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Erschienen in: Energy Systems 1/2022

16.11.2020 | Original Paper

Sensitivity of air desiccant cooling system to climatic conditions: a comparative study on many systems

verfasst von: Mohammed Zerouali, Nabil Labed

Erschienen in: Energy Systems | Ausgabe 1/2022

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Abstract

Air desiccant cooling systems are burgeoning. Their major advantage is the use of water alone as a refrigerant. Pairing with efficient solar panels looks promising. Much research is underway to improve the techniques and performances of installations. In this article, we present the results of a calculation code that we developed from experimental data. It studies the conditions of air treatment by desiccation according to three different techniques with wide intervals of climatic conditions in order to point the limits of applicability. The objective is to precisely define the area in which each type of handling system can be used. We started by simulating the treatment of the air in the desiccant handling system (DHU) operating according to four techniques in order to choose one for the Algerian climate. A validation of the results with the experimental data was made. According to our calculations, DHU using Pennington cycle are not able to achieve satisfactory comfort conditions. An improvement in the Pennington cycle is proposed. It consists in adding an exchanger cooled by the water leaving the heating circuit and which is used to cool the fresh air. This solution seems effective and gives clearly acceptable results for the climatic conditions studied. In the last part of this article, we present the calculation results relating to the sensitivity of each technique to variations in temperature and humidity conditions. We have thus successfully delimited the climatic zones of applicability of each system from the process of the evolution of the air inside the building (coefficient ɛ). It has been confirmed that the improved Pennington cycle is the system best suited to Algerian climatic conditions.

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Metadaten
Titel
Sensitivity of air desiccant cooling system to climatic conditions: a comparative study on many systems
verfasst von
Mohammed Zerouali
Nabil Labed
Publikationsdatum
16.11.2020
Verlag
Springer Berlin Heidelberg
Erschienen in
Energy Systems / Ausgabe 1/2022
Print ISSN: 1868-3967
Elektronische ISSN: 1868-3975
DOI
https://doi.org/10.1007/s12667-020-00412-w

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