具有形状稳定石墨烯和相变材料的轻质骨料用于储能混凝土

IF 6.6 2区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Mahsa Salimi , Luigi De Nardo , Valter Carvelli
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引用次数: 0

摘要

在这项研究中,研究了一种基于硬脂酸丁酯(BS)(一种低成本、可商用的相变材料(PCM))和石墨烯纳米片(GNs)(一种高导电填料)的新型储热轻骨料(TSA)复合材料。液态石墨烯增强的PCM在膨胀粘土(EC)聚集体的表面包覆多孔介质中成型稳定。通过实验和有限元分析相结合的方法对TSA的性能进行了评价,结果表明,当PCM质量比为GN的2%时,TSA复合材料的性能最好。在相对湿度≤5%时,对含有TSA和GN-PCM的3.5 % (wt.)的热储能混凝土(TSC)进行的热分析显示,与含有PCM-EC的混凝土相比,最大峰值平滑了4°C,与含有原始EC的对照混凝土相比,最大峰值平滑了5.1°C,而在50%相对湿度条件下的测试中,峰值降低了约3.6°C和5.2°C。此外,与含有原始EC和PCM-EC的混凝土相比,含有TSA的TSC与PCM-EC的重量比为2%的GN表现出增强的传热能力,其导热系数分别提高了244%和67%。此外,超声波传播速度增加了约20%,从而表明介质的均匀性程度更高。最后,泄漏测量表明TSA是热稳定的,并且温度历史表明其在至少500次冷却-加热循环后保持热性能的潜力。结果表明,新型TSA复合材料为提高建筑室内舒适度和能效开辟了一条实用有效的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Lightweight aggregates with shape-stabilized graphene and phase change material for energy storage concrete
In this study, a novel thermal energy storage lightweight aggregate (TSA) composite based on butyl stearate (BS), a low-cost, commercially available phase change material (PCM), and graphene nanoplatelets (GNs), as a highly conductive filler, was investigated. The least amount of liquid state graphene-enhanced PCM was shaped stabilized in the surface-coated porous medium of expanded clay (EC) aggregates. The performance of the TSA was evaluated by combining experiments and finite element analyses, the results of which demonstrated that the TSA composite with 2 % GN by weight of PCM exhibits the best behavior. The thermal analysis, at ≤5 % relative humidity, of the thermal energy storage concrete (TSC) containing TSA with 3.5 % (wt.) of GN-PCM showed the maximum peaks smoothed by up to 4 °C when compared to concrete containing PCM-EC and up to 5.1 °C when compared to control concrete with pristine EC, while this decrease was around 3.6 °C and 5.2 °C for the tests in 50 % relative humidity condition. In addition, TSC containing TSA with 2 % GN by weight of PCM exhibited enhanced heat transfer, with its thermal conductivity increasing by 244 % and 67 % when compared to concretes containing pristine EC and PCM-EC, respectively. Additionally, the ultrasonic wave propagation velocity increased by approximately 20 %, thereby demonstrating the higher degree of homogeneity of the media. Finally, the leakage measurements demonstrated that the TSA is thermally stable, and the temperature history demonstrated its potential to maintain thermal performance after at least 500 cooling-heating cycles. The results indicated that the novel-designed TSA composites pave the way for a practical and effective solution to improve indoor comfort and energy efficiency in buildings.
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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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