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Polyethylene Glycol-Carbon Nanotubes/Expanded Vermiculite Form-Stable Composite Phase Change Materials: Simultaneously Enhanced Latent Heat and Heat Transfer

机译:聚乙二醇碳纳米管/膨胀Ver石形状稳定的复合相变材料:同时增强的潜热和传热

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摘要

Polyethylene glycol (PEG)-carbon nanotubes (CNTs) with expanded vermiculite (EVM) form-stable composite phase change materials (PCE-CPCMs) were constructed via the efficient synergistic effect between EVM and CNTs. The resultant material demonstrated simultaneously enhanced latent heat and heat transfer. The unique EVM pore structure and CNTs surfaces contributed to the form stability of PCE-CPCMs. The adsorption capacity was 77.75–81.54 wt %. The latent heat of the PCE-CPCMs increased with increasing CNTs content due to the decreasing inhibition effect of EVM and the increasing adsorption capacity of PEG, which was 83.9 J/g during melting and 104.2 J/g during solidification for PCE7.09. The pore confinement and surface EVM interactions inhibited the heat storage capacity of the PCE-CPCMs. Moreover, the inhibition effect on the heat storage capacity of PCE-CPCMs during the melting process was stronger than during solidification due to the crystallization-promoting effect. The heat transfer of PCE-CPCMs was significantly enhanced by the CNTs filler (0.5148 W/(m·K) for PCE7.09) due to the decrease in interfacial thermal resistance and the formation of rapid thermally conductive pathways. Fourier transform infrared spectroscopy, thermogravimetric analysis, and thermal cycles test results confirmed that the PCE-CPCMs exhibited excellent chemical compatibility, thermal stability, and reliability.
机译:通过EVM与CNT之间的高效协同作用,构建了具有膨胀ver石(EVM)形状稳定的复合相变材料(PCE-CPCM)的聚乙二醇(PEG)-碳纳米管(CNT)。所得材料显示出同时增强的潜热和热传递。独特的EVM孔结构和CNT表面有助于PCE-CPCM的形状稳定性。吸附容量为77.75-81.54 wt%。 PCE-CPCM的潜热随CNT含量的增加而增加,这是由于EVM的抑制作用降低和PEG的吸附能力增强所致,熔融时PCE7.09的潜热为83.9 J / g,固化过程中为104.2 J / g。孔隙限制和表面EVM相互作用抑制了PCE-CPCM的储热能力。而且,由于结晶促进作用,在熔融过程中对PCE-CPCM的储热能力的抑制作用比在固化过程中强。由于界面热阻的降低和快速导热路径的形成,CNTs填料(PCE7.09的0.5148 W /(m·K))显着增强了PCE-CPCM的热传递。傅里叶变换红外光谱,热重分析和热循环测试结果证实,PCE-CPCM具有优异的化学相容性,热稳定性和可靠性。

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