Theoretical analysis using thermal efficiency concept in straight micro channel printed circuit heat exchanger

Élcio Nogueira, Humberto Araújo Machado
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Abstract

The objective is to analyze the thermal and hydraulic performance in a Micro Channel Straight Printed Circuit Heat Exchanger. Counterflow and parallel flow configurations were analyzed for water cooling using ethylene glycol-based fluid and platelet-shaped non-spherical Boehmite alumina nanoparticles. The work presents results from applying a dimensionless theory that uses the concepts of thermal efficiency of heat exchangers and quantities associated with the second law of thermodynamics. Thermal efficiency, thermal effectiveness, thermal and viscous irreversibilities, thermodynamic Bejan number, and outlet water temperatures are presented in graph form. The data obtained allow us to conclude that the heat exchanger can work in a range of water and refrigerant flow rates below the design parameters. With the inclusion of nanoparticles with a volume fraction equal to 5.0%, the flow rates of the refrigerant fluid can be significantly reduced. The analysis performed shows that the use of nanoparticles improves the operational cost-benefit of the heat exchanger with a significant reduction in the hot water outlet temperature.
利用热效率概念对直式微通道印刷电路热交换器进行理论分析
目的是分析微通道直印制电路热交换器的热性能和水力性能。分析了使用乙二醇基流体和板状非球形波姆氧化铝纳米颗粒进行水冷却的逆流和平行流配置。这项工作介绍了应用无量纲理论得出的结果,该理论使用了热交换器热效率的概念以及与热力学第二定律相关的量。热效率、热效力、热不可逆性和粘性不可逆性、热力学贝扬数和出水温度以图表形式呈现。根据所获得的数据,我们可以得出结论,热交换器可以在低于设计参数的水和制冷剂流速范围内工作。加入体积分数等于 5.0% 的纳米颗粒后,制冷剂流体的流速可以显著降低。分析表明,纳米颗粒的使用提高了热交换器的运行成本效益,显著降低了热水出口温度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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