首页> 外文会议>International Institute of Refrigeration-Gustav Lorentzen Conference on Natural Working Fluid >MATHEMATICAL MODELLING OF A LOW APPROACH EVAPORATIVE COOLING PROCESS FOR SPACE COOLING IN BUILDINGS
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MATHEMATICAL MODELLING OF A LOW APPROACH EVAPORATIVE COOLING PROCESS FOR SPACE COOLING IN BUILDINGS

机译:低接近蒸发冷却过程的数学建模在建筑物中的空间冷却

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This paper describes a mathematical model of a low approach open evaporative cooling tower for the production of high temperature indirect cooling water (14-16°C) for use in building radiant cooling and displacement ventilation systems. There are several potential approaches to model evaporative cooling, including: the Poppe method, the Merkel method and the effectiveness-NTU (ε-NTU) method. A common assumption, applied to the Merkel and ε-NTU methods, is that the effect of change in tower water mass flow rate due to evaporation is ignored, which results in a simpler model with reduced computational requirements, but with somewhat decreased accuracy. In this paper, a new improved method, called the corrected ε-NTU approach is proposed, where the water loss due to evaporation is taken into account. It is expected by this correction the results of improved ε-NTU in the category of heat transfer will be more close to the results of more rigorous Poppe method. The current mathematical model is evaluated against experimental data reported for a number of open tower configurations, subject to different water temperature and ambient boundary conditions. It is shown that the discrepancies between the calculated and experimental tower outlet temperatures are to within ±0.35°C for a low temperature cooling water process (14-16°C), subject to temperate climate ambient conditions and ±0.85°C for a high temperature cooling water process (29-36°C), subject to continental climate ambient conditions. Considering the associated tower cooling loads, predicted results were found to be within a 6% root-mean-square difference compared to experimental data.
机译:本文介绍了一种用于生产高温间接冷却水(14-16°C)的低接近蒸发冷却塔的数学模型,用于建筑辐射冷却和位移通风系统。模型蒸发冷却有几种潜在的方法,包括:POPPE方法,Merkel方法和有效性-NTU(ε-NTU)方法。应用于Merkel和ε-NTU方法的常见假设,是忽略塔水质流量变化的影响,忽略了蒸发引起的效果,这导致了更简单的计算要求,但精度略微降低。本文提出了一种称为校正ε-NTU方法的新改进方法,考虑到蒸发引起的水损失。预期通过该校正,传热类别中改善ε-NTU的结果将更接近更严格的POPPE方法的结果。根据不同的水温和环境边界条件,评估当前数学模型针对报告的许多开放塔配置的实验数据。结果表明,计算的和实验塔出口温度之间的差异在低温冷却水处理(14-16°C)以内,以温度气候环境条件和高度为±0.85°C而在±0.35°C以内。温度冷却水处理(29-36°C),受欧陆气候环境条件。考虑到相关的塔冷却载荷,发现预测结果与实验数据相比,预测结果在6%的根均衡差异范围内。

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