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Energy and greenhouse gas emission assessment of conventional and solar assisted air conditioning systems

机译:常规和太阳能辅助空调系统的能源和温室气体排放评估

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摘要

Energy consumption in the buildings is responsible for 26% of Australia's greenhouse gas emissions where cooling typically accounts for over 50% of the total building energy use. The aim of this study was to investigate the potential for reducing the cooling systems' environmental footprint with applications of alternative renewable energy source. Three types of cooling systems, water cooled, air cooled and a hybrid solar-based air-conditioning system, with a total of six scenarios were designed in this work. The scenarios accounted for the types of power supply to the air-conditioning systems with electricity from the grid and with a solar power from highly integrated building photovoltaics (BIPV). Within and between these scenarios, systems' energy performances were compared based on energy modelling while the harvesting potential of the renewable energy source was further predicted based on building's detailed geometrical model. The results showed that renewable energy obtained via BIPV scenario could cover building's annual electricity consumption for cooling and reduce 140 tonnes of greenhouse gas emissions each year. The hybrid solar air-conditioning system has higher energy efficiency than the air cooled chiller system but lower than the water cooled system.
机译:建筑能耗占澳大利亚温室气体排放量的26%,而制冷通常占建筑能耗总量的50%以上。这项研究的目的是研究使用替代可再生能源减少冷却系统的环境足迹的潜力。在这项工作中,设计了三种类型的冷却系统:水冷式,风冷式和基于太阳能的混合空调系统,总共有六个方案。这些场景说明了使用来自电网的电能和来自高度集成的建筑光伏(BIPV)的太阳能为空调系统供电的类型。在这些场景之间以及这两种场景之间,将基于能源模型对系统的能源性能进行比较,同时根据建筑物的详细几何模型进一步预测可再生能源的收获潜力。结果表明,通过BIPV情景获得的可再生能源可以覆盖建筑物每年用于冷却的电力消耗,并每年减少140吨温室气体排放。混合太阳能空调系统比风冷式制冷机系统具有更高的能源效率,但比水冷式系统低。

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