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http://dx.doi.org/10.5307/JBE.2007.32.4.247

Development of a Refrigeratory-Based Dehumidifier for Humidity Environment Control in Greenhouse  

Kang, G.C. (National Institute of Agricultural Engineering)
Yon, K.S. (Department of Biosystems Engineering, Chungbuk National University)
Ryou, Y.S. (National Institute of Agricultural Engineering)
Kim, Y.J. (National Institute of Agricultural Engineering)
Kang, Y.K. (National Institute of Agricultural Engineering)
Paek, Y. (Protected Horticultural Experiment Station, National Horticultural Research Institute)
Publication Information
Journal of Biosystems Engineering / v.32, no.4, 2007 , pp. 247-255 More about this Journal
Abstract
During the winter season in Korea, the relative humidity of greenhouse at night often exceeds 90% because air temperature inside the greenhouse is usually controlled using a heater with all of windows closed to minimize heat loss, thereby requiring the use of a dehumidifier that can maintain optimum humidity levels of $70{\sim}80%$ to provide a good growth condition of crops. Also, such a high humid condition can cause the development of a pest, such as insects, fungi or diseases. However, the use of most conventional dehumidifiers for low temperature dehumidification is limited because their performance is degraded due to frost accumulation on the evaporator coil. This study was carried out to develop a refrigeratory-based dehumidifier suitable for low temperature dehumidification in greenhouse cultivation. The developed dehumidifier consists of a condenser and an evaporator installed separately so that relative and absolute humidity levels can be reduced when air passed through the condenser and evaporator, respectively. The prototype dehumidifier showed a dehumidification capacity of $5{\sim}7kg/h$ when air with a temperature of $15{\sim}25^{\circ}C$ and a relative humidity of $70{\sim}95%$ came into the dehumidifier. Under the condition that either temperature or relative humidity was fixed, the amount of condensed water was proportional to the levels of both temperature and relative humidity.
Keywords
Greenhouse; Relative humidity; Energy; Dehumidifier; Dehumidification rate;
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