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Experimental and simulated study on a novel compressed air drying system using a liquid desiccant cycle

机译:利用液体干燥剂循环的新型压缩空气干燥系统的实验和模拟研究

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摘要

A new method using liquid desiccant in compressed air drying was put forward in our previous work. However, only the test bench of the pressurized dehumidifier was established and analyzed. And the regenerator was not established, so the proposed system was not complete. Thus, the system performance of the complete system is unknown. In this paper, the experimental bench and steady-state mathematical model of the complete system are established to investigate the system performance. The dew point of compressed air is -2.4 degrees C (0.8 MPa) in experiments, indicating dryness could meet needs of various industries which use cooling dehumidification. Besides, the average regeneration temperature is 72.9 degrees C in experiments, indicating using waste heat from the air compressor to drive solution regeneration is feasible. Moreover, effect of different key parameters, including solution flow rate, solution temperature and ambient conditions on system performance is analyzed by mathematical model. It can be concluded that relative higher solution flow rate, lower inlet solution temperature of dehumidifier and higher inlet solution temperature of regenerator can get a lower humidity ratio. The selected regeneration temperatures in different ambient conditions are 70 degrees C (summer), 39 degrees C (winter), 60 degrees C (transitional season) respectively, which can be used as a reference for the actual operation. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在我们以前的工作中,提出了一种使用液态干燥剂进行压缩空气干燥的新方法。但是,仅建立和分析了加压除湿机的测试台。并且未建立再生器,因此所提出的系统不完整。因此,整个系统的系统性能是未知的。本文建立了整个系统的实验平台和稳态数学模型,以研究系统性能。在实验中,压缩空气的露点为-2.4摄氏度(0.8 MPa),表明干燥度可以满足使用冷却除湿的各个行业的需求。此外,实验中的平均再生温度为72.9摄氏度,这表明利用空气压缩机的废热来驱动溶液再生是可行的。此外,通过数学模型分析了溶液流速,溶液温度和环境条件等关键参数对系统性能的影响。可以得出结论,相对较高的溶液流速,较低的除湿机入口溶液温度和较高的再生器入口溶液温度可以得到较低的湿度比。在不同环境条件下选择的再生温度分别为70摄氏度(夏季),39摄氏度(冬季),60摄氏度(过渡季节),可以用作实际操作的参考。 (C)2018 Elsevier Ltd.保留所有权利。

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