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Research Article

Development and modelling of a solar assisted liquid desiccant dehumidification air-conditioning system

Aqeel Kareem MohaisenZhenjun Ma( )
Sustainable Buildings Research Centre (SBRC), Faculty of Engineering and Information Sciences, University of Wollongong, New South Wales (NSW), 2522, Australia
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Abstract

This paper presents the development and simulation of an advanced solar assisted liquid desiccant dehumidification air-conditioning system for energy efficiency and sustainability. The system is mainly designed to cut down building electricity consumption while providing satisfied indoor thermal comfort. It includes a counter flow packed bed absorber, a counter flow packed bed regenerator, and an array of flat plate solar collectors. The system is integrated with an evaporative cooler and a cooling tower to cool the processed air and the strong desiccant solution, respectively. A whole system simulation is used to evaluate the system performance by using a full-scale simulation system developed on the basis of Matlab Simulink platform. The simulation results based on three consecutive sunny summer days in Sydney show that the proposed system can achieve an average daily thermal coefficient of performance of 0.5-0.55, and 73.4% of thermal energy required for thermal regeneration was provided by the solar collectors. It is expected that the average daily thermal coefficient of performance could be higher during other mild summer days as the percentage of thermal energy provided by the solar water heating system will increase due to the relatively low cooling demand of the building.

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Building Simulation
Pages 123-135
Cite this article:
Mohaisen AK, Ma Z. Development and modelling of a solar assisted liquid desiccant dehumidification air-conditioning system. Building Simulation, 2015, 8(2): 123-135. https://doi.org/10.1007/s12273-014-0196-1

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Received: 19 February 2014
Revised: 13 August 2014
Accepted: 05 September 2014
Published: 30 September 2014
© Tsinghua University Press and Springer-Verlag Berlin Heidelberg 2014
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