煤油基纳米流体在被水基纳米流体包围的弯曲管核心区域的动力学

Q1 Chemical Engineering
H. Shahzad, Z. Abbas, M.Y. Rafiq
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引用次数: 0

摘要

本研究研究了两种不混相纳米流体(煤油- zno和水- cu)在恒定轴向压力梯度下流过加热弯曲管的流动动力学和传热特性,并在弯曲几何和多流体系统普遍存在的生物医学设备和工业热交换器中应用。该研究解决了在理解曲率诱导的二次流和纳米颗粒性质如何影响这种结构的热性能方面的一个关键空白。采用微扰法和无量纲分析,推导了修正的Navier-Stokes方程的解析解,考察了速度和温度的分布。我们的分析系统地改变了关键参数,包括曲率比、雷诺数和纳米颗粒浓度,以量化它们的影响。结果表明,曲率比增加到0.1时,由于离心力的作用,外壁面轴向速度提高了15 - 25%,而雷诺数超过50时,二次流涡的强度提高了20%,流体混合效果显著。值得注意的是,与基液相比,加入浓度为4%的纳米颗粒,传热性能提高了30 - 35%,这归功于导热性的增强。此外,温度分布表明,相对于核心区域,壁面附近的温度分布降低了15 - 20%,表明有效的热梯度建立。这项工作提供了新的贡献,作为弯曲管道中不混溶纳米流体的第一个分析解决方案,并量化了以前未被探索的曲率和纳米颗粒的协同效应。这些发现为优化紧凑型热交换器和生物工程系统的设计提供了有价值的见解,超越了文献中传统的单流体方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamics of kerosene-based nanofluid in the core region of curved pipe surrounded by a peripheral region containing water-based nanofluid
This study investigates the flow dynamics and heat transfer characteristics of two immiscible nanofluids (kerosene-ZnO and water-Cu) flowing through a heated curved pipe under a constant axial pressure gradient, with applications in biomedical devices and industrial heat exchangers where curved geometries and multi-fluid systems are prevalent. The research addresses a critical gap in understanding how curvature-induced secondary flows and nanoparticle properties influence thermal performance in such configurations. By employing a perturbation method and non-dimensional analysis, we derived analytical solutions to the modified Navier-Stokes equations to examine the velocity and temperature distributions. Our analysis systematically varied key parameters, including curvature ratio, Reynolds number, and nanoparticle concentration to quantify their effects. The results demonstrate that increasing the curvature ratio to 0.1 enhances axial velocity near the outer wall by 15–25 % due to centrifugal forces, while higher Reynolds numbers above 50 intensify secondary flow vortices by 20 %, significantly improving fluid mixing. Notably, incorporating nanoparticles at 4 % concentration boosts heat transfer performance by 30–35 % compared to base fluids, attributed to enhanced thermal conductivity. Additionally, the temperature distribution shows a 15–20 % reduction near the walls relative to the core region, indicating efficient thermal gradient establishment. This work provides novel contributions as the first analytical solution for immiscible nanofluids in curved pipes and quantifies the previously unexplored synergistic effects of curvature and nanoparticles. These findings offer valuable insights for optimizing the design of compact heat exchangers and bioengineered systems, advancing beyond conventional single-fluid approaches in the literature.
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来源期刊
International Journal of Thermofluids
International Journal of Thermofluids Engineering-Mechanical Engineering
CiteScore
10.10
自引率
0.00%
发文量
111
审稿时长
66 days
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