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首页> 外文期刊>Energy Conversion & Management >Simultaneous production of cooling and freshwater by an integrated indirect evaporative cooling and humidification-dehumidification desalination cycle
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Simultaneous production of cooling and freshwater by an integrated indirect evaporative cooling and humidification-dehumidification desalination cycle

机译:通过集成的间接蒸发冷却和加湿除湿脱盐循环同时生产冷却和淡水

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摘要

Cooling and freshwater represent two fundamental demands in hot and arid regions. This paper reports the integration of an indirect evaporative cooler (IEC) and a humidification-dehumidification desalination cycle (HDH) for the simultaneous production of cooling and freshwater. To take full advantage of system integration, the purge air from IEC is supplied to HDH to promote water productivity. A pilot IEC unit is firstly designed and tested to achieve the temperatures and humidity of the outlet air steams. Results reveal that the IEC unit is able to cool down the supply air to below 25 degrees C under different outdoor conditions, and the purge air temperature is also 5-10 degrees C lower than the intake air temperature. Employing the IEC purge air as the working air, the HDH cycle is then investigated analytically. Under the operation ranges considered, the freshwater productivity and gain-output ratio (GOR) are 25-125 L/hr and 1.6-2.5, respectively, which are higher than other HDH configurations operating under the same conditions. Finally, the performance of the combined IEC-HDH system is evaluated. The overall coefficient of performance (COP) and Second-law efficiency are found to be 2.1-2.5 and 3-26%, respectively. Further improvement of efficiency can be achieved by integrating with adsorption or vapor compression refrigeration cycles.
机译:冷却和淡水代表了热和干旱地区的两个基本需求。本文报道了间接蒸发冷却器(IEC)和加湿除湿脱盐循环(HDH)的整合,用于同时生产冷却和淡水。为了充分利用系统整合,来自IEC的净化空气被提供给HDH以促进水生产率。先导IEC单元首先设计和测试以实现出口空气蒸汽的温度和湿度。结果表明,在不同的室外条件下,IEC单元能够将供应空气冷却至低于25摄氏度,吹扫空气温度也比进气温低5-10℃。使用IEC吹扫空气作为工作空气,然后分析研究HDH循环。在所考虑的操作范围下,淡水生产率和增益输出比(GOR)分别为25-125升/小时,1.6-2.5分别高于在相同条件下运行的其他HDH配置。最后,评估了IEC-HDH系统的性能。发现整体性能系数(COP)和第二法效率分别为2.1-2.5和3-26%。通过与吸附或蒸汽压缩制冷循环集成来实现效率的进一步提高。

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