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Preparation of a Sustainable Shape-Stabilized Phase Change Material for Thermal Energy Storage Based on Mg2+-Doped CaCO3/PEG Composites

机译:基于Mg2 +掺杂的Caco3 / PEG复合材料制备用于热能储存的可持续形状稳定相变材料

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摘要

The properties of polyethylene glycol-6000 (PEG)/MgCaCO3, a low-cost shape-selective phase change material (ss-PCM), make it highly suitable for solar thermal applications. Nanosized porous MgO-doped CaCO3 with Mg molar concentrations of 5%, 10%, and 15% were synthesized using a hydrothermal technique. The prepared MgO-CaCO3 matrices were then impregnated with PEG to obtain PEG/MgCaCO3 as an ss-PCM. Samples identified as PEG-5MgCaCO3 (P-5-MCC), PEG-10MgCaCO3 (P-10-MCC), and PEG-15MgCaCO3 (P-15-MCC) were prepared and studied. Interestingly, P-10-MCC has the smallest particle size together with a good porous structure compared to the other two materials. The results of thermogravimetric analyses and differential scanning calorimetry indicate that the small particle size and porous structure facilitate the impregnation of approximately 69% of the PEG into the 10-MCC matrix. The latent heat and energy storage efficiency of PEG in the P-10-MCC sample are 152.5 J/g and 96.48%, respectively, which are significantly higher than those of comparable materials. Furthermore, in addition to the improvement of the thermal conductivity of the P-10-MCC, its supercooling is also reduced to some extent. The combined mesoporous and macro-porous structure of P-10-MCC is critical to retaining a large amount of PEG within the matrix, resulting in a high latent heat in the operating temperature range of 35–57 °C. The P-10MCC sample also demonstrates a high energy storage capacity (98.59%), high thermal energy storage/release rates, and exceptional shape-stabilized PCM properties.
机译:聚乙二醇-6000(PEG)/ MgCaco3,低成本形状选择相变材料(SS-PCM)的性质使其非常适合太阳能热应用。使用水热技术合成纳米型多孔MgO掺杂的5%,10%和15%的摩尔浓度为5%,10%和15%的CaCO 3。然后用PEG浸渍制备的MgO-CaCO 3基质以获得作为SS-PCM的PEG / MGCACO 3。制备并研究鉴定为PEG-5MGCACO3(P-5-MCC),PEG-10MGCACO 3(P-10-MCC)和PEG-15MGCACO3(P-15-MCC)的样品。有趣的是,与其他两种材料相比,P-10-MCC与良好的多孔结构具有最小的粒度。热重分析和差分扫描量热法的结果表明,小粒径和多孔结构促进了大约69%的PEG进入10-MCC基质的浸渍。 P-10-MCC样品中PEG的潜热和能量储存效率分别为152.5J / g和96.48%,显着高于可比材料。此外,除了改善P-10-MCC的导热率之外,其过冷也在一定程度上降低。 P-10-MCC的合并的介孔和宏观多孔结构对于在基质内保持大量PEG至关重要,从而在35-57℃的工作温度范围内产生高潜热。 P-10MCC样品还演示了高储能容量(98.59%),高热能量存储/释放速率,以及卓越的形状稳定的PCM性能。

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