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Comparative performance assessment of a non-ventilated and ventilated BIPV rooftop configurations in the Netherlands

机译:荷兰非通风和通风BIPV屋顶配置的比较性能评估

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摘要

Backside ventilation is one of the most common passive cooling methods of PV modules in the built environment, but might be under constraint when integrating PV in the building envelope. To investigate the short and long term effect of backside ventilation on Building Integrated PV (BIPV) performance and lifespan, a comparative BIPV field test is conducted in a real life lab located in the Netherlands. The field test includes 24 modules in 4 segments with different levels of backside ventilation. PV energy output, module backside temperature, relative humidity in the air gap, and air velocity in the air gap have been monitored for three years in the period January 2013-December 2015. At the end of the monitoring period Electric Luminescence (EL) images were made and Standard Testing Condition (STC) power was determined. The ventilated segments show a similar behaviour (6% difference) in PV energy output, but the non-ventilated segment shows a strong decrease of 86% in output after three years. A maximum temperature of 72 degrees C is reached in the ventilated segments and a maximum temperature of 83 degrees C in the non ventilated segment. Relative humidity (RH) levels reach a maximum of 100% in all segments. Air velocity in the non-ventilated segment is 13-39% of the air velocity in the ventilated segments. STC power determination and EL imaging show lower peak power and more defects in the non-ventilated modules, and modules placed at vertical higher positions in the non-ventilated segment have a lower power output of 50-60%. The results indicate that, considering the first generation Metal Wrap Through (MWT) modules investigated, the non-ventilated BIPV modules exposed to the highest temperatures show the lowest power output, lowest STC power and show the most damaged cells in the EL imaging. Even though PV module manufacturing shows continuous technological advances, the methodology and results of this work has added value for the prediction of BIPV operating aspects and lifespan when designing and realizing a BIPV installation. Moreover, the BIPV field test presented in this study has been a very illustrative BIPV demonstration project for manufacturers, installers and designers. (C) 2017 Elsevier Ltd. All rights reserved.
机译:背面通风是建筑环境中PV模块最常见的被动冷却方法之一,但在将PV集成到建筑物围护结构中时可能会受到限制。为了研究背面通风对建筑物集成PV(BIPV)性能和寿命的短期和长期影响,在荷兰的一个真实生活实验室中进行了比较BIPV现场测试。现场测试包括4个部分的24个模块,这些模块具有不同程度的背面通风。在2013年1月至2015年12月的三年中,对光伏能量输出,模块背面温度,气隙中的相对湿度和气隙中的空气流速进行了监测。在监测期结束时,电致发光(EL)图像进行测试并确定标准测试条件(STC)功率。通风段在PV能量输出上表现出相似的行为(相差6%),但非通风段在三年后显示出86%的大幅下降。通风段的最高温度为72摄氏度,非通风段的最高温度为83摄氏度。在所有网段中,相对湿度(RH)的最大值最高为100%。非通风段中的风速为通风段中的风速的13-39%。 STC功率确定和EL成像显示,非通风模块中的峰值功率较低,并且存在更多缺陷,并且放置在非通风段中垂直较高位置的模块具有50-60%的较低功率输出。结果表明,考虑到所研究的第一代金属包裹式(MWT)模块,暴露在最高温度下的非通风BIPV模块在EL成像中显示出最低的功率输出,最低的STC功率,并且显示出损坏最多的单元。尽管光伏组件制造显示出持续的技术进步,但这项工作的方法和结果在设计和实现BIPV安装时,对于预测BIPV操作方面和使用寿命具有附加价值。此外,本研究中提出的BIPV现场测试对于制造商,安装人员和设计人员而言,是一个非常具有说明意义的BIPV演示项目。 (C)2017 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Solar Energy》 |2017年第4期|389-400|共12页
  • 作者单位

    Zuyd Univ Appl Sci, Nieuw Eyckholt 300, NL-6419 DJ Heerlen, Netherlands|Eindhoven Univ Technol, Dept Built Environm, NL-5600 MA Eindhoven, Netherlands;

    Zuyd Univ Appl Sci, Nieuw Eyckholt 300, NL-6419 DJ Heerlen, Netherlands|TNO, Stieltjesweg 1, NL-2628 CK Delft, Netherlands;

    SBS, Wollenbergstr 37, NL-5581 HH Waalre, Netherlands;

    TNO, Stieltjesweg 1, NL-2628 CK Delft, Netherlands;

  • 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

    Zero energy buildings; Building envelope; Building Integrated Photovoltaics;

    机译:零能耗建筑物;建筑物围护结构;建筑物集成光伏发电;

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