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An optimal design to provide combined cooling, heating, and power of residential buildings

机译:提供住宅建筑的综合制冷,供暖和供电的最佳设计

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Providing electricity for the residential buildings which devote a high portion of energy consumption is very crucial all over the world. Not only electrical loads but also heating and cooling loads are required to be supplied in a building. The aim of this paper is to supply cooling, heating, and electrical loads in a building by separating generation system and cogeneration system. In this regard, the optimal problem was developed to minimize the total costs using particle swarm optimization algorithm. As a numerical study, a high-rise building with 72 units located in Kerman is analyzed for eight different scenarios.The results show that in order to supply cooling, heating, and power, a cogeneration system consisting of a 195 kW micro gas turbine as prime mover, a 281 kW single-effect absorption chiller, a 439 kW air cooling compaction chiller, an 187 kW auxiliary boiler to compensate the heat load, and a 52.8 kW photovoltaic to generate employed electrical loads, is the best optimal system to supply the base building loads. In this optimized system, the annual electricity sales revenue is 93,251$, the annual cost of buying power is 7001$, the cost of buying fuel as annual consumption is 15,852.4$, and the annual production of carbon dioxide emissions in the building is 229.78 tons. The return on investment period for the aforementioned project is also estimated 4.98 years.
机译:在全世界范围内,为消耗大量能源的住宅建筑供电是至关重要的。在建筑物中不仅需要提供电负载,还需要提供供暖和制冷负载。本文的目的是通过分离发电系统和热电联产系统,为建筑物提供制冷,供暖和电力负荷。在这方面,使用粒子群优化算法开发了最佳问题以使总成本最小化。通过数值研究,分析了位于Kerman的72单元的高层建筑在8种不同情况下的使用情况,结果表明,为了提供制冷,供暖和电力,由195 kW微型燃气轮机组成的热电联产系统原动机,281 kW的单效吸收式制冷机,439 kW的空气冷却压实式制冷机,187 kW的辅助锅炉(用于补偿热负荷)和52.8 kW的光伏发电装置(用于产生使用的电负荷)是为锅炉提供最佳电力的最佳系统。基础建筑荷载。在这种优化的系统中,年电力销售收入为93,251美元,年购电成本为7001美元,按年消耗量购买燃料的成本为15,852.4美元,建筑物中的二氧化碳年排放量为229.78吨。上述项目的投资回报期也估计为4.98年。

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