Energy and Second Law of Thermodynamics Analysis of Shower Cooling Tower with Variation in Inlet Air Temperature

M. Zunaid, Q. Murtaza, Samsher
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引用次数: 3

Abstract

A shower cooling tower (SCT) operates without fill because of salt decomposition on the fill that leads to deterioration of conventional cooling tower performance. This study presents a two-dimensional mathematical model for energy and exergy analysis of multi-diameter droplets and air interaction along with the height of the forced draft SCT, to predict the exit condition of water droplet for industrial application. Different inlet air dry bulb temperatures (DBT) were used for the study and the model was validated with experimental results. At the inlet of the tower, ten different diameters of water droplets simultaneously were used at a given time for analysis and the droplet diameter model based on Rosin Rammler distribution. The result showed that thermal efficiency and second law efficiency relatively increased along the height of SCT with increase of the inlet air temperature. It was confirmed that maximum reduction in water droplet temperature along the height of SCT was achieved by minimum inlet air DBT. It was also noticed that exergy supplied by water was more than exergy absorbed by air and maximum destruction of total exergy took place at the beginning of air-water interaction.
随进气温度变化的淋浴式冷却塔能量及热力学第二定律分析
淋浴冷却塔(SCT)经营没有填补因为盐分解的填补,导致传统冷却塔性能的恶化。本文建立了多直径水滴的能量和火用分析的二维数学模型,以及空气随强制气流SCT高度的相互作用,为工业应用预测水滴的出口条件。采用不同的进口空气干球温度(DBT)进行研究,并用实验结果对模型进行了验证。在塔的进口处,在给定时间内同时使用10个不同直径的水滴进行分析,并建立了基于松香Rammler分布的水滴直径模型。结果表明:随着进气温度的升高,沿SCT高度的热效率和第二定律效率相对增加;结果表明,当进口空气DBT最小时,沿SCT高度水滴温度降低最大。还注意到,水提供的能大于空气吸收的能,总能的最大破坏发生在空气-水相互作用开始时。
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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CiteScore
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