Experimental Investigation on the Performance of a Dehumidifier Constructed from a Water-to-Air Heat Exchanger Coated with Composite Desiccant of Mesoporous Silica Gel and LiCl

Q2 Engineering
J. Srimuk, S. Chirarattananon, P. Chaiwiwatworakul, A. Nathakaranakule, P. Rakkwamsuk, S. Chiarakorn
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引用次数: 0

Abstract

Thermal environment in buildings in hot climate is conditioned for comfort by air-conditioning that is energy intensive. Presently, most air-conditioning systems in Thailand and other countries in Southeast Asia use electricity-driven vapor compression systems to cool down the air to the set-point temperature. However, latent load due to condensation of air humidity forms a large part of the air-conditioning load. This paper presents the results of experiments on a dehumidifier constructed from a water-to-air heat exchanger coated with a composite desiccant of large-pore mesoporous silica gel and LiCl, regenerated by low-temperature hot water. Moisture removal capacity (MRC), dehumidification capacity (DC), thermal coefficient of performance (COPth), and an equivalent air conditioning load of dehumidification (EALD) are comparative quantitative parameters derived from experimental results and are studied in this research. The composite desiccant requires low-temperature water for regeneration and offers a higher rate of vapor adsorption and desorption that leads to a shorter required desiccant dehumidification cycle time. The results demonstrate that the dehumidifier is able to effectively reduce moisture in ventilation air and substantially reduces the cooling load of air-conditioning.
介孔硅胶和氯化锂复合干燥剂包覆水-空气换热器除湿性能的实验研究
在炎热的气候条件下,建筑的热环境是由能源密集型的空调来调节的。目前,泰国和东南亚其他国家的空调系统大多采用电力驱动的蒸汽压缩系统,将空气冷却到设定温度。然而,由于空气湿度凝结而产生的潜在负荷占空调负荷的很大一部分。本文介绍了用低温热水再生的大孔介孔硅胶和LiCl复合干燥剂包覆水-空气热交换器构成的除湿机的实验结果。除湿量(MRC)、除湿量(DC)、热性能系数(COPth)和等效除湿空调负荷(EALD)是由实验结果得出的比较定量参数,本研究对其进行了研究。复合干燥剂需要低温水进行再生,并提供更高的蒸汽吸附和解吸率,从而缩短所需的干燥剂除湿周期时间。结果表明,除湿机能够有效降低通风空气中的水分,大幅度降低空调的冷负荷。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Applied Science and Engineering Progress
Applied Science and Engineering Progress Engineering-Engineering (all)
CiteScore
4.70
自引率
0.00%
发文量
56
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