空气源热泵热水器冬季不可燃CO2/HFOs混合物性能研究

IF 3.5 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Kaiyin Yang , Zhen Zhao , Yilun Liu , Qin Wang , Long Jiang , Ziqian Xue , Jielin Luo
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引用次数: 0

摘要

随着建筑供暖需求的上升,空气源热泵(ASHPs)提供了一个重要的,低排放的替代传统方法。在寒冷地区,空气源热泵面临着燃烧和系统复杂性等应用障碍。使用与氢氟烯烃(hfo)的共沸混合物可以减轻这些影响。然而,三元混合物在提高性能和安全性方面的作用仍未得到充分探讨。本研究提出了在一个简单的恢复配置CO2和hfo的新混合物。在不可燃范围内,与二元混合物相比,最佳的三元混合物CO2/R1234ze(E)/R1336mzz(E)的性能系数(COP)提高了35.8%。与传统的空气源热泵系统相比,COP提高了14.3%,在寒冷气候下,每年的性能提高了7.0%。火用分析表明,节流和冷凝的不可逆损失低是改善的主要原因。生命周期评估显示了经济和环境优势,成本和排放量分别降低了10.7%和25.5%。灵敏度分析表明,易调节的工作压力对COP有显著影响,但最优混合气在变化后仍能保持较高的效率。三元混合物的COP也与使用二氧化碳的空气源热泵相当,且排放压力显著降低。拟议的混合物提高了安全性、能源效率和系统简洁性,支持全球采用空气源热泵节能减排,从而推进碳中和工作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance investigations on nonflammable CO2/HFOs mixtures for an air-source heat pump water heater during wintertime
With heating demand in buildings on the rise, air-source heat pumps (ASHPs) offer a vital, low-emission alternative to traditional methods. In cold regions, ASHP faces application resistances like combustion and system complexity. These can be mitigated using zeotropic mixtures with hydrofluoroolefins (HFOs). However, the role of ternary mixtures in enhancing performance and safety remains underexplored. This study proposes novel mixtures of CO2 and HFOs in a simple recuperative configuration. Within the nonflammable range, the optimal ternary mixture CO2/R1234ze(E)/R1336mzz(E), shows up to 35.8 % improvement in the coefficient of performance (COP) compared to binary mixtures. Up to 14.3 % enhancement in COP versus a traditional ASHP system is achieved, resulting in an annual performance boost of 7.0 % in cold climates. Exergy analysis indicates the low irreversible losses in throttling and condensing are the main contributors to the improvement. A life cycle assessment reveals both economic and environmental advantages, with reductions in costs and emissions of up to 10.7 % and 25.5 %, respectively. Sensitivity analysis indicates that easily adjustable operating pressures significantly impact COP, but the optimal mixture still maintains high efficiency despite variations. Ternary mixtures also show comparable COP to ASHP using CO2, with significant discharge pressure reductions. The proposed mixtures enhance safety, energy efficiency, and system simplicity, supporting the global adoption of ASHP for energy savings and emission reductions, thus advancing carbon neutrality efforts.
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来源期刊
CiteScore
7.30
自引率
12.80%
发文量
363
审稿时长
3.7 months
期刊介绍: The International Journal of Refrigeration is published for the International Institute of Refrigeration (IIR) by Elsevier. It is essential reading for all those wishing to keep abreast of research and industrial news in refrigeration, air conditioning and associated fields. This is particularly important in these times of rapid introduction of alternative refrigerants and the emergence of new technology. The journal has published special issues on alternative refrigerants and novel topics in the field of boiling, condensation, heat pumps, food refrigeration, carbon dioxide, ammonia, hydrocarbons, magnetic refrigeration at room temperature, sorptive cooling, phase change materials and slurries, ejector technology, compressors, and solar cooling. As well as original research papers the International Journal of Refrigeration also includes review articles, papers presented at IIR conferences, short reports and letters describing preliminary results and experimental details, and letters to the Editor on recent areas of discussion and controversy. Other features include forthcoming events, conference reports and book reviews. Papers are published in either English or French with the IIR news section in both languages.
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