Thermal performances and invisible thermal barrier formation mechanism of arc-shaped metal-fin-enhanced thermally activated building envelopes with directional heat charging feature

IF 6.1 1区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Yang Yang, Sarula Chen, Jiqiang Zhang, Zhenya Zhang, Shuying Li, Kunyu Chen, Xiuyi Xiao
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引用次数: 0

Abstract

Thermally activated building envelopes (TABEs) are multifunctional component that combines structural and energy properties. Based on re-examining the heat charging processes, an arc-shaped metal-fin-enhanced TABE (Arc-finTABE) with directional heat charging features is proposed to optimize the thermal barrier formation process. A comprehensive parameterized analysis is conducted based on a validated mathematical model to explore the influence of 5 fin-structure design parameters and the static insulation thickness. Results verified that the directional charging strengthening fins can improve transient thermal performances of Arc-finATBE and enlarge horizontal and vertical sizes of the thermal energy accumulation area surrounding the pipeline, while the maximum growth in extra heat loss is less than 3.17%. From the perspective of promoting heat injection into expected areas, the straight main fin configurations with the angle of main fins of 30°, shank length ratio of 0.4 and no leftward mounted fins are preferred in load-reduction mode, while the angle of main fins of 150°, shank length ratio of 0.8 and multiple fin designs, especially with one of the main fins horizontally toward the indoor side, are more favorable in auxiliary-heating mode. Besides, it is recommended to add one arc-shaped branch fin to each main fin to achieve a balance between performance improvement and material usage. Moreover, branch fins with larger arc angles are preferred in auxiliary-heating mode, while smaller arc angles are conducive to injecting heat into the wall along main fins in load-reduction mode and preventing the heat near the inner surface from being extracted. Under the direct influence of the strengthened invisible thermal barrier, Arc-finTABEs can reduce the amount of static insulation layer by 20%–80% while achieving equivalent thermal performances as conventional high-performance walls.

具有定向充热功能的弧形金属鳍增强热激活建筑围护结构的热性能和隐形隔热屏障形成机理
热激活建筑围护结构(TABE)是一种集结构和能源特性于一体的多功能组件。在重新研究充热过程的基础上,提出了一种具有定向充热功能的弧形金属翅片增强型热激活建筑围护结构(Arc-finTABE),以优化热障形成过程。基于已验证的数学模型进行了全面的参数化分析,探讨了 5 个鳍片结构设计参数和静态隔热层厚度的影响。结果验证了定向充电强化翅片能改善弧形翅片ATBE的瞬态热性能,扩大管道周围热能积聚区的水平和垂直尺寸,而额外热损失的最大增长小于3.17%。从促进热量注入预期区域的角度来看,在减载模式下,主鳍片角度为 30°、鳍柄长度比为 0.4 且不向左安装鳍片的直主鳍片配置更受青睐;而在辅助加热模式下,主鳍片角度为 150°、鳍柄长度比为 0.8 且采用多鳍片设计,尤其是其中一片主鳍片水平朝向室内一侧的设计更为有利。此外,建议在每个主鳍片上增加一个弧形分支鳍片,以实现性能改善与材料使用之间的平衡。此外,在辅助加热模式下,弧角较大的支翅片更受青睐,而弧角较小的支翅片则有利于在减载模式下沿主翅片向墙体注入热量,防止靠近内表面的热量被抽走。在强化的隐形隔热层的直接影响下,弧翅TABE 可减少 20%-80% 的静态隔热层用量,同时达到与传统高性能墙体同等的隔热性能。
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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来源期刊
Building Simulation
Building Simulation THERMODYNAMICS-CONSTRUCTION & BUILDING TECHNOLOGY
CiteScore
10.20
自引率
16.40%
发文量
0
审稿时长
>12 weeks
期刊介绍: Building Simulation: An International Journal publishes original, high quality, peer-reviewed research papers and review articles dealing with modeling and simulation of buildings including their systems. The goal is to promote the field of building science and technology to such a level that modeling will eventually be used in every aspect of building construction as a routine instead of an exception. Of particular interest are papers that reflect recent developments and applications of modeling tools and their impact on advances of building science and technology.
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