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Efficient management
of a dehumidifier in a greenhouse under warm
weather conditions
J.M.
Cámara-Zapata, J.A. Sánchez-Molina, F. Rodríguez
and J.C. López
2018/04/20
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Abstract
The reduction of humidity inside a greenhouse
is a key factor to ensure the quality of the crop and avoid the incidence
of cryptogamic diseases. The method commonly used is a combination of
heating and natural ventilation, although it is very deficient from the
energy and environmental points of view. In cold and humid climates the
use of a heat pump dehumidifier (HPD) can reduce energy consumption. To
evaluate this technology in a Mediterranean climate, an HPD was installed
in a
greenhouse of the Cajamar Experimental Station in Almería. The
environmental humidity inside the greenhouse decreased when using the
HPD. The efficiency of the HPD was related to the value of the condensation
temperature of the water vapor and to the temperature and humidity of
the air inside the greenhouse. In addition, it was found that the energy
efficiency of the system varied according to climate. For efficient management
of HPD it is essential to know the influence of climate on energy efficiency.
The flow of condensed water vapor and the power consumed presented differing
behaviors. Thus, the production of liquid water correlated linearly with
the condensation temperature, increasing the slope of the linear relationship
with the temperature of the air inside the greenhouse. However, the power
consumption was correlated linearly with the air temperature. The management
of the system is efficient when the air temperature is above 15.0ºC
and the relative humidity is less than 90%.
| Published in: Renewable Energy
& Power Quality Journal (RE&PQJ, Nº. 16) |
| Pages: 560-565 |
Date of Publication: 2018/04/20 |
| ISSN: 2172-038X |
Date of Current Version:2018/03/23 |
| REF: 386-18 |
Issue Date: April 2018 |
| DOI:10.24084/repqj16.386 |
Publisher: EA4EPQ |
Authors and affiliations
J.M. Cámara-Zapata1, J.A. Sánchez-Molina2,
F. Rodríguez2 and J.C. López3
1. Department of Physics and Computer Architecture, University Miguel
Hernandez, Avda. Elche, Spain.
2. Department of Informatics, University of Almeria, Spain.
3. Experimental Station of Cajamar Foundation Las Palmerillas,
El Ejido, Almeria, Spain.
Key words
Water vapor, temperature, humidity, power, condensation.
References
[1] Rodríguez, F., Berenguel, M.,
Guzman, J.L., Ramírez-Arias, A. 2015. Modelling and Control of
Greenhouse Crop
Growth; Springer International Publishing; London (UK); 250 pp.
[2] Picken, A.J.F. 1984. A review of pollination and fruit set in the
tomato (Lycopersicon esculentum Mill.). Journal of
Horticultural Science 59 (1984) 113. doi:10.1080/00221589.1984.11515163.
[3] Chantoiseau, E., Migeon, C., Chasseriaux, G., Bournet, P.E. 2016.
Heat-pump dehumidifier as an efficient device to
prevent condensation in horticultural greenhouses. Biosyst. Eng. 142,
2741. doi: 10.1016/j.biosystemseng.2015.11.011.
[4] Sánchez-Molina, J.A., Rodríguez, F., Guzmán,
J.L., Cámara-Zapata, J.M. y Sánchez-Garrido, G. 2017. Modelado
del contenido de agua en el aire interior de un invernadero con sistemas
de actuación de humidificación y deshumidificación.
IX Congreso Ibérico de Agroingeniería. Libro de resúmenes,
148.

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