期刊文献+

阳台壁挂式太阳能集热器件遮挡因子的研究 被引量:3

Study on shaded factor of balcony wall solar collector unit
下载PDF
导出
摘要 针对太阳能集热器件与中高层建筑阳台大角度(≥60°)集成后,夏半年上层集热器件对下层集热器件的遮挡问题,该文建立了日均遮挡因子的计算模型。利用此模型对夏半年各月代表日日均遮挡因子进行了计算,并对日均遮挡因子与纬度、倾角、方位角的关系进行了深入的讨论。结果显示,夏半年各月日均遮挡因子以正南方向为最大,向东西方向呈对称分布。方位角在±20°内,日均和夏半年平均遮挡因子变化较小。随着纬度和倾角的增大,各月日均遮挡因子逐渐减小。集热器件60°与阳台集成时,北纬20°日均遮挡因子最大约为0.34;北纬35°时,日均遮挡因子≤0.087。夏半年的平均遮挡因子均小于0.173。方位角太大不利于太阳能的接收,集热器件的方位角应控制在±20°以内。为便于应用,该文给出了夏半年平均遮挡因子与方位角高相关性(R2≥0.99)的关系式。 After solar collector unit integrating into balcony of high-rise buildings with large tilt angle(≥60°),the lower solar collector unit will be shaded by the upper one.The calculation model of the daily shaded factor has been developed in this paper.Daily shaded factor of representative days in summer months has been calculated by using this model and the daily shaded factor variations with latitude,tilt and azimuth have been analyzed and discussed.The results show that the maximal daily shaded factors of representative days in summer months appear at due south and they are approximate symmetrical distribution between East and West directions.Daily shaded factors and average shaded factors of summer months change smoothly at the azimuth angle range of[-20°,20°].Daily shaded factors decrease with the latitude and tilt angles increase.When solar collector units used at 20°N are integrated into the balcony at 60°,their maximal daily shaded factor is around 0.34;the daily shaded factors do not exceed 0.087 if the latitude equals to 35°.For all summer months,the average shaded factors are below 0.173.The azimuth angle should be controlled in[-20°,20°]because large azimuth angle will reduce solar energy absorbed by the solar collector unit.For the sake of engineering applications,correlations with a high correlativity(R 2 ≥0.99)of average shaded factors and azimuth angles have been given in this paper.
出处 《农业工程学报》 EI CAS CSCD 北大核心 2012年第7期214-220,共7页 Transactions of the Chinese Society of Agricultural Engineering
基金 国家自然科学基金项目(50966004 51106134) NSFC-云南联合基金重点项目(U1137605) 高等学校博士学科点专项科研基金(20095303110001) 教育部长江学者和创新团队发展计划资助
关键词 太阳能 计算 模型 阳台壁挂式集热器件 遮挡因子 solar energy calculations models wall type solar collector unit shaded factor
  • 相关文献

参考文献26

  • 1Li Z S,Zhang G Q,Li D M,et al.Application and development of solar energy in building industry and its prospects in China[J].Energy Policy,2007,35(8):41214127. 被引量:1
  • 2申文明.阳台壁挂式太阳能:推进太阳能与建筑节能的结合[J].农业工程学报,2006,22(S1):194-198. 被引量:2
  • 3Yao R M,Li B Z,Steemers K.Energy policy and standard for built environment in China[J].Renewable Energy,2005,30(13):1973-1988. 被引量:1
  • 4Fang Y P,Zeng Y.Balancing energy and environment:The effect and perspective of management instruments in China[J].Energy,2007,32(12):2247-2261. 被引量:1
  • 5朱闻达.中国沿海清洁能源供给战略研究[J].中国能源,2003,25(12):21-24. 被引量:1
  • 6Zhang Z X.China is moving away the pattern of“develop first and then treat the pollution”[J].Energy Policy,2007,35(7):3547-3549. 被引量:1
  • 7Resnier M,Wang C,Du P F,et al.The promotion of sustainable development in China through the optimization of a tax/subsidy plan among HFC and power generation CDM projects[J].Energy Policy,2007,35(9):4529-4544. 被引量:1
  • 8《国家中长期科学和技术发展规划纲要2006-2020》[R].中华人民共和国国务院,2006. 被引量:1
  • 9Matuska T,Sourek B.Facade solar collectors[J].Solar Energy,2006,80(11):1443-1452. 被引量:1
  • 10Tripanagnostopoulos Y,Souliotis M,Nousia T H.Solar collectors with colored absorbers[J].Solar Energy,2000,68(4):343-356. 被引量:1

二级参考文献37

  • 1赵春江,王恒龙.太阳能建筑一体化集热器的研制和应用[J].太阳能,2004(4):28-30. 被引量:11
  • 2王崇杰,何文晶,薛一冰.欧美建筑设计中太阳墙的应用[J].建筑学报,2004(8):76-78. 被引量:24
  • 3赵群,李桂文.太阳能建筑的整合设计[J].太阳能,2004(5):28-31. 被引量:10
  • 4高辉,何泉.太阳能利用与建筑的一体化设计[J].华中建筑,2004,22(1):70-72. 被引量:41
  • 5Abdullah A H,Abou-Ziyan H Z,Ghoneim A A.Thermal performance of flat plate solar collector using various arrangements of compound honeycomb[J].Energy Conversion and Management,2003,44 (19):3093-3112. 被引量:1
  • 6Hum J E Y,Hollands K G T,Wright J L.Analytical model for the thermal conductance of double-compound honeycomb transparent insulation with validation[J].Solar Energy,2004,76(1/2/3):85-91. 被引量:1
  • 7Axcell B P.A simple equation for the effect of multiple reflections on the solar radiation absorbed by a collector with a double-glazed cover plate[J].Renewable Energy,1998,13(3):389-391. 被引量:1
  • 8Akhtar N,Mullick S C.Computation of glass-cover temperatures and top heat loss coefficient of flat-plate solar collectors with double glazing[J].Energy,2007,32(7):1067-1074. 被引量:1
  • 9Fang Y P,Eames P C,Norton B,et al.Low emittance coatings and the thermal performance of vacuum glazing[J].Solar Energy,2007,81(1):8-12. 被引量:1
  • 10Fang Y P,Eames P C,Norton B,et al.Experimental validation of a numerical model for heat transfer in vacuum glazing[J].Solar Energy,2006,80(5):564-577. 被引量:1

共引文献165

同被引文献58

引证文献3

二级引证文献20

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部