Decarbonization of Summer Cooling Energy Demands of Buildings Employing Absorption Systems in the Framework of Climate Change in Italy

F. Salata, S. Falasca, Virgilio Ciancio, S. Grignaffini
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引用次数: 1

Abstract

Temperatures in the Mediterranean area have gradually risen in the last decades due to climate change, especially in the Italian Peninsula. This phenomenon has increased the cooling needs to ensure thermal comfort in buildings and, consequently, the use of refrigeration machines. Summer air conditioning is carried out mainly using compression machines powered by electricity supplied by the national network. All this contributes to the emission of climate-changing gases. To avoid this disadvantageous chain, compression machines could be replaced by absorption cooling systems powered by solar energy. The energy needs of the buildings in a time are directly proportional to the sum of positive differences between the outdoor air temperature and the indoor set point of the systems (equal to 26°C). The annual sum of hourly temperature differences defined above can be computed for each grid cell thanks to a numerical weather prediction model, namely the Weather Research and Forecasting model, that simulates the hourly temperatures on high-resolution computation grids and over fairly large extents. Maps of cooling consumption for buildings are thus produced. Choosing absorption solar energy-powered systems instead of vapor compression refrigeration systems leads to a drop in electrical energy consumption and therefore in emissions of greenhouse gases. In this work, different hypothetical scenarios of penetration of this technology have been considered. And the subsequent consumption of electricity withdrawn from the national grid has been estimated together with the reduction of greenhouse gas emissions.
意大利气候变化框架下吸收系统建筑夏季制冷能源需求的脱碳研究
由于气候变化,地中海地区的气温在过去几十年里逐渐上升,尤其是在意大利半岛。这种现象增加了冷却需求,以确保建筑物的热舒适,因此,使用制冷机。夏季空调主要采用国家电网供电的压缩机进行。所有这些都导致了气候变化气体的排放。为了避免这种不利的链条,压缩机可以被太阳能驱动的吸收式冷却系统所取代。建筑物在一段时间内的能源需求与室外空气温度与室内系统设定点(26℃)的正差之和成正比。由于一个数值天气预报模式,即天气研究与预报模式,可以在高分辨率计算网格上和相当大的范围内模拟每小时温度,因此可以计算出上述每小时温差的年总和。这样就产生了建筑物的冷却消耗图。选择吸收式太阳能供电系统,而不是蒸汽压缩制冷系统,可以降低电能消耗,从而减少温室气体的排放。在这项工作中,考虑了该技术渗透的不同假设场景。并将随后从国家电网中撤出的电力消耗与温室气体排放的减少一起进行了估算。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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