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Combining liquid desiccant dehumidification with a dew-point evaporative cooler: A design analysis

机译:液体干燥剂除湿与露点蒸发冷却器的结合:设计分析

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This article uses a numerical model to analyze a concept combining a liquid desiccant dehumidifier with a dew-point indirect evaporative cooler. Each of these components, or stages, consists of an array of channel pairs, where a channel pair is two air channels separated by a thin plastic plate. In the first stage, a liquid desiccant film lining one side of the plates removes moisture from the process (supply-side) air through a membrane. An evaporatively cooled exhaust airstream on the other side of the plastic plate cools the desiccant. The second stage sensibly cools the dried process air with a dew-point evaporative cooler. This article uses a parametric analysis to illustrate the key design tradeoff for this concept: device size (a surrogate for cost) versus energy efficiency. The analysis finds the design parameters with the largest effect on this tradeoff and finds the combinations of design parameters giving near-optimal designs, which are designs with the highest efficiency for a given device size. The results indicate that there are two key parameters contributing to this tradeoff: the supply-side air channel thickness and the exhaust-air flow rate in the evaporative cooler.
机译:本文使用数值模型来分析将液体干燥剂除湿器与露点间接蒸发冷却器结合使用的概念。这些组件或级中的每一个都由一组通道对组成,其中通道对是由薄塑料板隔开的两个空气通道。在第一步中,衬在板的一侧的液体干燥剂薄膜会通过膜从过程(供应侧)空气中除去水分。塑料板另一侧的蒸发冷却的废气流冷却了干燥剂。第二阶段使用露点蒸发冷却器合理地冷却干燥的工艺空气。本文使用参数分析来说明此概念的关键设计折衷方案:设备尺寸(成本的替代品)与能源效率。该分析找到了在此折衷方案中影响最大的设计参数,并找到了给出接近最佳设计的设计参数组合,这是在给定器件尺寸下效率最高的设计。结果表明,有两个关键参数可导致这种折衷:蒸发冷却器中的供应侧空气通道厚度和排气流量。

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