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一种集成光伏的通风型建筑立面遮阳装置的开发与验证
Development and verification of an airflow-type photovoltaic-integrated shading device on building façades
| 作者 | Sihwan Lee · Risa Ito |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 383 卷 |
| 技术分类 | 光伏发电技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Developed a PVSD combining solar panels and louvers to enhance energy generation. |
语言:
中文摘要
摘要 光伏(PV)集成遮阳装置(PVSDs)将太阳能遮阳与发电功能结合于建筑立面上,能够有效利用太阳能,推动近零能耗建筑的发展。在高层建筑中,屋顶光伏容量有限, necessitates 将光伏系统集成到建筑立面,但垂直安装的PVSDs会降低发电量。本研究提出并验证了一种创新的通风型光伏集成遮阳装置,该装置将光伏板与通风式太阳能遮阳百叶相结合。系统在百叶顶部和底部设有开口,允许空气流通,从而实现对太阳能电池板的被动冷却,在不消耗额外能源的情况下缓解发电效率的下降。在制冷季节,室外空气通过百叶上升以冷却光伏面板;而在采暖季节,室内空气则被光伏面板加热后送入房间。通过建立详细的数值分析模型和热负荷计算,评估了该PVSD系统的全年能源性能,重点关注光伏面板效率、热量回收以及建筑能耗的变化。模拟基于单室模型,并采用日本某城市的特定气象数据,边界条件通过冬季室外实测数据进行了验证。主要研究结果表明,与非通风型PVSD相比,通风型PVSD具有更高的日累计发电量和更低的年净能耗。研究还发现,安装倾角对系统能源性能有显著影响,而开口面积和安装高度的调整则影响甚微。本研究为PVSD在建筑中的实际应用提供了有价值的参考,并为未来的设计工作奠定了基础。
English Abstract
Abstract Photovoltaic (PV)-integrated shading devices (PVSDs) combine solar shading and electricity generation on building façades, effectively harness solar energy, and promote net zero-energy building initiatives. In high-rise buildings, limited rooftop PV capacity necessitates façade integration, yet vertically installed PVSDs reduce power generation. This study proposed and verified the performance of an innovative airflow-type PVSD that integrates PV panels with ventilated solar shading louvers. The system, featuring openings at the top and bottom, allows air to pass through, enabling passive cooling of the solar panels and mitigating the decline in power generation efficiency without additional energy consumption. During cooling periods, the outside air rises through louvers to cool the panels, whereas during heating periods, the indoor air is warmed by the panels and supplied to the rooms. Detailed numerical analysis models and thermal load calculations were employed to assess the annual energy performance of the PVSD, focusing on PV panel efficiency, heat recovery, and changes in building energy consumption. Simulations were based on a single-room model and specific weather data from a Japanese city, with boundary conditions validated by winter outdoor measurements. The key findings indicate improved daily cumulative electricity generation and lower annual net energy consumption for the airflow-type PVSD compared to the non-airflow-type. The study also highlighted that the installation angle significantly impacts the energy performance, whereas modifications to the opening area and installation height have negligible effects. This study provides valuable insight into the implementation of PVSDs in building applications and serves as a foundation for future design endeavors.
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SunView 深度解读
该通风式BIPV遮阳系统为阳光电源SG系列组串逆变器在建筑立面应用提供重要参考。研究证实被动风冷可提升垂直安装光伏组件发电效率,这与我们MPPT优化技术形成协同:可针对温度变化动态调整工作点。建议结合iSolarCloud平台实时监测面板温度与发电量关联性,为高层建筑BIPV项目开发智能通风控制算法。该技术对推广1500V高效系统在城市建筑中的应用具有实践价值,可降低立面光伏因过热导致的效率损失。