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Three-dimensional graphitic hierarchical porous carbon/stearic acid composite as shape-stabilized phase change material for thermal energy storage

机译:三维石墨等级多孔碳/硬脂酸复合材料作为热能储存的形状稳定的相变材料

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摘要

Stearic acid (SA) is a promising phase change material (PCM) for thermal energy storage applications. In order to improve the shape stability and thermal conductivity of SA, a novel shape-stabilized PCM was prepared through incorporation of SA into a three-dimensional fluffy ultrathin-wall graphitic hierarchical porous carbon (GHPC) having large specific surface area and high pore volume in this study. The microstructure, chemical structure, thermal stability, thermal storage properties and thermal conductivity of GHPC and those of as-prepared SA/GHPC composites were determined using various characterization techniques. Furthermore, the effects of the content of GHPC on the thermal properties of SA/GHPC composite PCMs were investigated. The results show that GHPC efficiently enhances both the shape-stability of composite PCMs and their thermal conductivity. The maximum loading of SA in the composite is 85 wt% without any liquid leakage. The prepared composite displays a lower melting temperature and a higher freezing temperature compared to those of pure SA. Meanwhile, the composite melts at 67.5 degrees C with a melting enthalpy of 171.5 J/g and solidifies at 68.4 degrees C with a freezing enthalpy of 170.0 J/g, which correspond to the thermal storage capabilities of 98.2% and 98.5%, respectively. In addition, its thermal conductivity was determined to be 0.879 W/m K, which is 3.502 times higher than the pure SA. More importantly, the composite possesses excellent thermal reliability after over at least 600 thermal cycles. Therefore, the as-prepared composite is a desirable candidate for low-temperature thermal energy storage applications.
机译:硬脂酸(SA)是热能储存应用的有前途的相变材料(PCM)。为了提高SA的形状稳定性和导热率,通过将SA掺​​入具有大特异性表面积和高孔体积的三维蓬松的超薄壁石墨层间多孔碳(GHPC)中制备新的形状稳定的PCM在这个研究中。使用各种表征技术测定GHPC的微观结构,化学结构,热稳定性,热储存性能和导热率和制备的SA / GHPC复合材料。此外,研究了GHPC含量对SA / GHPC复合PCM的热性能的影响。结果表明,GHPC有效地提高了复合PCM的形状稳定性及其导热性。复合材料中SA的最大负载为85wt%而无需任何液体泄漏。与纯SA相比,制备的复合材料显示较低的熔化温度和更高的冷冻温度。同时,复合材料在67.5℃下熔化为171.5J / g的熔化焓,并在68.4℃下凝固,冷冻焓为170.0J / g,分别对应于98.2%和98.5%的热储存能力。此外,其导热率为0.879W / m k,比纯SA高3.502倍。更重要的是,复合材料在至少600个热循环之后具有优异的热可靠性。因此,制备的复合材料是低温热能储存应用的理想候选者。

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