Hossam A. Nabwey , A.M.A. EL-Hakiem , Waqar A. Khan , A.M. Rashad , Gehad Sayed
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The significant outcomes show that the skin friction coefficient, as well as the Nusselt and Sherwood numbers, increase along the axial direction, indicating enhanced heat and mass transfer capabilities. Additionally, the study emphasizes the roles of micro polarity, relaxation time, and viscoelastic properties in modulating these transfer processes. These findings have significant implications for applications in biomechanics, polymer manufacturing, aerosol deposition, and thermal treatment processes, offering valuable insights for future research and industrial practices.</p></div>","PeriodicalId":9749,"journal":{"name":"Chemical Engineering Journal Advances","volume":"19 ","pages":"Article 100637"},"PeriodicalIF":5.5000,"publicationDate":"2024-08-15","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.sciencedirect.com/science/article/pii/S2666821124000541/pdfft?md5=b318eef55de14815493153d1829d57b0&pid=1-s2.0-S2666821124000541-main.pdf","citationCount":"0","resultStr":"{\"title\":\"Heat and mass transport micropolar Maxwell and Williamson nanofluids flow past a perpendicular cylinder using combined convective flow\",\"authors\":\"Hossam A. Nabwey , A.M.A. EL-Hakiem , Waqar A. Khan , A.M. 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The significant outcomes show that the skin friction coefficient, as well as the Nusselt and Sherwood numbers, increase along the axial direction, indicating enhanced heat and mass transfer capabilities. Additionally, the study emphasizes the roles of micro polarity, relaxation time, and viscoelastic properties in modulating these transfer processes. 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引用次数: 0
摘要
目前的研究旨在利用 Buongiorno 纳米流体模型,研究微波麦克斯韦纳米流体和威廉姆森纳米流体在联合对流影响下流过垂直圆柱体时的热量和质量传输特性。目的是分析这些纳米流体绕正交圆柱体的轴对称流动,突出各种物理参数对温度曲线和速度分布的影响。使用 Maple 23 软件求解了通过适当相似性变换得到的耦合非线性微分方程。数值结果以表格和图形的形式显示了关键参数对所选微波纳米流体的影响。重要结果表明,沿轴向皮肤摩擦系数以及努塞尔特数和舍伍德数都有所增加,表明传热和传质能力增强。此外,研究还强调了微极性、弛豫时间和粘弹性在调节这些传质过程中的作用。这些发现对生物力学、聚合物制造、气溶胶沉积和热处理过程中的应用具有重要意义,为未来的研究和工业实践提供了宝贵的见解。
Heat and mass transport micropolar Maxwell and Williamson nanofluids flow past a perpendicular cylinder using combined convective flow
The current study aims to investigate the heat and mass transport characteristics of micropolar Maxwell and Williamson nanofluids flowing past a perpendicular cylinder under the influence of combined convective flow using the Buongiorno nanofluid model. The objective is to analyze the axisymmetric flow of these nanofluids around an orthogonal cylinder, highlighting the effects of various physical parameters on temperature profiles and velocity distributions. Maple 23 software was employed to solve the coupled nonlinear differential equations derived from appropriate similarity transformations. The numerical results are presented in tabular and graphical form to show the impacts of key parameters on the selected micropolar nanofluids. The significant outcomes show that the skin friction coefficient, as well as the Nusselt and Sherwood numbers, increase along the axial direction, indicating enhanced heat and mass transfer capabilities. Additionally, the study emphasizes the roles of micro polarity, relaxation time, and viscoelastic properties in modulating these transfer processes. These findings have significant implications for applications in biomechanics, polymer manufacturing, aerosol deposition, and thermal treatment processes, offering valuable insights for future research and industrial practices.