Thermal Energy Storage in Concrete by Encapsulation of a Nano-Additivated Phase Change Material in Lightweight Aggregates

Nanomaterials Pub Date : 2024-07-11 DOI:10.3390/nano14141180
I. Carrillo-Berdugo, J. J. Gallardo, Nazaret Ruiz-Marín, Violeta Guillén-Domínguez, Rodrigo Alcántara, J. Navas, J. A. Poce-Fatou
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Abstract

This work discusses the applicability of lightweight aggregate-encapsulated n-octadecane with 1.0 wt.% of Cu nanoparticles, for enhanced thermal comfort in buildings by providing thermal energy storage functionality to no-fines concrete. A straightforward two-step procedure (impregnation and occlusion) for the encapsulation of the nano-additivated phase change material in lightweight aggregates is presented. Encapsulation efficiencies of 30–40% are achieved. Phase change behavior is consistent across cycles. Cu nanoparticles provide nucleation points for phase change and increase the rate of progression of phase change fronts due to the enhancement in the effective thermal conductivity of n-octadecane. The effective thermal conductivity of the composites remains like that of regular lightweight aggregates and can still fulfil thermal insulation requirements. The thermal response of no-fines concrete blocks prepared with these new aggregates is also studied. Under artificial sunlight, with a standard 1000 W·m−2 irradiance and AM1.5G filter, concrete samples with the epoxy-coated aggregate-encapsulated n-octadecane-based dispersion of Cu nanoparticles (with a phase change material content below 8% of the total concrete mass) can effectively maintain a significant 5 °C difference between irradiated and non-irradiated sides of the block for ca. 30 min.
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通过在轻质骨料中封装纳米添加相变材料在混凝土中储存热能
本研究讨论了轻质骨料封装正十八烷与 1.0 wt.% 的纳米铜颗粒的适用性,通过为无细混凝土提供热能储存功能来提高建筑物的热舒适度。本文介绍了在轻质骨料中封装纳米添加相变材料的简单两步法(浸渍和闭塞)。封装效率达到 30-40%。相变行为在不同周期内保持一致。纳米铜粒子为相变提供了成核点,并提高了正十八烷的有效热导率,从而增加了相变前沿的进展速度。复合材料的有效导热率与普通轻质骨料相同,仍能满足隔热要求。我们还研究了使用这些新型骨料制备的无细混凝土砌块的热反应。在人工太阳光下,标准辐照度为 1000 W-m-2,滤光片为 AM1.5G,使用环氧树脂涂层骨料封装正十八烷基纳米铜粒子分散体的混凝土样品(相变材料含量低于混凝土总质量的 8%)可以在大约 30 分钟内有效地保持混凝土砌块受辐照面和未受辐照面之间 5 °C的显著温差。30 分钟。
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