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太阳能喷射制冷系统在中原地区的性能分析 被引量:3

Performance Analysis on Solarefector Cooling System in the Zhong-yuan Region
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摘要 通过建立系统性能分析模型,结合中原地区典型气象日的气象条件,了解了太阳能喷射制冷系统在中原地区的运行特性,计算并分析了发生温度、蒸发温度和冷凝温度改变时系统COP0的变化情况。研究表明,在研究参数范围内,喷射系统COP随发生温度和蒸发温度的增加而增加,随冷凝温度的增加而减小,系统综合COeo随时刻呈先上升后下降的趋势,最大可达0.33。进一步针对中原地区200m2的别墅,计算了当集热面积为40m2时的太阳能喷射系统的供冷情况,结果表明,在8:00~16:00之间,太阳能喷射系统可以为别墅提供80%以上的冷量。 A simulation program of the solar ejection system performance was established, combining the climate character of the zhongyuan region,the hourly performance of the solar ejector cooling system was studied. Under different generator temperature, condenser temperature and evaporator temperature, the COP0 of solar ejector cooling system was analyzed. It is found that COP0 of ejector system increases with the increasing of generator temperature and evaporation temperature and decreases with the increasing of condensing temperature. Calculation of the COPo shows that system COPoincrease first and then decline by the time sequence, and the biggest COPo of system can reach 0.33. when the evacuated tube collector area equals to 40 and the villa area equals to 200, it is determined that the solar ejector cooling system can supply 80 percent cooling load for the villa during the hours(8:00 ~ 16:00) in the zhongyuan region.
出处 《流体机械》 CSCD 北大核心 2008年第8期62-65,共4页 Fluid Machinery
基金 河南省重点科技攻关项目(72102360050) 建设部2007科学技术开发研究项目(2007-K1-29)
关键词 太阳能 HFC134A 喷射制冷系统 性能参数 solar energy HFC 134a ejector cooling system COP
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  • 1Sankarlal T, Mani A. Experimental investigations on ejector refrigeration system with ammonia[J]. Renewable Energy, 2007, 32 : 1403-1413.
  • 2Selvaraju A, Mani A. Analysis of a vapour ejector refrigeration system with environment friendly refrigerants [ J ]. International Journal of Thermal Sciences, 2004, 43:915-921.
  • 3Yap1Cl R, Yetisen C C Experimental study on ejector refrigeration system powered by low grade heat Energy [J]. Conversion and Management, 2007, 48: 1560- 1568.
  • 4Alexis G K, Karayiannis E K. A solar ejector cooling system using refrigerant HFC134a in the Athens area [J]. Renewable Energy, 2005, 30:1457-1469.
  • 5DA-WEN SUN. Solar powered combined ejcctor-vapour compression cycle for air conditioning and refrigeration [J]. Energy Convers. Mgrat, 1997, 38(5) :479-491.
  • 6中国气象局国家气象信息中心气象资料室和清华大学.中国建筑热环境分析专用气象数据集[M].北京:中国建筑工业出版社,2005.

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同被引文献36

  • 1王倩,田琦,张于峰,赵薇.新型太阳能喷射与电压缩式联合制冷系统的研究[J].太阳能学报,2007,28(1):12-17. 被引量:4
  • 2田琦.集热器对太阳能喷射制冷系统性能的影响[J].太原理工大学学报,2007,38(3):250-252. 被引量:8
  • 3时阳,朱兴旺,姬鹏先,等.冷库设计与管理[M].北京:中国农业科学技术出版社,2006.79-80,83-85.
  • 4Daghigh R, Ruslan M H, Sulaiman M Y. Review of solar assisted heat pump drying systems for agricultural and marine products[J]. Renewable and Sustainable Energy Reviews, 2010, 14(9): 2564-2579.
  • 5中国制冷空调工业协会.关注能源标准与标识[EB/OL].http://www.chinaeraa.org/ detail.aspx ?id=315 , 2010-8-16.
  • 6Alexis G K, Karayiannis E K. A solar ejector cooling system using refrigerant R134a in the Athens area[J]. Renewable Energy, 2005, 30(9): 1457- 1469.
  • 7Coulomb D. Refrigeration and cold chain serving the global food industry and creating a better future: two key IIR challenges for improved health and environment[J]. Trends in Food Science & Technology, 2008, 19(8): 413-417.
  • 8中国制冷空调工业协会,天津商业大学.中国食品低温物流发展战略研究[Z].北京:中国制冷空调工业协会,2009.
  • 9刘镇.小型果蔬冷藏库用太阳能喷射制冷系统设计:以水为工质[D].南宁:广西大学,2010.
  • 10Meyer A J, Harms T M, Dobson R T. Steam jet ejector cooling powered by waste or solar heat[J]. Renewable Energy. 2009, 34(1): 297-306.

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