Simulation study on performance of a dual-source hybrid heat pump unit with alternative refrigerants

To solve the problems of single heat source heat pump systems in severe cold regions, a dual-source hybrid heat pump unit (DSHHPU) is proposed. The mathematical models of the DSHHPU when charging R134a or its alternative refrigerants R32, R290 and R600a were established respectively, and the perform...

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Main Authors: Chenguang Bai, Zongwei Han, Haotian Wei, Xiaomei Ju, Xinwei Meng, Qi Fu
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2020-01-01
Series:Energy and Built Environment
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2666123319300042
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spelling doaj-1dfe2972e0a54f1aa20e66e19e9902d62021-04-02T13:10:43ZengKeAi Communications Co., Ltd.Energy and Built Environment2666-12332020-01-0111110Simulation study on performance of a dual-source hybrid heat pump unit with alternative refrigerantsChenguang Bai0Zongwei Han1Haotian Wei2Xiaomei Ju3Xinwei Meng4Qi Fu5SEP Key Laboratory of Eco-Industry, School of Metallurgy, Northeastern University, Shenyang 110819, ChinaCorresponding author.; SEP Key Laboratory of Eco-Industry, School of Metallurgy, Northeastern University, Shenyang 110819, ChinaSEP Key Laboratory of Eco-Industry, School of Metallurgy, Northeastern University, Shenyang 110819, ChinaSEP Key Laboratory of Eco-Industry, School of Metallurgy, Northeastern University, Shenyang 110819, ChinaSEP Key Laboratory of Eco-Industry, School of Metallurgy, Northeastern University, Shenyang 110819, ChinaSEP Key Laboratory of Eco-Industry, School of Metallurgy, Northeastern University, Shenyang 110819, ChinaTo solve the problems of single heat source heat pump systems in severe cold regions, a dual-source hybrid heat pump unit (DSHHPU) is proposed. The mathematical models of the DSHHPU when charging R134a or its alternative refrigerants R32, R290 and R600a were established respectively, and the performance was simulated and analysed. The results showed that the four refrigerants have different performance characteristics in different aspects. In heat pipe mode, the heating capacity and evaporating pressure of R32 are 36.94% and 59.94% higher than those of R134a. The heating capacity and evaporating pressure of R290 are 5.73% and 22.99% lower than those of R134a. The heating capacity and evaporating pressure of R600a are 43.29% and 68.08% lower than those of R134a. In vapour compression heating mode, the discharge temperature of R32, R290 and R600a are 184.88, 72.98 and 66.44% of that of R134a. The coefficient of performance (COP) of R32, R290 and R600a are 72.65, 111.59 and 117.94% of that of R134a. Finally, the effects of radiation intensity and ambient temperature on key performance parameters of the different refrigerants were analysed. The research results provide a reference for research on refrigerant replacements for multi-heat source composite heat pump systems.http://www.sciencedirect.com/science/article/pii/S2666123319300042Heat pumpPerformanceSimulationAlternative refrigerants
collection DOAJ
language English
format Article
sources DOAJ
author Chenguang Bai
Zongwei Han
Haotian Wei
Xiaomei Ju
Xinwei Meng
Qi Fu
spellingShingle Chenguang Bai
Zongwei Han
Haotian Wei
Xiaomei Ju
Xinwei Meng
Qi Fu
Simulation study on performance of a dual-source hybrid heat pump unit with alternative refrigerants
Energy and Built Environment
Heat pump
Performance
Simulation
Alternative refrigerants
author_facet Chenguang Bai
Zongwei Han
Haotian Wei
Xiaomei Ju
Xinwei Meng
Qi Fu
author_sort Chenguang Bai
title Simulation study on performance of a dual-source hybrid heat pump unit with alternative refrigerants
title_short Simulation study on performance of a dual-source hybrid heat pump unit with alternative refrigerants
title_full Simulation study on performance of a dual-source hybrid heat pump unit with alternative refrigerants
title_fullStr Simulation study on performance of a dual-source hybrid heat pump unit with alternative refrigerants
title_full_unstemmed Simulation study on performance of a dual-source hybrid heat pump unit with alternative refrigerants
title_sort simulation study on performance of a dual-source hybrid heat pump unit with alternative refrigerants
publisher KeAi Communications Co., Ltd.
series Energy and Built Environment
issn 2666-1233
publishDate 2020-01-01
description To solve the problems of single heat source heat pump systems in severe cold regions, a dual-source hybrid heat pump unit (DSHHPU) is proposed. The mathematical models of the DSHHPU when charging R134a or its alternative refrigerants R32, R290 and R600a were established respectively, and the performance was simulated and analysed. The results showed that the four refrigerants have different performance characteristics in different aspects. In heat pipe mode, the heating capacity and evaporating pressure of R32 are 36.94% and 59.94% higher than those of R134a. The heating capacity and evaporating pressure of R290 are 5.73% and 22.99% lower than those of R134a. The heating capacity and evaporating pressure of R600a are 43.29% and 68.08% lower than those of R134a. In vapour compression heating mode, the discharge temperature of R32, R290 and R600a are 184.88, 72.98 and 66.44% of that of R134a. The coefficient of performance (COP) of R32, R290 and R600a are 72.65, 111.59 and 117.94% of that of R134a. Finally, the effects of radiation intensity and ambient temperature on key performance parameters of the different refrigerants were analysed. The research results provide a reference for research on refrigerant replacements for multi-heat source composite heat pump systems.
topic Heat pump
Performance
Simulation
Alternative refrigerants
url http://www.sciencedirect.com/science/article/pii/S2666123319300042
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