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Monitoring results of CO2 avoidance with an 8.5kWh solar electric generator integrated in a high rise commercial building in UK

机译:使用集成在英国高层商业建筑中的8.5 kWh太阳能发电机,监测避免CO 2 的结果

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Sustainable energy technologies have become very attractive and effective at the moment for use in the UK and other parts of the world as techniques for reducing carbon footprints in the building sectors. These include micro-wind turbines, photovoltaics, small hydro power generators and bio-tech systems. Besides building integrated solar electric generators otherwise referred to as building integrated photovoltaics (BIPV), which is aesthetically appealing and forms part of the applied building fabrics, most other options could deform the building aesthetics and require large spaces for both installation and operation especially, the wind turbine. These advantages and more make BIPV one of the most attractive sustainable energy technologies in contemporary building sectors at the moment. The technology involves the integration of photovoltaics (PV) modules into the fabric and shell of buildings like the roofs, asphalt shingles, facade materials and shading elements. Used in this way the integrated PV modules could replace conventional building materials thereby benefiting from improved capital cost and reduction of carbon footprint in the applied environment. However, one major lapse identified with previous studies had been the unavailability of numerical methods and quantification of the CO 2 mitigated by applied low carbon technologies. Using a parametric method with the aid of Kyoto platform software integrated into a state of the art SMA data technology, this paper assesses and quantifies the CO 2 avoidance by a building integrated solar electric system applied in a business/commercial building in the UK. The CO 2 protection capacity of the solar electric system has been confirmed to be influenced by the different seasons of the year providing maximum environmental protection in the summer months.
机译:目前,可持续能源技术作为减少建筑行业碳足迹的技术,已在英国和世界其他地区使用,已变得非常有吸引力和有效。这些包括微型风力涡轮机,光伏发电,小型水力发电机和生物技术系统。除了建筑集成太阳能发电机(BIPV)(在美学上吸引人并构成所应用的建筑织物的一部分)外,大多数其他选择可能会破坏建筑美学,并需要较大的安装和操作空间,特别是风力涡轮机。这些优势以及更多优势使BIPV成为当前建筑领域中最具吸引力的可持续能源技术之一。该技术涉及将光伏(PV)模块集成到建筑物的织物和外壳中,例如屋顶,沥青瓦,立面材料和遮阳元素。通过这种方式使用集成的PV模块可以替代传统的建筑材料,从而受益于改进的资本成本和在应用环境中减少的碳足迹。但是,先前研究发现的一个重大失误是无法采用数值方法,而无法通过应用低碳技术来量化CO 2。本文使用参数化方法,将京都平台软件集成到最新的SMA数据技术中,通过在英国的商业/商业建筑中使用的建筑一体化太阳能发电系统,评估并量化了避免CO 2排放量。已确认太阳能电力系统的CO 2保护能力会受到一年中不同季节的影响,从而在夏季提供最大程度的环境保护。

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