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Numerical and experimental study of semi-transparent photovoltaics integrated into commercial building facades.

机译:将半透明光伏技术集成到商业建筑立面中的数值和实验研究。

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摘要

Semi-transparent photovoltaics (STPV) have a large potential for integration in fenestration systems, adding the option of solar electricity production while still allowing for satisfaction of daylight needs. In office buildings, where the trends in architecture already include large glazed facades, and lighting loads constitute a significant portion of the overall energy consumption and, the integration of this technology is intuitive.;The thesis addresses the issue of optimizing the PV area ratio for a simplified model based on a typical office in Montreal with an evenly divided south facing 3-section facade, which is an optimized facade concept that allows for view, adequate daylight and reduced heating/cooling loads. Several parametric variations are taken into consideration including facade orientation, site location, PV efficiency, lighting control strategies and shading device transmittance.;The annual simulation results show that a facade with integrated STPV has the potential to improve the overall energy performance when compared with opaque PV due to the significant daylighting benefits even at low transparency ratios. At approximately 90% PV area ratio in the upper section of the facade, the daylighting needs of the room are met; at higher PV area ratios the lighting loads increase rapidly and at lower ratios, the additional natural lighting does not enhance the performance further.;This thesis studies the potential of using either spaced opaque PV (photovoltaics) or thin-film PV and examines the impact of changing the PV area ratio (ratio of photovoltaics coverage to fenestration area) on the facade. It includes a verification of the workplane illuminance and PV output simulation models through comparison with measured data from an experimental office with a specially built full-scale prototype of a window with spaced solar cells.
机译:半透明光伏(STPV)在开窗系统中具有很大的集成潜力,增加了太阳能发电的选择,同时仍然满足日光需求。在办公楼中,建筑趋势已经包括大型玻璃幕墙,照明负载构成了整体能耗的重要部分,并且该技术的集成非常直观。一个简化的模型,该模型基于蒙特利尔的一个典型办公室,具有朝南的三部分式外墙均匀划分的外观,这是一种优化的外墙概念,可以查看,充足的日光并减少加热/冷却负荷。考虑了几个参数变化,包括立面方位,站点位置,PV效率,照​​明控制策略和遮光设备的透射率。年度仿真结果表明,与不透明相比,集成了STPV的立面具有改善整体能源性能的潜力由于即使在较低的透光率下也具有显着的采光效果,因此具有PV。立面上部的PV面积比约为90%,可以满足房间的采光需求;在较高的PV面积比下,照明负载会迅速增加,而在较低的比例下,额外的自然照明不会进一步提高性能。;本文研究了使用间隔不透明的PV(光伏)或薄膜PV的潜力,并研究了影响立面上改变光伏面积比(光伏覆盖率与开窗面积之比)的示意图。它包括通过与来自实验室的测量数据进行比较来验证工作面照度和PV输出仿真模型,该实验室具有特制的带有间隔的太阳能电池的全尺寸窗户原型。

著录项

  • 作者

    Robinson, Leanne.;

  • 作者单位

    Concordia University (Canada).;

  • 授予单位 Concordia University (Canada).;
  • 学科 Civil engineering.;Architectural engineering.
  • 学位 M.A.Sc.
  • 年度 2009
  • 页码 175 p.
  • 总页数 175
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:48

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