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Thermal performance evaluation of a passive building wall with CO_2-filled transparent thermal insulation and paraffin-based PCM

机译:具有CO_2填充透明隔热和基于石蜡基PCM的无源建筑壁的热性能评价

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摘要

Novel thermal insulation materials and wall configurations have the potential to play a major role in reducing energy demand and carbon emissions from the building sector. In this study, a passive heating wall system composed by a CO2-filled transparent thermal insulation (TTI) and an organic phase change material (PCM), and a passive cooling system composed by a Tromble Wall with nano-film and a CO2-filled TTI are proposed and evaluated. The aim is to present a detailed analytical model for rapidly calculating thermal performance of the proposed wall configurations. As case study, a 108 m(2) south facade of a building located in Mexico has been used. Outputs suggest that as a passive heating measure, the system has the potential to supply heat in the order of 118 W, 126 W, 134 W, and 157 W, during the months of December, January, February, and March respectively. Additionally, thermal performance and air velocity simulations suggest that for the heating case, considering an outdoor and indoor temperature conditions of 0 degrees C and 21 degrees C respectively, the internal layer surface reaches a temperature of 9.2 degrees C; while for the cooling case, considering outdoor and indoor temperature conditions of 25 degrees C and 21 degrees C respectively, it reaches 22.5 degrees C with a maximum indoor air velocity of 0.5 m/s. Compared to other gases, CO2 could hold a greater potential due to its low thermal conductivity and capital costs. Large-scale implementation of such systems could make the building sector an interesting option as an artificial sink for carbon storage.
机译:新型隔热材料和墙壁配置具有在降低建筑物的能量需求和碳排放方面发挥重要作用。在该研究中,由CO 2填充透明隔热(TTI)和有机相变材料(PCM)构成的被动加热壁系统,以及由具有纳米膜和CO 2填充的旋转壁组成的被动冷却系统TTI是提出和评估的。目的是提供一种详细的分析模型,用于快速计算所提出的墙壁配置的热性能。如案例研究,已经使用了位于墨西哥的建筑物的108米(2)南部。产出表明,作为一种被动加热措施,该系统分别在118 W,126 W,134 W和157 W中分别在12月,1月,2月和3月期间提供热量。另外,热性能和空气速度模拟表明,对于加热箱,考虑到0℃和21℃的室外温度条件,内部层表面达到9.2℃的温度;在用于冷却盒的同时,考虑到室外和室内温度条件为25摄氏度和21℃的温度,它达到22.5摄氏度,最大室内空气速度为0.5米/秒。与其他气体相比,由于其低导热率和资本成本,CO2可能具有更大的潜力。大规模实施此类系统可以使建筑物成为碳储存人工汇的有趣选择。

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