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Energy and Carbon-Emission Analysis of Integrated Green-Roof Photovoltaic Systems: Probabilistic Approach

机译:集成式屋顶光伏系统的能量和碳排放分析:概率方法

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摘要

Roofs are important components of buildings and can be designed and/or retrofitted with photovoltaic (PV) and green-roof (GR) systems to produce energy and to improve stormwater management. Traditionally, GRs and PVs have been viewed as direct competitors vying for the same roof space. However, with correct design, synergy effects arise when combining both technologies (GR-PV). In this paper, a probabilistic analysis is performed to examine the potential energy and carbon emissions of GR, PV, and GR-PV systems. The analysis demonstrates that a GR-PV system is a low-risk investment generating lower energy and carbon-emission payback time in comparison with separate GR and PV systems. Furthermore, the average of net energy of this technology is 7.3 and 1.3 times higher than separate GR and PV systems, respectively. In addition, the installation of GR-PV systems throughout the City of Toronto could supply 16% of the electricity by PVs and reduce 12% of energy demand (i.e., heating and cooling) by GRs. However, extensive modification of the electrical grid would be needed for efficient collection and transmission of PV-generated power. (c) 2017 American Society of Civil Engineers.
机译:屋顶是建筑物的重要组成部分,可以使用光伏(PV)和绿化屋顶(GR)系统进行设计和/或翻新,以产生能量并改善雨水管理。传统上,遗传资源和光伏被视为争夺相同屋顶空间的直接竞争者。但是,如果设计正确,则将两种技术(GR-PV)结合使用时会产生协同效应。在本文中,进行了概率分析以检查GR,PV和GR-PV系统的潜在能量和碳排放。分析表明,与单独的GR和PV系统相比,GR-PV系统是一种低风险投资,可产生较低的能源和碳排放回收时间。此外,该技术的平均净能量分别比单独的GR和PV系统高7.3倍和1.3倍。此外,在多伦多市各处安装GR-PV系统可以通过PV提供16%的电力,并减少GRs的12%的能源需求(即供热和制冷)。然而,将需要对电网进行广泛的修改,以有效地收集和传输光伏发电的电力。 (c)2017年美国土木工程师学会。

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