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Experimental demonstration and performance evaluation of a complex fenestration system for daylighting and thermal harvesting

机译:用于采光和热采的复杂开窗系统的实验演示和性能评估

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摘要

Two significant design strategies for mitigating building energy consumption are daylight redirection and solar energy harvesting. Effective daylighting implementation enhances the amount of useful natural light within a space and offsets the need for electric lighting. Solar energy harvesting systems can mitigate energy costs from mechanical systems by managing incoming thermal loads or capturing solar energy that can be used to supplement thermal systems in the building. While there are many available facade-based technologies that can perform daylighting or solar thermal energy harvesting, there remains a limitation in available systems that can perform both of them simultaneously. This paper, describes the design and experimental demonstration of a Liquid Filled Prismatic Louver (LFPL) system, which combines both energy-saving strategies. The LFPL system was installed in a south-facing room in New York City and evaluated for indoor daylight penetration and potential for thermal energy harvesting. Daylight redirection is achieved through the prismatic louver geometry and proper orientation, whereas thermal energy harvesting is achieved through IR absorption from the liquid (e.g., water) within the prisms. Daylighting performance was evaluated by illuminance measurements at key locations within the space, whereas thermal harvesting performance was evaluated through temperature measurements and thermal imaging analysis. We show that the LFPL system, with all prismatic elements oriented at the same angle, achieve a 2-fold and 8-fold enhancement in daylight redirection to the ceiling, for prism orientations of 10 degrees and 20 degrees, respectively. We also demonstrate the system's capability to adjust to specific lighting needs, within the space, through the dynamic individual orientation of prismatic elements; thus, achieving a concentrated ceiling illuminance enhancement of similar to 100 times and similar to 200 times at 2.5 and 4.3 m away from the window sill, providing workplane illuminance enhancement of 6 and 2 times more than in the case of the control room with regular windows. Furthermore, we show a reduction of potential heating loads at locations close to the window from the combination of infrared absorption in the water volume and the redirection of the incoming solar radiation, leading to a reduction of the workplane temperature by an average of 7-10 degrees C.
机译:减少建筑物能耗的两种重要设计策略是日光重定向和太阳能收集。有效的采光实施可以增加空间中有用的自然光的数量,并抵消对电照明的需求。太阳能收集系统可以通过管理传入的热负荷或捕获可用于补充建筑物内热力系统的太阳能来减轻机械系统的能源成本。尽管有许多可用的基于立面的技术可以执行采光或太阳能热能收集,但是在可以同时执行这两种方法的可用系统中仍然存在限制。本文介绍了结合了两种节能策略的液体填充棱镜百叶窗(LFPL)系统的设计和实验演示。 LFPL系统安装在纽约市朝南的房间中,并进行室内日光穿透和热能收集的潜力评估。通过棱镜百叶窗的几何形状和适当的方向可以实现日光重定向,而通过从棱镜内的液体(例如水)吸收红外光可以实现热能的收集。通过空间中关键位置的照度测量来评估采光性能,而通过温度测量和热成像分析来评估采热性能。我们显示,LFPL系统的所有棱镜元素都以相同的角度定向,分别将棱镜定向为10度和20度时,日光重定向到天花板的效果提高了2倍和8倍。我们还演示了该系统通过动态变化的棱柱形元素方向来适应空间中特定照明需求的能力;因此,在距窗台2.5和4.3 m处,集中式天花板的照度提高了约100倍,而在200和200倍时接近200倍,与常规窗户的控制室相比,工作平面的照度提高了6到2倍。此外,由于水量中的红外吸收和入射太阳辐射的重定向,我们显示了靠近窗户的位置处潜在的热负荷减少,从而使工作平面温度平均降低了7-10摄氏度

著录项

  • 来源
    《Solar Energy》 |2020年第2期|385-395|共11页
  • 作者

  • 作者单位

    CUNY City Coll Dept Mech Engn New York NY 10031 USA;

    CUNY City Coll Dept Elect Engn New York NY 10031 USA|Pacific Northwest Natl Lab Richland WA 99354 USA;

    CUNY City Coll Dept Elect Engn New York NY 10031 USA|CUNY City Coll CUNY Inst Urban Syst Bldg Performance Lab New York NY USA;

  • 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

    Liquid filled prismatic louvers; Daylight; Thermal harvesting; Daylight redirection; Thermal load reduction;

    机译:液体填充的方形百叶窗;日光热收割;日光重定向;减少热负荷;

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