基于实验和数值研究的翅片表面性能优化

IF 1.6 4区 工程技术 Q3 ENGINEERING, MECHANICAL Journal of Thermal Science and Engineering Applications Pub Date : 2023-05-16 DOI:10.1115/1.4062554
Eyup Kocak, H. Turkoglu, Ulku Ece Aylı
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引用次数: 0

摘要

本文介绍了雷诺数为23600 ~ 150000的直矩形翅片水平表面强制对流换热的数值和实验研究结果。搭建了一套实验装置,测量了在不同流动条件下,固定翅片数、宽度和长度的水平面换热率。利用基于OpenFOAM平台开发的计算机程序进行了二维数值分析,观察了传热和流动行为。通过数值计算结果与实验结果的比较,验证了程序的正确性。研究了不同翅片高度和宽度比下几何参数对换热系数和努塞尔数的影响。数值计算结果表明,通过改变翅片结构的几何参数来增加换热是一种有效的方法。在雷诺数为23600 ~ 150000、普朗特数为0.705 ~ 5.41、翅高比h/ h为0.166 ~ 0.333、翅厚/高比(t/h)为0.066 ~ 0.20的条件下,建立了矩形鳍阵列上稳态湍流流场的努塞尔数相关关系。所建立的相关性预测Nusselt数,相对RMS误差为0.36%。
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PERFORMANCE OPTIMIZATION OF FINNED SURFACES BASED ON THE EXPERIMENTAL AND NUMERICAL STUDY
This paper presents the findings of numerical and experimental investigations into the forced convection heat transfer from horizontal surfaces with straight rectangular fins at Reynolds numbers ranging from 23600 to 150000. A test set-up was constructed to measure the heat transfer rate from a horizontal surface with a constant number of fins, fin width and fin length under different flow conditions. Two-dimensional numerical analyses were performed to observe the heat transfer and flow behaviour using a computer program developed based on the OpenFOAM platform. The code developed was verified by comparing the numerical results with the experimental results. The effect of geometrical parameters on heat transfer coefficient and Nusselt number were investigated for different fin height and width ratios. Numerical results show that one way to increase heat transfer by modifying the fin structure geometrical parameters. With the help of the obtained results, a correlation for Nusselt number was developed and presented for steady-state, turbulent flows over rectangular fin arrays for Reynolds number ranging from 23600 to 150000, Prandtl number ranging from 0.705 to 5.41, for fin height ratios h/H ranging from 0.166 to 0.333, and fin thickness to fin height ratios (t/h) between of 0.066 and 0.20. The correlation developed predicts the Nusselt number with a relative RMS error of 0.36%.
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来源期刊
Journal of Thermal Science and Engineering Applications
Journal of Thermal Science and Engineering Applications THERMODYNAMICSENGINEERING, MECHANICAL -ENGINEERING, MECHANICAL
CiteScore
3.60
自引率
9.50%
发文量
120
期刊介绍: Applications in: Aerospace systems; Gas turbines; Biotechnology; Defense systems; Electronic and photonic equipment; Energy systems; Manufacturing; Refrigeration and air conditioning; Homeland security systems; Micro- and nanoscale devices; Petrochemical processing; Medical systems; Energy efficiency; Sustainability; Solar systems; Combustion systems
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