光伏一体化双层幕墙的设计和建模以及在改造建筑中的应用

Somil Yadav , Caroline-Hachem Vermette , Md.Nadim Heyat Jilani , Gilles Desthieux
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引用次数: 0

摘要

双层玻璃幕墙(DSF)系统由两层玻璃和一个通风空腔组成。在双层幕墙外层集成光伏(PV)模块提供了一种高效的发电方法。目前的 DSF 系统建模和分析工具既复杂又耗费资源,无法在早期设计阶段对创新型光伏-DSF 系统的性能进行评估。本研究开发了一个数学模型,用于评估光伏-DSF 系统的电热性能,并考虑了光伏颜色和相对方向等建筑设计元素。该模型以能量平衡方法为基础,特别适用于设计文物建筑中的光伏-DSF 系统,因为文物建筑通常会受到颜色和相对方向的限制。在加拿大蒙特利尔的气候条件下,该模型被用于评估采用传统透明玻璃光伏组件和彩色正面玻璃光伏组件的 PV-DSF 系统的性能。结果表明,由于透射率更高,传统的透明玻璃光伏组件比有色玻璃光伏组件表现出更高的光伏电池温度,橙色、蓝色和灰色光伏组件中午的峰值温差分别为 5.5 ℃、6.2 ℃ 和 6.5 ℃。相反,光伏正面玻璃的颜色对室内空气温度的影响并不显著。此外,获得最大能量产出的最佳朝向并不总是朝南;它取决于光束的小时分布、漫射太阳辐照和环境空气温度。在蒙特利尔,朝西的 DSF 在夏季设计日可产生更多的电能和热能,因为光束辐射的小时分布偏向于下午时段。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design and modeling of PV-integrated Double Skin Facades and application to retrofit buildings

Double Skin Façade (DSF) system comprises two glazing layers with a ventilated cavity. Integrating photovoltaic (PV) modules within the outer layer of DSFs offers an efficient method for electricity generation. Current tools for modeling and analyzing DSF systems are complex and resource-intensive, lacking the capability to evaluate the performance of innovative PV-DSF systems during the early design stage. This study develops a mathematical model to evaluate the electrical and thermal performance of PV-DSF systems, considering architectural design elements such as PV color and relative orientation. Based on an energy balance approach, the model is particularly suited for designing PV-DSF systems in heritage buildings, which often have color and relative orientation constraints. The model is applied to assess the performance of PV-DSF systems with conventional clear glass PV and colored front glass PV modules under the climatic conditions of Montreal, Canada. Results indicated that conventional clear glass PV module exhibit higher PV cell temperature than colored PV modules due to greater transmissivity, with peak temperature differences at noon of 5.5 °C, 6.2 °C, and 6.5 °C for orange, blue, and gray PV modules, respectively. On the contrary, the influence of PV's color front glass on room air temperature is non-significant. Furthermore, the optimal orientation for maximum energy yield is not always south-facing; it depends on the hourly distribution of the beam, diffuse solar irradiation, and ambient air temperature. For Montreal, west-facing DSFs produce more electrical and thermal energy on a summer design day because the hourly distribution of beam radiation is skewed towards afternoon hours.

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