An experimental and computational study of approach air distribution for slanted and A-shaped finned-tube heat exchangers

D. Yashar, P. Domanski, Honghyun Cho
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引用次数: 6

Abstract

One of the most influential factors of the performance of a finned-tube heat exchanger is the distribution of the air passing through it; therefore, it must be known in order to produce a highly efficient design. We examined two different common style air-to-refrigerant, finned-tube heat exchangers: a single-slab coil oriented at an angle of 65° to the duct wall and an A-shaped coil with an apex angle of 34°. We used particle image velocimetry (PIV) to measure their in-situ airflow distributions. The results show that the airflow distributions for both heat exchangers are highly nonuniform with different sections being subject to vastly different air velocities. We also used a momentum resistance-based computational fluid dynamics (CFD) approach to model the airflow distributions through these heat exchangers. The modeled results agreed with the measured values, with most of the simulated velocities falling within +/-10% of the measured velocities. The results of this study show that the velocity profile for any configuration is strongly influenced by the geometry of the heat exchanger and other features in its proximity and, therefore, each installation configuration will have its own unique velocity distribution. The information presented in this paper documents the maldistribution of airflowing through finned-tube heat exchangers and highlights the sources and magnitude of the nonuniformities.
斜a型翅片管换热器进近气流组织的实验与计算研究
翅片管换热器性能最重要的影响因素之一是流经换热器的空气分布;因此,为了产生高效的设计,必须了解它。我们研究了两种不同的常见风格的空气-制冷剂翅片管热交换器:一种是与管壁成65°角的单板盘管,另一种是顶点角为34°的a型盘管。采用粒子图像测速法(PIV)测量了它们的原位气流分布。结果表明,两种换热器的气流分布高度不均匀,不同截面受到的风速差异很大。我们还使用了基于动量阻力的计算流体动力学(CFD)方法来模拟通过这些热交换器的气流分布。模拟结果与实测值一致,大部分模拟速度落在实测值的+/-10%以内。本研究的结果表明,任何配置的速度分布都受到热交换器的几何形状和其附近的其他特征的强烈影响,因此,每种安装配置都将具有自己独特的速度分布。本文提供的信息记录了空气流动在翅片管换热器中的不均匀性,并强调了不均匀性的来源和程度。
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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来源期刊
HVAC&R Research
HVAC&R Research 工程技术-工程:机械
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