Feng Xurui, Zhang Yuanying, Yang Zhiliang, Zhao Zihao, Zhu Fen, Wei Xinyi, Chen Liangxian, Liu Jinlong, Feng Yanhui, Li Chengming, Feng Daili, Wei Junjun
Institute for Advanced Materials and Technology, University of Science and Technology Beijing, Beijing 100083, People's Republic of China.
School of Energy and Environmental Engineering, University of Science and Technology Beijing, Beijing 100083, People's Republic of China.
Nanotechnology. 2023 Dec 12;35(9). doi: 10.1088/1361-6528/ad0f55.
Polyethylene glycol (PEG) is widely used as a phase change material (PCM) in thermal energy storage systems due to its high latent heat and chemical stability. However, practical application has been hindered by its low thermal conductivity and leakage issues. Therefore, developing shape-stable high thermal conductivity PCM is of great importance. In this study, new shape-stable composite PCM with high thermal conductivity and leak-prevention capabilities were designed. The porous carbon skeleton of diamond foam (DF) and dual-3D carbon nanotube-diamond foam (CDF) were prepared using the microwave plasma chemical vapor deposition method. The composite materials (DF/PEG and CDF/PEG) were produced by vacuum impregnation with PEG and skeletons. The results showed that CDF/PEG had the highest thermal conductivity, measuring 2.30 W·m·K, which is 707% higher than that of pure PEG. The employing of 3D networks of CNTs, which can improve the phonon mean free path in DF/PEG (1.79 W·m·K) while reducing phonon dispersion.The phonon vibration of dual-3D CDF plays an important role in heat transfer. PEG was physically absorbed and well-distributed in CDF, alleviating leakage of liquid PEG. The weight loss of CDF/PEG was only 25% at 70 °C for 120 s. Using CDF is an attractive and efficient strategy to increase the heat transfer of PEG and improve heat storage efficiency, alleviate the problem of poor shape-stability.
聚乙二醇(PEG)因其高潜热和化学稳定性,在热能存储系统中被广泛用作相变材料(PCM)。然而,其低导热率和泄漏问题阻碍了其实际应用。因此,开发形状稳定的高导热率相变材料具有重要意义。在本研究中,设计了具有高导热率和防泄漏能力的新型形状稳定复合相变材料。采用微波等离子体化学气相沉积法制备了金刚石泡沫(DF)和双三维碳纳米管-金刚石泡沫(CDF)的多孔碳骨架。通过用PEG和骨架进行真空浸渍制备了复合材料(DF/PEG和CDF/PEG)。结果表明,CDF/PEG具有最高的导热率,为2.30W·m·K,比纯PEG高707%。采用三维碳纳米管网络可以提高DF/PEG(1.79W·m·K)中的声子平均自由程,同时减少声子散射。双三维CDF的声子振动在热传递中起重要作用。PEG被物理吸附并均匀分布在CDF中,减轻了液态PEG的泄漏。CDF/PEG在70℃下120s的重量损失仅为25%。使用CDF是一种有吸引力且有效的策略,可提高PEG的热传递并提高储热效率,缓解形状稳定性差的问题。