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Energy performance of building envelopes integrated with phase change materials for cooling load reduction in tropical Singapore

机译:集成相变材料的建筑围护结构的能源性能,可降低热带新加坡的冷却负荷

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Phase change materials (PCMs) are capable to absorb massive heat during a phase transition in a narrow temperature range, which have great potential to be incorporated into building envelopes to prevent heat penetration into buildings and reduce cooling loads. The efficiency and selection of PCMs, however, are highly subject to the climate where they are applied. This study focused on the energy performance of building envelopes integrated with PCMs for cooling load reduction in tropical climate through numerical simulations. Studies were carried out to reveal the efficacy and factors that govern the performance of the PCM addition for cooling load reduction in Singapore. The results showed that PCM can effectively reduce heat gains through building envelopes throughout the whole year, indicating the significant advantage of the use of PCMs in tropics over other regions where PCMs are only effective in certain seasons. The selection of PCM with suitable phase change temperature is critical. PCMs applied to the exterior surfaces of walls showed better performance and the optimum phase change temperature is the lowest temperature allowing the full melting-solidification cycle of the entire PCM layer. A larger phase change temperature range improves the adaptivity of the PCMs to temperature variations, but may compromise the largest energy savings that the PCMs can achieve. While thicker PCM layer reduces heat gains through building envelope, thinner PCM layer shows higher efficiency and cost benefits. (C) 2015 Elsevier Ltd. All rights reserved.
机译:相变材料(PCM)能够在狭窄的温度范围内的相变过程中吸收大量热量,这些材料具有被整合到建筑物围护结构中的巨大潜力,以防止热量渗透到建筑物中并减少冷却负荷。但是,PCM的效率和选择在很大程度上取决于所使用的气候。这项研究的重点是通过数值模拟将集成了PCM的建筑围护结构的能源性能用于降低热带气候中的冷却负荷。进行了研究,以揭示在新加坡降低PCM冷却负荷的性能和支配PCM性能的因素。结果表明,PCM可以全年通过建筑围护结构有效地减少热量获取,表明在热带地区使用PCM的显着优势超过了仅在某些季节有效的其他地区。选择具有合适相变温度的PCM是至关重要的。应用于墙壁外表面的PCM表现出更好的性能,最佳的相变温度是最低温度,允许整个PCM层完全熔融-凝固。较大的相变温度范围可改善PCM对温度变化的适应性,但可能会损害PCM可以实现的最大节能效果。较厚的PCM层会减少建筑物外墙的热量吸收,而较薄的PCM层则显示出更高的效率和成本优势。 (C)2015 Elsevier Ltd.保留所有权利。

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