Valinejadshoubi Masoud, Athienitis Andreas K, Bagchi Ashutosh, Abtahi Matin
Centre for Zero Energy Building Studies, Department of Building, Civil, and Environmental Engineering, Concordia University, Montreal, QC H3G 1M8, Canada.
Biomimetics (Basel). 2024 Jul 31;9(8):463. doi: 10.3390/biomimetics9080463.
This simulation study explores the potential of a novel façade design with integrated control system comprising a dynamic photovoltaic (PV) facade integrated with dimming lighting control to enhance the work environment in office buildings and achieve energy-efficient solutions. Parametric modeling using the Grasshopper plug-in for Rhino software 7, coupled with energy simulation through the Honeybee environmental plug-in for the EnergyPlus program, are used in the methodology. The integrated control strategy was simulated to study in a single office space, utilizing the Daysim engine to assess indoor daylight quality and focusing on Daylight Factor (DF) and Daylight Glare Probability (DGP). Additionally, two artificial lighting control systems were examined for potential integration with the dynamic PV facade to minimize lighting load. The study employs the Galapagos evolutionary solver function embedded within Grasshopper to identify optimum solutions. The dynamic PV façade achieves substantial reductions in overall energy consumption, cutting it by 73% in June, 54% in July, 54.5% in August, and 52.55% in September. The results demonstrate substantial reductions in total energy consumption, with notable savings in heating and cooling due to the dynamic facade's ability to balance and control solar radiation during working hours. Moreover, the dynamic PV facade contributes to electricity generation, demonstrating its potential to improve visual comfort, decrease energy consumption, and generate electric energy through rotational adjustments and varying transparency levels.
本模拟研究探讨了一种新型立面设计的潜力,该设计具有集成控制系统,包括集成调光照明控制的动态光伏(PV)立面,以改善办公楼的工作环境并实现节能解决方案。方法中使用了Rhino软件7的Grasshopper插件进行参数建模,并通过EnergyPlus程序的Honeybee环境插件进行能量模拟。在单个办公空间中模拟了集成控制策略,利用Daysim引擎评估室内日光质量,并重点关注日光系数(DF)和日光眩光概率(DGP)。此外,还研究了两种人工照明控制系统与动态光伏立面的潜在集成,以最小化照明负荷。该研究采用Grasshopper中嵌入的Galapagos进化求解器功能来确定最佳解决方案。动态光伏立面在总体能耗方面实现了大幅降低,6月降低了73%,7月降低了54%,8月降低了54.5%,9月降低了52.55%。结果表明,总能耗大幅降低,由于动态立面在工作时间能够平衡和控制太阳辐射,供暖和制冷方面有显著节省。此外,动态光伏立面有助于发电,显示出其通过旋转调整和改变透明度水平来改善视觉舒适度、降低能耗和产生电能的潜力。