增强管道中 CuO-MWCNT 油混合纳米流体的传热效果

IF 4.4 2区 物理与天体物理 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
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引用次数: 0

摘要

本研究以机油为基础流体,在水平管道中使用氧化铜和多壁碳纳米管(MWCNT)纳米粒子进行了三维稳态层流模拟。在适用于管壁的恒定热通量边界条件下,对各种纳米粒子体积分数进行了研究。主要目的是评估和比较不同纳米粒子体积浓度(包括比例为 1:1 和 1:2 的 CuO 和 MWCNT)对对流传热的影响。采用二阶离散化方法求解方程,并在 CFD 代码中使用 SIMPLE 算法进行压力-速度耦合。研究重点是在雷诺数为 750 时,纳米粒子体积分数对对流传热系数和努塞尔特数的影响。研究结果表明,增加纳米粒子的体积分数可提高对流传热系数和努塞尔特数,与 CuO 相比,MWCNT 的影响更为明显。具体来说,添加 2% 的 CuO 可使传热系数提高 65%,而添加 1% CuO 和 1% MWCNT 的混合物可使传热系数提高 75%。热边界层厚度也随着纳米粒子浓度的增加而增加,1% CuO 和 3% CuO 的厚度分别增加了 1.5% 和 3.6%。根据体积分数提供了氧化铜-油纳米流体中热边界层厚度的计算公式,对平均传热系数的比例分析证实模拟结果与该分析一致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing the heat transfer in CuO-MWCNT oil hybrid nanofluid flow in a pipe

In this study, three-dimensional steady-state laminar flow simulations were conducted in a horizontal pipe using CuO and multi-walled carbon nanotubes (MWCNT) nanoparticles with engine oil as the base fluid. Various nanoparticle volume fractions were examined under a constant heat flux boundary condition applied to the pipe wall. The main goal was to assess and compare the effects of different nanoparticle volume concentrations, including CuO and MWCNT in ratios of 1:1 and 1:2, on convective heat transfer. A second-order discretisation method was employed for solving the equations, and the SIMPLE algorithm was used for pressure–velocity coupling in the CFD code. The study focused on the impact of nanoparticle volume fraction on the convective heat transfer coefficient and the Nusselt number at a Reynolds number of 750. The findings indicate that increasing the nanoparticle volume fraction enhances both the convective heat transfer coefficient and the Nusselt number, with MWCNT having a more pronounced effect compared to CuO. Specifically, adding 2% CuO increases the heat transfer coefficient by 65%, while a mixture of 1% CuO and 1% MWCNT boosts it by 75%. The thermal boundary layer thickness also grows with higher nanoparticle concentrations, with 1% CuO and 3% CuO increasing the thickness by 1.5% and 3.6%, respectively. A formula for the thermal boundary layer thickness in CuO-oil nanofluids is provided based on volume fraction, and a scale analysis of the average heat transfer coefficient confirms that the simulation results are consistent with this analysis.

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来源期刊
Results in Physics
Results in Physics MATERIALS SCIENCE, MULTIDISCIPLINARYPHYSIC-PHYSICS, MULTIDISCIPLINARY
CiteScore
8.70
自引率
9.40%
发文量
754
审稿时长
50 days
期刊介绍: Results in Physics is an open access journal offering authors the opportunity to publish in all fundamental and interdisciplinary areas of physics, materials science, and applied physics. Papers of a theoretical, computational, and experimental nature are all welcome. Results in Physics accepts papers that are scientifically sound, technically correct and provide valuable new knowledge to the physics community. Topics such as three-dimensional flow and magnetohydrodynamics are not within the scope of Results in Physics. Results in Physics welcomes three types of papers: 1. Full research papers 2. Microarticles: very short papers, no longer than two pages. They may consist of a single, but well-described piece of information, such as: - Data and/or a plot plus a description - Description of a new method or instrumentation - Negative results - Concept or design study 3. Letters to the Editor: Letters discussing a recent article published in Results in Physics are welcome. These are objective, constructive, or educational critiques of papers published in Results in Physics. Accepted letters will be sent to the author of the original paper for a response. Each letter and response is published together. Letters should be received within 8 weeks of the article''s publication. They should not exceed 750 words of text and 10 references.
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