Optimal Design of PCM in Internal Walls for nZEB Buildings

N. Matera, P. Bevilacqua, N. Arcuri, G. Oliveti, D. Mazzeo, P. Romagnoni
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引用次数: 1

Abstract

The implementation of phase change materials PCMs in the building sector has been recently regarded as a valuable strategy in order to achieve nearly Zero Energy Buildings. If properly employed in the internal partition, the PCM layer can increase the thermal storage capacity of the building with consequent reductions of air-conditioning energy requirement. Furthermore, an adequate thermal mass of internal walls can help in attenuating the indoor air temperature drop consequent to the shutdown of the air-conditioning system in winter condition as well as attenuating a temperature rise in summer. These aspects are amplified in highly-glazed buildings, where owing to the solar radiation entering through the glazed surfaces, the surface temperatures of the internal walls are highly variable and it is thus possible to exploit the phase change. In this study, the energy performances of highly-glazed buildings with PCM integrated in the internal walls were evaluated by a parametric analysis conducted by means of dynamic numerical simulations. A modular two-story reference building, with a highly glazed external envelope, located in Rome was investigated considering three different typologies of external opaque walls, different volumes of PCM integrated in the internal walls and several values of melting temperature in the summer and winter seasons. The simulations were conducted with the aim to assess the thermal energy requested for heating and cooling and to determine a temperature deviation index to quantify the ability of PCM to maintain the indoor air temperature at acceptable levels, when the system is not operating. The results of the analysis showed, both in insulated and non-insulated buildings, in which conditions in a warm Mediterranean climate, the phase change materials can mitigate the energy demand associated with the building air conditioning and temperature deviation in the environments when the system is switched off.
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nZEB建筑内墙PCM优化设计
相变材料pcm在建筑领域的实施最近被认为是一个有价值的战略,以实现近零能耗建筑。如果在内部隔断中使用得当,PCM层可以增加建筑物的储热能力,从而减少空调能源需求。此外,足够的内墙热质量可以帮助减弱冬季空调系统关闭导致的室内空气温度下降,以及在夏季减弱温度上升。这些方面在高度玻璃化的建筑中被放大,由于太阳辐射通过玻璃表面进入,内墙的表面温度是高度可变的,因此可以利用相变。在本研究中,采用动态数值模拟的方法进行参数化分析,评价了内墙集成PCM的高玻璃建筑的能源性能。这座位于罗马的模块化两层参考建筑具有高度玻璃的外部围护结构,考虑了三种不同类型的外部不透明墙,不同体积的PCM集成在内墙中,以及夏季和冬季的几种熔化温度。进行模拟的目的是评估加热和冷却所需的热能,并确定温度偏差指数,以量化PCM在系统不运行时将室内空气温度维持在可接受水平的能力。分析结果表明,无论是在保温建筑还是非保温建筑中,在温暖的地中海气候条件下,相变材料都可以减轻与建筑空调相关的能源需求以及系统关闭时环境中的温度偏差。
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