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首页> 外文期刊>Solar Energy >Parameter analysis and optimization of a two-stage solar assisted heat pump desalination system based on humidification-dehumidification process
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Parameter analysis and optimization of a two-stage solar assisted heat pump desalination system based on humidification-dehumidification process

机译:基于加湿除湿过程的两级太阳能辅助热泵海水淡化系统参数分析与优化

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摘要

A combination of heat pump and humidification-dehumidification (HDH) process is a suitable choice to obtain fresh water for small-scale desalination applications, especially when the solar energy is used as the auxiliary heat source. In this paper, a novel two-stage solar assisted heat pump (SAHP) desalination system based on HDH, in which the humidifiers are connected in parallel, is proposed. A mathematic model is developed to improve the system performance by optimizing the operating parameters such as process air flow rate and cooling seawater flow rate, and it is also validated by the experimental results. Analysis results indicate that there exists an optimal process air flow rate in the desalination system, which does not vary with the hot seawater flow rate. However, it will be increased with the increase of cooling seawater flow rate. When the flow rates of process air and cooling seawater are 350 m(3)/h and 0.55 m(3)/h, respectively, the maximum fresh water yield is 17.94 kg/h. The corresponding gained-output-ratio (GOR) is 2.02. However, the system performance is constrained by a bottleneck: increasing dehumidifying capacity can result in a reduction in the performance of lower-temperature (LT) humidifier. Consequently, a modified system is then proposed to solve this bottleneck effectively. The maximum fresh water yield can be increased by 16.70% to 20.54 kg/h, and the corresponding maximum GOR is also increased by 18.05% to 2.42.
机译:热泵和加湿除湿(HDH)工艺的组合是获得小型脱盐应用的淡水的合适选择,特别是当太阳能用作辅助热源时。本文提出了一种基于HDH的新型两级太阳能辅助热泵(SAHP)海水淡化系统,其中加湿器并联连接。开发了一种数学模型来通过优化工艺空气流速和冷却海水流速,通过优化操作参数来改善系统性能,并且还通过实验结果验证。分析结果表明海水淡化系统中存在最佳过程空气流速,其不会随着热海水流速而变化。然而,随着冷却海水流速的增加,它将增加。当过程空气和冷却海水的流速分别为350米(3)/ h和0.55米(3)/ h时,最大淡水产量为17.94千克/小时。相应的增益输出 - 比率(GOR)为2.02。然而,系统性能受到瓶颈的约束:增加除湿能力可能导致较低温度(LT)加湿器的性能降低。因此,提出了一种改进的系统以有效地解决这个瓶颈。最大淡水产率可以增加16.70%至20.54千克/小时,相应的最大GOR也增加18.05%至2.42。

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