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首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Thermal behavior and shape-stabilization of fatty acid eutectics/electrospun carbon nano-felts composite phase change materials enhanced by reduced graphene oxide
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Thermal behavior and shape-stabilization of fatty acid eutectics/electrospun carbon nano-felts composite phase change materials enhanced by reduced graphene oxide

机译:脂肪酸光学液/电纺碳纳米纤维复合相变材料的热行为和形状稳定化通过还原氧化物增强

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Improvement in thermal conductivity and shape-stabilization of lauric-myristic-stearic acid (LA-MA-SA) ternary eutectic mixture phase change materials by incorporating with reduced graphene oxide/carbon nano-felts (RGO/CNFs) were investigated. The RGO/CNFs Supporting Materials were facilely made from amidoxime surface-functionalized polyacrylonitrile (ASFPAN) nano-felts immersed in graphene oxide aqueous through stabilization in air followed by carbonization in argon. Various analytical techniques were employed to reveal the morphological structure and thermal properties of fabricated form-stable phase change materials (FSPCMs). FTIR, SEM, TEM, XRD, EDS and BET characterizations indicated that the RGO/CNFs matrix possessed excellent morphological structure and large specific surface area, so that LA-MA-SA could well dispersed in its 3D porous architecture and well-retain their overall shapes. DSC results showed that the maximum loading capacity of LA-MA-SA reached 73.5%, and the highest melting/crystallization enthalpies of fabricated FSPCMs were 128.1/127.9 kJ/kg, respectively. Hot disk thermal constant analyzer suggested that thermal conductivity of the FSPCMs was 1.88 W/m K, approximately 583% higher than that of neat LA-MA-SA. Temperature-time curves for melting/freezing process indicated that compared with melting/freezing times of LA-MA-SA, the melting/freezing time of fabricated FSPCMs decreased about 55.1/62.7%. The RGO/CNFs might afford a lot of conductive pathways for heat transfer and/or conversion. The FSPCMs exhibited superior shape-stabilization owing to capillary force and surface tension induced by interconnected netlike RGO/CNFs composites. Hence, they can be considered as more promising thermal energy storage material in advanced energy-related devices and building energy conservation applications.
机译:通过掺入还原的石墨烯/碳纳米毡(RGO / CNFS),研究了Lauric-Myristic-sereric酸(La-MA-SA)三元共晶混合物相变材料的导热性和形状稳定的改善。 rgo / CNFS支撑材料均由偕胺肟表面官能化的聚丙烯腈(ASFPAN)纳米毡制成,浸入石墨烯氧化物水溶液中通过稳定化,然后在氩气中碳化。使用各种分析技术来揭示制造的形态稳定相变材料(FSPCM)的形态结构和热性能。 FTIR,SEM,TEM,XRD,EDS和BET表征表明,RGO / CNFS矩阵具有优异的形态学结构和大的特定表面积,因此La-Ma-SA可以很好地分散在其3D多孔建筑中,并保持其整体良好形状。 DSC结果表明,La-MA-SA的最大负载能力达到73.5%,制造的FSPCMS的最高熔化/结晶焓分别为128.1 / 127.9 kJ / kg。热盘热恒定分析仪表明FSPCM的导热率为1.88W / m K,比整齐La-MA-SA高约583%。用于熔化/冷冻过程的温度时间曲线表明,与La-MA-SA的熔融/冻结时间相比,制造的FSPCM的熔融/冷冻时间降低了约55.1 / 62.7%。 RGO / CNFS可能提供大量的导电途径,用于传热和/或转换。由于通过互连的网状RGO / CNFS复合材料诱导的毛细力和表面张力,FSPCMS表现出优异的形状稳定。因此,它们可以被认为是在先进的能量相关设备和建筑节能应用中更具前途的热能储存材料。

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