微极纳米流体在具有运动壁面、旋转圆柱体和各向异性多孔元素的复杂动力系统中的高度混合对流

IF 6.4 2区 工程技术 Q1 MECHANICS
Sameh E. Ahmed , Zehba Raizah , Zahra S. Hafed , Muflih Alhazmi
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引用次数: 0

摘要

本文研究了剪切力驱动的流动和复杂域内由内旋转引起的流动。该域由带有两个波浪形壁和一个内加热圆柱体的外壳组成。非平面边缘(不规则的左壁和规则的顶壁)以恒定的速度运动,而不规则的腔体内充满了 LTNE(局部热非平衡)多孔介质,该介质具有各向异性的渗透性和导热性。研究侧重于各种情况,包括左边缘和顶边缘的不同运动方向,剪切流和内部旋转或近或远的情况,以及旋转方向(顺时针或逆时针)和旋转圆柱体的不同半径。主流体是微极性纳米流体,分析了包含阿伦尼乌斯能量的两相模型。求解方法采用了基于有限体积(FV)方法的新型多边形内点边界识别技术。此外,还利用新颖的极性表示法介绍了圆柱体周围的热传导率。最后,利用人工神经网络(ANN)技术对重要的物理量进行了预测。主要结果表明,相反的边界运动会产生强烈的再循环和混合对流,而均匀的运动则会导致更稳定的流动模式。此外,尽管气缸旋转有变化,但剪切运动仍是影响温度和纳米粒子分布的主要因素。此外,靠近剪切流区域的圆筒会增强流动强度和热传递,而较大的圆筒半径会加强旋转效应,但会阻碍剪切流,从而改变流线模式并降低对流效率。此外,在顺时针旋转的情况下,圆柱体半径从 0.1 到 0.2 的范围内,传热率提高了 34.79%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Highly mixed convection of micropolar nanofluids in a complex dynamic system with moving walls, a rotating cylinder, and anisotropic porous elements
This paper investigates shear-driven flow and the flow induced by inner rotation within a complex domain. The domain consists of an enclosure with two wavy walls and an inner heated cylinder. The non-faceted edges (irregular left wall and regular top wall) move at a constant speed, while the irregular chambers are filled with an LTNE (Local Thermal Nonequilibrium) porous medium that exhibits anisotropic permeability and thermal conductivity. The study focuses on various cases, including different movement directions of the left and top edges, cases where shear flow and inner rotation are either close or far apart, as well as the rotation direction (clockwise or counterclockwise) and varying radii of the rotating cylinder. The host fluid is a micropolar nanofluid, and a two-phase model incorporating Arrhenius energy is analyzed. The solution methodology employs a novel Point-in-Polygon Boundary Identification technique based on Finite Volume (FV) methods. Additionally, heat transfer rates around the cylinder are presented using novel polar representations. Finally, predictions of important physical quantities are made using the Artificial Neural Network (ANN) technique. The major results indicate to opposing boundary movements create strong recirculation and mixed convection, while uniform movements lead to more stable flow patterns. Also, despite variations in cylinder rotation, shear-induced movement remains the dominant factor influencing temperature and nanoparticle distribution. Additionally, a cylinder placed closer to shear flow regions enhances flow intensity and heat transfer, whereas larger cylinder radii strengthen rotational effects but obstruct shear flow, altering streamline patterns and reducing convective efficiency. Furthermore, in the clockwise rotation case, a cylinder radius ranging from 0.1 to 0.2 results in a 34.79 % improvement in the heat transfer rate.
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来源期刊
CiteScore
11.00
自引率
10.00%
发文量
648
审稿时长
32 days
期刊介绍: International Communications in Heat and Mass Transfer serves as a world forum for the rapid dissemination of new ideas, new measurement techniques, preliminary findings of ongoing investigations, discussions, and criticisms in the field of heat and mass transfer. Two types of manuscript will be considered for publication: communications (short reports of new work or discussions of work which has already been published) and summaries (abstracts of reports, theses or manuscripts which are too long for publication in full). Together with its companion publication, International Journal of Heat and Mass Transfer, with which it shares the same Board of Editors, this journal is read by research workers and engineers throughout the world.
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