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Design, development and indoor performance analysis of a low concentrating dielectric photovoltaic module

机译:低浓度介电光伏组件的设计,开发和室内性能分析

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摘要

The low concentrating photovoltaic system can be a promising choice for building integration by eliminating tracking and active cooling. This paper reports the performance analysis of a low concentrating dielectric compound parabolic concentrator designed for building facades integration in northern latitudes (>55°). The range of the acceptance angles for the designed dielectric concentrator is 0-55°, having a concentration ratio (CR) of 2.8. The concentrator is manufactured in clear polyurethane using a casting process. The average AM1.5G spectrum weighted transmittance, within spectral range 300-1100 nm, of the 16.4 mm thick polyurethane concentrator is found to be 81.9%. The performance of the designed concentrator is analysed using small prototype modules with 8 solar cells in series (1.89 W_p), under a solar simulator for different incidence angles. The optical losses that occur within the concentrator-encapsulation interface and cover glass have been reduced for better performance. The indoor characterisation of the concentrating photovoltaic (CPV) module results in a maximum power ratio of 2.27 when compared to a similar non-concentrating counterpart, for 1000 W/m~2 light energy incident at 20°. The maximum experimental optical efficiency of the CPV system is found to be 80.5%; this result gives the electrical conversion efficiency of the CPV module to be an average of 9.43% with a maximum 12.1% within the range of acceptance angle of the designed concentrator. It is observed that that the power ratio decreases near the acceptance half-angles of the designed concentrator due to the optical losses caused by scattering and escaping of light from the edge of the receiver. Investigation of the optical losses from the parabolic sides of the concentrator shows that, the imperfect parabolic surface caused by machining error results in scattering with a fraction of light escaping from the parabolic side instead of reflecting back to the receiver for all angles of incidence. Cost analysis shows that the designed CPV modules can result in a 20% reduction in the cost per unit power output of the system in the current market scenario.
机译:通过消除跟踪和主动冷却,低浓度光伏系统可以成为建筑物集成的有前途的选择。本文报告了为北纬(> 55°)的建筑立面集成而设计的低浓度介电复合抛物面聚光器的性能分析。设计的电介质集中器的接收角范围为0-55°,集中度(CR)为2.8。该浓缩器采用铸造工艺在透明聚氨酯中制造。发现16.4mm厚的聚氨酯浓缩器在300-1100nm光谱范围内的平均AM1.5G光谱加权透射率为81.9%。在一个具有不同入射角的太阳模拟器下,使用带有8个串联太阳能电池(1.89 W_p)的小型原型模块,对设计的集中器的性能进行分析。为了获得更好的性能,减少了在集中器-封装界面和盖玻片内发生的光学损耗。与类似的非集中式同类产品相比,集中式光伏(CPV)模块的室内特性导致最大功率比为2.27,入射光在20°入射时的功率为1000 W / m〜2。发现CPV系统的最大实验光学效率为80.5%。该结果使CPV模块的电转换效率平均为9.43%,在设计的集中器的接收角范围内最大为12.1%。可以看出,由于光从接收器边缘散射和逸出所引起的光学损耗,功率比在设计的集中器的接收半角附近减小。对来自聚光器抛物面的光学损耗的研究表明,由加工误差引起的不完美抛物面会导致散射,并且一部分光从抛物面逸出,而不是在所有入射角都反射回接收器。成本分析表明,在当前市场情况下,设计的CPV模块可以使系统每单位输出功率的成本降低20%。

著录项

  • 来源
    《Solar Energy》 |2014年第5期|390-401|共12页
  • 作者单位

    Environment & Sustainability Institute, University of Exeter, Cornwall Campus, Penryn TR10 9EZ, United Kingdom;

    Mechanical Engineering Department, School of Engineering and Physical Sciences, Heriot-Watt University, Edinburgh EH14 4AS, United Kingdom;

    Environment & Sustainability Institute, University of Exeter, Cornwall Campus, Penryn TR10 9EZ, United Kingdom;

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

    Photovoltaic concentrator; Low concentration; BIPV; Optical efficiency;

    机译:光伏集中器;浓度低;BIPV;光学效率;

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