of international researchers. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to academics, industry leaders and the public worldwide. Chemistry is a branch of science that is linked to all other main fields of research. The omnipresence of Chemistry is apparent in our everyday lives from the electronic devices that we all use to communicate, to foods we eat, to our health and well-being, to the different forms of energy that we use. While there are many subtopics and specialties of Chemistry, the fundamental link in all these areas is how atoms, ions, and molecules come together and come apart in what some have come to call the “dance of life”. All specialty sections of Frontiers in Chemistry are open-access with the goal of publishing outstanding research publications, review articles, commentaries, and ideas about various aspects of Chemistry. The past forms of publication often have specific subdisciplines, most commonly of analytical, inorganic, organic and physical chemistries, but these days those lines and boxes are quite blurry and the silos of those disciplines appear to be eroding. Chemistry is important to both fundamental and applied areas of research and manufacturing, and indeed the outlines of academic versus industrial research are also often artificial. Collaborative research across all specialty areas of Chemistry is highly encouraged and supported as we move forward. These are exciting times and the field of Chemistry is an important and significant contributor to our collective knowledge.
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