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Research Article

Dynamic model and response characteristics of liquid desiccant air-conditioning system driven by heat pump

Bowen Guan1Xiaohua Liu1( )Tao Zhang1Andong Wang2
Department of Building Science and Technology, Tsinghua University, Beijing 100084, China
Department of Electrical and Electronic Engineering, University of Hong Kong, Hong Kong 999077, China
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Abstract

The liquid desiccant air-conditioning system is considered as an energy-efficient alternative to the vapor compression system. The dynamic response characteristics of the system under variable cooling load play an important role in the air temperature and humidity control performance of the system. However, the dynamic response characteristics have not been fully revealed in previous studies. Thus, a dynamic model for a heat pump driven liquid desiccant air-conditioning (HPLDAC) system is established to investigate the dynamic response characteristics of the system in this study. Subsequently, experiments were conducted to validate the accuracy of the dynamic model. The simulation results show a good agreement with the experimental data. The simulation results reveal that evaporating water from the solution is a time-consuming process, compared to adding water to the solution. It spends a long time for the HPLDAC system to decrease the high relative humidity of supply air to a low value, which limits the air temperature and humidity control performance of the system. The upper band for the water replenishing value opening (Δφup) is a crucial parameter to improve the limitation. When Δφup decreases from 1.0% to 0.25%, the time consumed to reduce the supply air relative humidity to the new lower set value can be saved by 30.6%.

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Building Simulation
Pages 1773-1784

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Cite this article:
Guan B, Liu X, Zhang T, et al. Dynamic model and response characteristics of liquid desiccant air-conditioning system driven by heat pump. Building Simulation, 2021, 14(6): 1773-1784. https://doi.org/10.1007/s12273-021-0789-4

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Received: 21 November 2020
Revised: 02 February 2021
Accepted: 20 February 2021
Published: 10 March 2021
© Tsinghua University Press and Springer-Verlag GmbH Germany, part of Springer Nature 2021