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首页> 外文期刊>Building and Environment >Daylight and thermal harvesting performance evaluation of a liquid filled prismatic facade using the Radiance five-phase method and EnergyPlus
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Daylight and thermal harvesting performance evaluation of a liquid filled prismatic facade using the Radiance five-phase method and EnergyPlus

机译:使用辐射五相法和EnergyPlus对充满液体的棱形立面进行日光和热能收集性能评估

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摘要

A dynamic liquid filled prismatic louver (LFPL) facade is evaluated both as a daylight redirecting and an energy harvesting system. The LFPL performs daylight redirection due to its transparent daylight redirecting geometry, whereas it performs thermal harvesting due to its heat absorbing water medium inside the transparent prisms. We evaluate the illuminance levels and daylight glare probability (DGP) of the LFPL system through the Radiance simulation tool, and in particular using the Radiance five-phase method for complex fenestration systems (CFS). In addition, we assess the thermal harvesting potential of the LFPL system and the impact of the enhanced daylight penetration on the reduction of heating, cooling, and fan energy consumption through EnergyPlus simulations. Our study shows that (a) the LFPL system enhances the indoor natural light by 9% and reduces the glare by 20% and (b) although the facade elements have the potential to be rotated, a fixed position of the LFPL works equally well as the dynamic rotation scenarios. A fixed LFPL position is a passive design and thus does not require powering for controlling the facade, which makes the approach simpler. Furthermore, in terms of energy harvesting, the LFPL system shows (c) a 52.4% enhanced solar radiation absorption at the facade level, compared to the baseline glass glazing and (d) a reduction in cooling, heating, and fan requirements by 6.5%, 1.5%, and 5.7%, respectively.
机译:动态液体填充的棱形百叶窗(LFPL)外墙既可以作为日光重定向系统,也可以作为能量收集系统进行评估。 LFPL由于其透明的日光重定向几何形状而执行日光重定向,而由于其在透明棱镜内部吸收热量的水介质而执行热收集。我们通过“辐射”仿真工具,特别是对复杂开窗系统(CFS)使用“辐射”五阶段方法,评估LFPL系统的照度水平和日光眩光概率(DGP)。此外,我们通过EnergyPlus仿真评估了LFPL系统的集热潜力,以及日光穿透力增强对减少供暖,制冷和风扇能耗的影响。我们的研究表明,(a)LFPL系统可将室内自然光增强9%,减少眩光20%;(b)尽管立面元件具有旋转的潜力,但LFPL的固定位置同样可以正常工作动态轮换方案。固定的LFPL位置是一种被动设计,因此不需要通电即可控制立面,这使方法更简单。此外,就能量收集而言,LFPL系统显示(c)与基线玻璃窗相比,立面水平的太阳辐射吸收提高了52.4%,并且(d)冷却,加热和风扇需求降低了6.5% ,1.5%和5.7%。

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