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Laboratory assessment of residential building walls containing pipe-encapsulated phase change materials for thermal management

机译:包含用于热管理的管道封装相变材料的住宅建筑墙的实验室评估

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To reduce the heat flow between building interior and exterior environments using thermal energy storage without causing problems related to moisture transfer, this paper presents residential building walls enhanced with pipe-encapsulated phase change materials (PCM). Experimental investigations are conducted to identify thermal performance of building walls with pipe-encapsulated PCM in typical summer conditions. A dynamic wall simulator was designed and built to reproduce residential building indoor and outdoor conditions in a laboratory setting. Two pipe sizes, based on diameter, installed in a horizontal arrangement and placed at various wall depths were investigated. The heat transfer through building walls with pipe-encapsulated PCM was evaluated based on peak heat flux reductions and peak heat flux time shift. The peak heat fluxes of the PCM-outfitted walls were reduced by a maximum of 22.5% for what was referred to as "next to wallboard" configuration and 36.5% for "middle depth" configuration, respectively, compared to standard walls. The corresponding daily energy savings were 27.4 W-hr/m(2) and 51.2 W-hr/m(2). PCM encapsulated in smaller pipes installed in the "middle depth" of the wall cavity is recommended to realize complete solidification and melting for larger peak flux reduction and energy savings. (C) 2018 Elsevier Ltd. All rights reserved.
机译:为了减少使用热能储存的建筑物内部和外部环境之间的热流,而又不引起与水分传递有关的问题,本文提出了采用管道密封相变材料(PCM)增强的住宅建筑墙体。进行了实验研究,以确定在典型的夏季条件下,采用管道封装的PCM的建筑墙体的热性能。设计并构建了动态墙模拟器,以在实验室环境中复制住宅建筑物的室内和室外条件。研究了两种基于直径的管道尺寸,它们水平安装并放置在各种壁深处。基于峰值热通量减少量和峰值热通量时移,评估了管道密封的PCM通过建筑物墙壁的传热。与标准墙相比,配备PCM的墙的峰值热通量分别降低了22.5%(对于“隔壁板”配置)和36.5%(对“中深度”配置)。 。每天相应的节能量为27.4 W-hr / m(2)和51.2 W-hr / m(2)。建议将PCM封装在安装在壁腔“中间深度”中的较小管道中,以实现完全固化和熔化,从而最大程度地减少峰值通量并节省能源。 (C)2018 Elsevier Ltd.保留所有权利。

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