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Performance analysis of a dielectric based 3D building integrated concentrating photovoltaic system

机译:基于电介质的3D建筑集成聚光光伏系统的性能分析

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摘要

The use of concentrating photovoltaic systems (CPV) in building integration has spurred towards the development of newer products, which have the potential to offer the convenience of pleasing architecture and day lighting along with simultaneous production of clean energy. This paper addresses the energy transformations and the expected energy output of a low concentrating photovoltaic system designed to have a geometric concentration of 3.6×. The optical element used is a three dimensional Cross Compound Concentrator (3DCCPC) made from clear polyurethane material. Small sized silicon solar cells based on the Laser Grooved Buried Contact (LGBC) technology having an absorber area of 1 cm2 are utilised in the system. Both experimental and numerical analyses are performed confirming the optical, electrical and thermal performance of the system. While performing the optical analysis the concentrator was found to have a maximum optical efficiency of 73.4%. A maximum power ratio of 2.67 was observed when comparing the electrical output of the concentrator unit with a non-concentrating counterpart. The effects of non-uniformity caused by the use of the concentrator are analysed. The non-uniformity of flux distribution showed an average drop of 2.2% in the I_(sc) values which is again reflected in the overall power output. Manufacturing defects like the cell and concentrator misalignments are addressed and their impact on the overall performance are verified by numerical simulations. The operating temperature of the solar cells was found to have a parasitic effect on the overall performance of the system. A maximum temperature of 332 K was observed in the solar cell at 0° incidence and a incoming radiation of 1000 W/m~2 which brings down the overall power production by 14.6%. Finally, the expected system output over a given time period is presented showing the strengths and weakness while employing such a system.
机译:在建筑集成中使用聚光光伏系统(CPV)促进了更新产品的开发,这些新产品具有提供令人愉悦的建筑和日光照明的便利以及同时产生清洁能源的潜力。本文介绍了低浓度光伏系统的能量转换和预期能量输出,该系统设计为具有3.6倍的几何浓度。所使用的光学元件是由透明聚氨酯材料制成的三维交叉复合聚光器(3DCCPC)。系统中使用吸收面积为1 cm2的基于激光凹槽埋入接触(LGBC)技术的小型硅太阳能电池。进行了实验和数值分析,确认了系统的光学,电和热性能。在进行光学分析时,发现聚光器的最大光学效率为73.4%。将集中器单元的电输出与非集中器的电输出进行比较时,观察到最大功率比为2.67。分析了使用集中器引起的不均匀性的影响。磁通分布的不均匀性表明I_(sc)值平均下降2.2%,这再次反映在总功率输出中。解决了像电池和集中器未对准等制造缺陷,并通过数值模拟验证了它们对整体性能的影响。发现太阳能电池的工作温度对系统的整体性能具有寄生效应。入射角为0°时,太阳能电池的最高温度为332 K,入射辐射为1000 W / m〜2,使总发电量降低了14.6%。最后,给出了给定时间段内的预期系统输出,显示了采用这种系统时的优势和劣势。

著录项

  • 来源
    《Solar Energy》 |2014年第5期|525-540|共16页
  • 作者单位

    Environment and Sustainability Institute, University of Exeter, Penryn Campus, Penryn TR10 9FE, United Kingdom;

    Environment and Sustainability Institute, University of Exeter, Penryn Campus, Penryn TR10 9FE, United Kingdom;

    University of Lleida, Lleida, Spain;

    University of Lleida, Lleida, Spain;

    Environment and Sustainability Institute, University of Exeter, Penryn Campus, Penryn TR10 9FE, 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

    3DCCPC; Non-uniform; CPV; BiCPV; CPC;

    机译:3DCCPC;不均匀每次观看费用;BiCPV;每次点击费用;

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