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Light redirecting system using sine-wave based panels for dense urban areas

机译:使用正弦波面板的光重定向系统,适用于人口稠密的市区

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Cities and towns around the world are becoming more condensed due to the shrinking amount of buildable areas, which significantly reduces the amount of light that occupants have access to. This lack of natural lighting results in health, safety and quality of life degradation. This paper presents a new technique of transmitting sunlight downward into narrow alleys and streets, by using a day-lighting guiding acrylic panel that is capable of changing the direction and distribution of the incident light. The core of the proposed daylight guidance system is made up of light transmission panels with high quality. The corrugations have sine wave shaped cross-section so that the panel functions as an optical diffuser perpendicular to the direction of sunlight propagation. The day lighting system consists of the corrugated panels and a lattice frame, which supports the panel. The proposed system is to be mounted on the building roof facing the sun so as to redirect the incident sunlight downward into the narrow alleys or streets. Since building sizes and orientations are different the frame is arranged such that substantially deep light penetration and high luminance level can be achieved. Simulation results show that the proposed panel improves the illuminance values by more than 200% and 400% in autumn and winter, respectively, provides fan-out angle that exceeds 80° for certain solar altitudes and the transmitted power percentage varies from 40% to 90% as the solar altitude varies from 10° to 80°. Experimental results are in a good agreement with the simulations.
机译:由于可建筑面积的减少,世界各地的城镇变得越来越拥挤,这大大减少了居民可进入的光量。缺乏自然采光会导致健康,安全和生活质量下降。本文提出了一种新技术,该技术通过使用能够改变入射光的方向和分布的日光引导丙烯酸板,将阳光向下传播到狭窄的小巷和街道中。拟议的日光引导系统的核心由高质量的透光面板组成。波纹具有正弦波形的横截面,因此面板可以用作垂直于阳光传播方向的光学扩散器。日间照明系统由瓦楞板和支撑该板的格子框架组成。拟议的系统应安装在面向太阳的建筑物屋顶上,以便将入射的阳光向下重定向到狭窄的小巷或街道中。由于建筑物的大小和方向不同,所以将框架布置成使得可以实现充分的深光穿透和高亮度水平。仿真结果表明,所提出的面板在秋季和冬季分别将照度值提高了200%和400%以上,对于某些太阳能高度,扇出角度超过80°,并且发射功率百分比从40%变为90% %随着太阳高度从10°到80°的变化而变化。实验结果与仿真结果吻合良好。

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