建筑相变储能过程拓扑优化及金属泡沫结构数值分析

IF 6.6 2区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Xinyu Huang , Zilong Song , Yuan Xie , Jiao Wang , Xiaohu Yang
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引用次数: 0

摘要

相变储能技术的应用在建筑能源管理中具有相当重要的意义,但相变材料存在传热不均匀、导热系数低等问题。本文考虑了两种被动强化传热方法(新型拓扑翅片和金属泡沫)对其进行改进。以最低平均温度为优化参数构建了拓扑优化的翅片结构,采用非平衡热模型建立了铜金属泡沫的数值模型。比较分析了泡沫铜和拓扑优化翅片对散热特性的影响。结果表明,新型的拓扑翅片结构Case 5,体积比为5%,提高了耐火区内的凝固性能。同样体积的泡沫金属,Case 6的凝固时间比Case 5缩短了8.47%。而平均放热率和能量释放率分别降低了3.81%和9.95%。因此,在不完全放热条件下,与金属泡沫相比,拓扑翅片表现出更好的热响应和传热效率。对金属泡沫的孔密度的进一步研究表明,增加孔密度可以减少热释放时间,提高释放速度,尽管以总能量释放为代价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical analysis of topological optimization and metal foam structure of phase change energy storage process for buildings
The application of phase change energy storage technology holds considerable significance in building energy management, but phase change materials have problems such as uneven heat transfer and low thermal conductivity. In this study, two passive heat transfer enhancement methods (novel topological fin and metal foam) are considered to improve it. The topologically optimized fin structure is constructed with the lowest average temperature as the optimization parameter, and the numerical model of copper metal foam is developed using a non-equilibrium thermal model. The impact of copper foam and topology-optimized fins on the heat release characteristics is comparatively analyzed. Results indicate that the novel topological fin structure, Case 5, with a 5% volume ratio, enhances the solidification performance within the refractory region. Furthermore, the solidification time for the same volume of metal foam, Case 6, is reduced by 8.47% compared to Case 5. However, the mean heat release rate and energy release are reduced by 3.81% and 9.95%, respectively. Consequently, the topological fin demonstrates superior thermal response and heat transfer efficiency compared to the metal foam under conditions of incomplete heat release. Further investigation into the pore density of the metal foam reveals that increasing pore density reduces heat release time and increases the release rate, albeit at the expense of total energy release.
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来源期刊
Energy and Buildings
Energy and Buildings 工程技术-工程:土木
CiteScore
12.70
自引率
11.90%
发文量
863
审稿时长
38 days
期刊介绍: An international journal devoted to investigations of energy use and efficiency in buildings Energy and Buildings is an international journal publishing articles with explicit links to energy use in buildings. The aim is to present new research results, and new proven practice aimed at reducing the energy needs of a building and improving indoor environment quality.
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