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用于热水处理系统的鼓泡塔中空气加湿的实验分析。

Experimental analysis of the humidification of air in bubble columns for thermal water treatment systems.

作者信息

Eder Elias, Preißinger Markus

机构信息

illwerke vkw Endowed Professorship for Energy Efficiency, Research Centre Energy, Vorarlberg University of Applied Sciences, Dornbirn 6850, Austria.

出版信息

Exp Therm Fluid Sci. 2020 Feb 13;115:110063. doi: 10.1016/j.expthermflusci.2020.110063. eCollection 2020 Jul 1.

Abstract

The humidification-dehumidification process (HDH) for desalination is a promising technology to address water scarcity issues in rural regions. However, a low humidifier efficiency is a weakness of the process. Bubble column humidifiers (BCH) are promising for HDH, as they provide enhanced heat and mass transfer and have low maintenance requirements. Previous studies of HDH-systems with BCHs draw different conclusions regarding the impact of superficial air velocity and liquid height on the humidification. Furthermore, the impact of flow characteristics has never been investigated systematically at all. In this study, an optimized BCH test setup that allows for optical analysis of the humidifier is used and evaluated. Our test setup is validated, since the influence of water temperature on the humidification, which is exponential, is reproduced. Measurements with seawater show that the normalised system productivity is increased by about 56% with an increase in superficial air velocity from 0.5 cm/s to 5 cm/s. Furthermore, the system productivity is increased by around 29% with an increase in liquid height from 60 mm to 378 mm. While the impact of superficial air velocity can be traced back to temperature changes at the humidifier and dehumidifier outlets, the impact of liquid height is shown to be caused by a smaller heat loss surface in the humidifier with an increase in liquid height. For the impact of sieve plate orifice diameter, a clear influence on the humidification is not apparent, this parameter needs to be investigated further. Finally, our new test setup allows for analysing the humidification of air (1) in a systematic way, (2) in relevant measurement ranges and (3) in comparison with optical analyses of the flow characteristics.

摘要

用于海水淡化的增湿-除湿工艺(HDH)是解决农村地区水资源短缺问题的一项很有前景的技术。然而,增湿器效率低是该工艺的一个弱点。鼓泡塔增湿器(BCH)在HDH工艺中很有前景,因为它们能增强传热传质,且维护要求低。先前关于采用BCH的HDH系统的研究,对于表观空气流速和液位高度对增湿的影响得出了不同结论。此外,流动特性的影响从未得到过系统研究。在本研究中,使用并评估了一种经过优化的BCH测试装置,该装置能够对增湿器进行光学分析。我们的测试装置经过了验证,因为再现了水温对增湿呈指数关系的影响。用海水进行的测量表明,表观空气流速从0.5厘米/秒增加到5厘米/秒时,归一化系统生产率提高了约56%。此外,液位高度从60毫米增加到378毫米时,系统生产率提高了约29%。虽然表观空气流速的影响可追溯到增湿器和除湿器出口处的温度变化,但液位高度的影响表明是由于液位增加时增湿器中热损失表面减小所致。对于筛板孔直径的影响,对增湿的明显影响并不明显,该参数需要进一步研究。最后,我们的新测试装置能够(1)以系统的方式、(2)在相关测量范围内以及(3)与流动特性的光学分析相比较,来分析空气的增湿情况。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69e0/7116115/c7a3eef5b491/EMS94766-f001.jpg

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