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Design and optimization of a novel electrowetting-driven solar-indoor lighting system

机译:新型电润湿驱动太阳能室内照明系统的设计与优化

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摘要

Considering the high level of energy consumption for lighting in commercial buildings, the use of solar energy for daylighting is appealing more interests at both research and industrial levels. This study presents a novel daylighting system working on the principles of electrowetting. It integrates electrowetting-driven liquid prisms with existing optical fiber daylighting systems, which not only facilitates flexible regulation of the lighting power but also allows for recovery of excess sunlight that is not used for daylighting. An improved design is firstly proposed for the liquid prism to simplify the fabrication processes, increase its reliability, and facilitate easier maintenance. Liquid prisms are then fabricated using the proposed design, and different functionalities are demonstrated. Based on the optimized component design, the illumination performance and energy-saving potential of the proposed daylighting system is quantified using long-term climatological data. Under the climatic conditions of Singapore, a stand-alone system with 1 m(2) solar collector is able to provide an annual illumination time of more than 2260 h for a 10 m(2) office. The energy consumption for driving the prism is found to be negligible compared with the illumination power provided. Additionally, recovery of the excess energy would further improve the illumination time by up to 95%, while the energy cost is reduced by 20%.
机译:考虑到商业建筑中照明的高级别能耗,利用太阳能对夏令时的利用对研究和工业水平的吸引力更具兴趣。本研究提出了一种关于电润湿原理的新型仿真系统。它将电润湿驱动的液体棱镜与现有的光纤开光系统集成在一起,这不仅便于灵活的照明功率调节,还允许恢复不用于日光的过量阳光。首先提出了一种改进的设计,用于液体棱镜以简化制造过程,提高其可靠性,并促进更容易维护。然后使用所提出的设计制造液体棱镜,并证明了不同的功能。基于优化的部件设计,使用长期气候数据量化所提出的日光系统的照明性能和节能电位。在新加坡的气候条件下,具有1米(2)个太阳能收集器的独立系统能够为10米(2)个办公室提供超过2260小时的年度照明时间。与提供的照明功率相比,发现驱动棱镜的能量消耗可忽略不计。另外,回收过量能量将进一步将照明时间提高至95%,而能量成本降低了20%。

著录项

  • 来源
    《Applied Energy》 |2020年第jul1期|115128.1-115128.13|共13页
  • 作者单位

    Natl Univ Singapore Dept Mech Engn Block EA 07-08 9 Engn Dr 1 Singapore 117576 Singapore|King Abdullah Univ Sci & Technol Water Desalinat & Reuse Ctr Thuwal 23955 Saudi Arabia;

    Korea Inst Ind Technol 102 Jejudaehak Ro Cheonan Si 63243 Jeju Special Se South Korea;

    King Abdullah Univ Sci & Technol Water Desalinat & Reuse Ctr Thuwal 23955 Saudi Arabia;

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

    Electrowetting; Liquid prism; Solar indoor lighting; Long-term energy saving;

    机译:电润湿;液体棱镜;太阳室内照明;长期节能;

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