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J4  2012, Vol. 46 Issue (4): 610-615    DOI: 10.3785/j.issn.1008-973X.2012.04.006
能源与机械工程     
CO2空气源热泵热水器的实验研究
陈琪1, 佟杨1, 朱治江1, 唐黎明1, 陈光明1, 李建军2
1.浙江大学 制冷与低温研究所,浙江 杭州 310027;
2.浙江盾安人工环境股份有限公司,浙江 诸暨 311835
Experimental study on CO2 air source heat pump water heater
CHEN Qi1, TONG Yang1, ZHU Zhi-jiang1, TANG Li-ming1,
CHEN Guang-ming1, LI Jian-jun2
1. Institute of Refrigeration and Cryogenics, Zhejiang University, Hangzhou 310027, China;
2. Zhejiang DunAn Artificial Environment Limited Company, Zhuji 311835, China
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摘要:

为了研究跨临界CO2热泵系统外界因素对系统性能的影响规律,在自行搭建的实验台上通过改变冷却水体积流量、冷却水进口温度和环境温度研究系统性能变化,分析CO2质量流量、压比、制热量和制热系数(COPh)等系统参数的变化趋势,研究压缩机绝热效率和换热器热交换完善度对制热系数的影响.在测试工况范围内,实验结果表明:当冷却水体积流量增加或冷却水进口温度降低时,CO2质量流量、压比和压缩机功率减少,制热量和制热系数增加;当环境温度升高时,CO2质量流量和制热量增加,压比和压缩机功率基本不变,制热系数增加;压缩机绝热效率与气体冷却器的热交换完善度成为制约制热系数提高的2个重要因素.

Abstract:

A prototype of heat pump was developed in order to analyze the effects of outside factors on transcritical CO2 heat pump system performance. The system performance was investigated by changing volume flow rate or inlet temperature of cooling water, and ambient temperature. Trends of systematic parameters such as CO2  mass flow rate, pressure ratio, heating capacity and heating coefficient of performance (COPh) were analyzed. The effects of compressor isentropic efficiency and heat transfer effectiveness of gas cooler on COPh were considered. The experimental results for the test conditions showed that CO2 mass flow rate, pressure ratio and compressor power consumption reduced, heat capacity and COPh increased when cooling water volume flow rate increased or inlet temperature decreased. When ambient temperature increased, CO2 mass flow rate and heat capacity had an increase, pressure ratio and compressor power consumption were almost same, and COPh increased. The compressor isentropic efficiency and heat transfer effectiveness of gas cooler were two key factors to increase COPh.

出版日期: 2012-05-17
:  TB 61  
基金资助:

国家“973”重点基础研究发展规划资助项目(2010CB227304).

通讯作者: 陈光明,男,教授.     E-mail: gmchen@zju.edu.cn
作者简介: 陈琪(1973—),男,副教授,从事制冷与空调技术的研究.E-mail:zjuchenqi@zju.edu.cn
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引用本文:

陈琪, 佟杨, 朱治江, 唐黎明, 陈光明, 李建军. CO2空气源热泵热水器的实验研究[J]. J4, 2012, 46(4): 610-615.

CHEN Qi, TONG Yang, ZHU Zhi-jiang, TANG Li-ming, CHEN Guang-ming, LI Jian-jun. Experimental study on CO2 air source heat pump water heater. J4, 2012, 46(4): 610-615.

链接本文:

http://www.zjujournals.com/eng/CN/10.3785/j.issn.1008-973X.2012.04.006        http://www.zjujournals.com/eng/CN/Y2012/V46/I4/610

[1] KIM M H, PETTERSEN J, BULLARD C W. Fundamental process and system design issues in CO2 vapor compression systems [J]. Progress in Energy and Combustion Science, 2004, 30(2): 119-174.
[2] LORENTZEN G. Revival of carbon dioxide as a refrigerant [J]. International Journal of Refrigeration, 1994, 17(5): 5-14.
[3] PETTER N, HAVARD R, REZA Z, et al. CO2heat pump water heater: characteristics, system design and experimental results [J]. International Journal of Refrigeration, 1998, 21(3): 172-179.

[4] PETTERSEN J, HAFNER A, SKAUGEN G. Development of compact heat exchangers for CO2 airconditioning systems [J]. International Journal of Refrigeration, 1998, 21(3): 180-193.
[5] CHANG Y P, PEGA H. CO2 flow condensation heat transfer and pressure drop in multiport microchannels at low temperatures [J]. International Journal of Refrigeration, 2009, 32(6): 1129-1139.
[6] RICHTER M R, SONG J M, KIM M H, et al. Experimental results of transcritical CO2 heat pump for residential application [J]. Energy, 2003, 28(10): 1005-1019.
[7] 刘圣春,马一太,刘秋菊.CO2热泵热水器实验研究[J].天津大学学报,2008,41(2): 238-242.
LIU Shengchun, MA Yitai, LIU Qiuju. Experiments of CO2 heat pump water heater [J]. Journal of Tianjin University, 2008, 41(2): 238-242.
[8] 王冬,黄逊青,钟家淞,等.二氧化碳热泵热水器水箱温度对系统性能的影响[J].流体机械,2009,37(12): 58-62.
WANG Dong, HUANG Xunqing, ZHONG Jiasong, et al. Influence of the water tank temperature to the performance of C02 heat pump water heater [J]. Fluid Machinery, 2009, 37(12): 58-62.
[9] MOFFAT R J. Describing the uncertainties in experimental results [J]. Experimental Thermal and Fluid Science, 1988, 1(1): 3-17.
[10] HOLMAN J P. Experimental methods for engineers [M]. USA: McGrawHill, 1989: 41-53.
[11] 崔晓龙,刑子文,彭学院,等.一种新型商用CO2跨临界循环压缩机开发与研究[J].流体机械,2009,37(1): 1-5.
CUI Xiaolong, XING Ziwen, PENG Xueyuan, et al. Development of a commercial transcritical CO2 compressor [J]. Fluid Machinery, 2009, 37(1): 1-5.

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