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A method to reduce the flow depth of a plate heat exchanger without a loss of heat transfer performance

机译:在不损失传热性能的情况下减小板式热交换器的流量深度的方法

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With the aim of improving heat exchanger compactness, this study investigates how the optimum configuration of an air-liquid plate heat exchanger changes as the heat exchanger depth decreases. In this respect, optimization of an air-liquid plate heat exchanger with a given frontal area and a given depth is achieved. The optimum fin pitch and plate pitch are obtained to maximize the heat transfer rate based on heat transfer and pressure loss correlations in finned channels. Then, the focus of this study is placed on how the optimum channel configuration changes when the heat exchanger depth decreases for compactness. The results illustrate that the heat transfer performance can remain unchanged if the geometric parameters, such as the plate thickness, the plate pitch, the fin thickness, and the fin pitch, are reduced proportionally to the square root of the flow depth reduction given that the flow remains laminar. This finding is arranged into a simple scaling rule to obtain the configuration of a more compact heat exchanger from an existing configuration. In addition, the scaling arguments are extended to practical situations where the fin thickness and the plate thickness are not properly reduced following the scaling rule due to limitations on available material thicknesses.
机译:为了提高热交换器的紧凑性,本研究研究了气液板式热交换器的最佳配置如何随着热交换器深度的减小而变化。在这方面,实现了具有给定的正面面积和给定的深度的气液板式热交换器的优化。基于翅片通道中的传热和压力损失相关性,可以获得最佳的翅片节距和板节距,以使传热速率最大化。然后,本研究的重点放在当热交换器深度减小以实现紧凑性时最佳通道配置如何变化。结果表明,如果几何参数(例如板厚度,板节距,翅片厚度和翅片节距)与流动深度减小的平方根成比例地减小,则传热性能可以保持不变。流动保持层流。该发现被安排为简单的缩放规则,以从现有配置中获得更紧凑的热交换器的配置。另外,缩放参数扩展到实际情况,其中由于可用材料厚度的限制,翅片厚度和板厚度没有按照缩放规则适当减小。

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