Elastic deformation impact on trihybrid nanofluid flow through different geometries with the combine effects of electrophoresis and thermophoresis

IF 5.9 2区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY Ain Shams Engineering Journal Pub Date : 2025-01-01 Epub Date: 2024-11-25 DOI:10.1016/j.asej.2024.103172
Munawar Abbas , A. Al-Zubaidi , Abdullah A. Faqihi , Ilyas Khan , A.F. Aljohani , Abdoalrahman S.A. Ome , Ahmed M. Gala
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Abstract

This study inspected the impacts of thermophoresis and electrophoresis on the rate of aerosol particle deposition through cone, plate, wedge geometries in a Marangoni convective flow. The proposed mathematical model becomes more innovative by taking into account the effects of elastic deformation, variable thermal conductivity and mixed convection. It uses a trihybrid nanofluid composed of water-based fluid, Silver (Ag), Titanium dioxide (TiO2), and Magnesium oxide (Mgo) nanoparticles. One important area of use is in the design and improvement of trihybrid nanofluid-based materials with specialized thermal, electrical, and mechanical properties. Improvements in heat transmission in microfluidic and nanofluidic devices are critical for chemical reactions, electronics cooling, and biological applications. Improved materials processing methods, precise drug administration mechanisms, and more effective cooling systems can all result from an understanding of the interactions between fluid flow, elastic deformation, and nanoparticle dynamics under the impact of electrical and temperature gradients. The equations corresponding to the suggested PDEs (particle differential equations) are converted into ODEs (ordinary differential equations) by choosing suitable similarity transformation. The semi-analytical technique HAM (Homotopy analysis method) is executed to drive the solution of the proposed problem. When the values of the elastic deformation parameter increase, the thermal and velocity profiles decline. With higher values of electrophoretic parameter, the concentration profile becomes augmented.

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弹性变形对三杂化纳米流体在不同几何形状下的流动的影响
本研究考察了热泳进和电泳对马兰戈尼对流流中气溶胶颗粒通过锥、板、楔等几何形状沉积速率的影响。该数学模型考虑了弹性变形、变导热系数和混合对流的影响,更具创新性。它使用由水基流体、银(Ag)、二氧化钛(TiO2)和氧化镁(Mgo)纳米颗粒组成的三杂交纳米流体。一个重要的应用领域是设计和改进具有特殊热、电和机械性能的三杂化纳米流体材料。微流控和纳米流控器件的传热性能的改进对化学反应、电子冷却和生物应用至关重要。改进的材料加工方法,精确的给药机制,以及更有效的冷却系统都可以从理解流体流动,弹性变形和纳米颗粒动力学在电和温度梯度影响下的相互作用中产生。通过选择合适的相似变换,将所建议的PDEs(粒子微分方程)对应的方程转换为ODEs(常微分方程)。采用半解析技术HAM(同伦分析方法)驱动问题的求解。当弹性变形参数增大时,热剖面和速度剖面减小。电泳参数值越高,浓度谱越宽。
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来源期刊
Ain Shams Engineering Journal
Ain Shams Engineering Journal Engineering-General Engineering
CiteScore
10.80
自引率
13.30%
发文量
441
审稿时长
49 weeks
期刊介绍: in Shams Engineering Journal is an international journal devoted to publication of peer reviewed original high-quality research papers and review papers in both traditional topics and those of emerging science and technology. Areas of both theoretical and fundamental interest as well as those concerning industrial applications, emerging instrumental techniques and those which have some practical application to an aspect of human endeavor, such as the preservation of the environment, health, waste disposal are welcome. The overall focus is on original and rigorous scientific research results which have generic significance. Ain Shams Engineering Journal focuses upon aspects of mechanical engineering, electrical engineering, civil engineering, chemical engineering, petroleum engineering, environmental engineering, architectural and urban planning engineering. Papers in which knowledge from other disciplines is integrated with engineering are especially welcome like nanotechnology, material sciences, and computational methods as well as applied basic sciences: engineering mathematics, physics and chemistry.
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