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A comprehensive study on a novel transcritical CO_2 heat pump for simultaneous space heating and cooling - Concepts and initial performance

机译:一种新型跨临界CO_2热泵综合研究,用于同时空间加热和冷却 - 概念及初始性能

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摘要

Carbon dioxide (CO2) is a natural substance and an environmentally benign, safe and economical refrigerant that can be used for cooling and heating systems. Unlike a traditional reversible heat pump system that only works either in heating or cooling, the air-to-air transcritical CO2 heat pump system reported in this paper is capable of providing simultaneous space heating and cooling through an Air Handling Unit (AHU) at any time. The system with cooling and heating capacities of 210 kW and 110 kW, respectively, was installed in a cinema complex in South Australia, and continuously operated from September to November in 2020. In this paper, the detailed configuration of the CO2 heat pump system with parallel compression is described. A complete system layout, comprising of cooling, heating and shared circuits, is revealed for the first time. A mathematical model based on highly efficient Bitzer compressors has also been developed in this study. The experimental data recorded in an entire heating period of approximately one hour has been utilised for model validation and analysis. Through the validation, the simulated power consumption for the compressors with Variable Speed Drive (VSD) and Fixed Speed Drive (FSD) has been compared to the experimental data with acceptable agreements. The simulated discharge temperatures agree with the actual temperatures measured within 10%. Moreover, the latest system performance from September to November has been evaluated based on the heating and cooling loads and combined COPs. It was found that the combined COP was relatively stable at around 3 regardless of climate conditions.
机译:二氧化碳(CO2)是一种天然物质和环境良性,安全和经济的制冷剂,可用于冷却和加热系统。与传统的可逆热泵系统不同,该系统只能在加热或冷却中工作,本文报道的空对空气跨临界CO2热泵系统能够在任何情况下提供同时空间加热和冷却空气处理单元(AHU)时间。具有210 kW和110 kW的具有冷却和加热容量的系统安装在南澳大利亚的电影院,并于2020年从9月至11月持续运营。在本文中,CO2热泵系统的详细配置描述并行压缩。包括冷却,加热和共享电路的完整系统布局是首次揭示的。该研究还开发了一种基于高效的Bitzer压缩机的数学模型。在大约一小时的整个加热期间记录的实验数据已经用于模型验证和分析。通过验证,已将具有可变速度驱动器(VSD)和固定速度驱动器(FSD)的压缩机的模拟功耗与具有可接受的协议的实验数据进行了比较。模拟的放电温度与在10%以内测量的实际温度一致。此外,已根据加热和冷却负荷和组合警察评估9月至11月的最新系统性能。结果发现,无论气候条件如何,组合警察在3左右相对稳定。

著录项

  • 来源
    《Energy Conversion & Management》 |2021年第9期|114397.1-114397.12|共12页
  • 作者单位

    Univ South Australia Future Ind Inst Mawson Lakes Campus Mawson Lakes SA 5095 Australia;

    Univ South Australia Future Ind Inst Mawson Lakes Campus Mawson Lakes SA 5095 Australia;

    Univ South Australia Future Ind Inst Mawson Lakes Campus Mawson Lakes SA 5095 Australia;

    Univ South Australia Future Ind Inst Mawson Lakes Campus Mawson Lakes SA 5095 Australia;

    Univ South Australia Future Ind Inst Mawson Lakes Campus Mawson Lakes SA 5095 Australia;

    Glaciem Cooling Technol Mawson Lakes Blvd Mawson Lakes SA 5095 Australia;

    Univ South Australia UniSA STEM Mawson Lakes Campus Mawson Lakes SA 5095 Australia;

    Univ Queensland Sch Mech & Min Engn Brisbane Qld 4072 Australia;

    Glaciem Cooling Technol Mawson Lakes Blvd Mawson Lakes SA 5095 Australia;

    Univ South Australia Future Ind Inst Mawson Lakes Campus Mawson Lakes SA 5095 Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Air-to-air heat pump; Simultaneous heating and cooling; Mathematical model;

    机译:空气 - 空气热泵;同时加热和冷却;数学模型;

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