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改性支撑材料制备高热储能的形状稳定相变材料。

Modified Supporting Materials to Fabricate Form Stable Phase Change Material with High Thermal Energy Storage.

机构信息

Research Institute of Advanced Materials (RIAM), Department of Materials Science and Engineering, Seoul National University, Seoul 08826, Republic of Korea.

Department of Fiber Convergence Materials Engineering, Dankook University, Yongin-si 16890, Republic of Korea.

出版信息

Molecules. 2023 Jan 30;28(3):1309. doi: 10.3390/molecules28031309.

Abstract

Thermal energy storage (TES) is vital to the absorption and release of plenty of external heat for various applications. For such storage, phase change material (PCM) has been considered as a sustainable energy material that can be integrated into a power generator. However, pure PCM has a leakage problem during the phase transition process, and we should fabricate a form stable PCM composite using some supporting materials. To prevent the leakage problem during the phase transition process, two different methods, microencapsulation and 3D porous infiltration, were used to fabricate PCM composites in this work. It was found that both microsphere and 3D porous aerogel supported PCM composites maintained their initial solid state without any leakage during the melting process. Compared with the microencapsulated PCM composite, the 3D porous aerogel supported PCM exhibited a relatively high weight fraction of working material due to its high porosity. In addition, the cross-linked graphene aerogel (GCA) could reduce volume shrinkage effectively during the infiltration process, and the GCA supported PCM composite kept a high latent heat (∆H) and form stability.

摘要

热能存储(TES)对于各种应用中大量外部热量的吸收和释放至关重要。对于这种存储,相变材料(PCM)已被认为是一种可持续的能源材料,可以集成到发电机中。然而,纯 PCM 在相变过程中存在泄漏问题,我们应该使用一些支撑材料来制造形式稳定的 PCM 复合材料。为了防止相变过程中的泄漏问题,本工作采用了微胶囊化和 3D 多孔渗透两种不同的方法来制备 PCM 复合材料。结果发现,在熔化过程中,微球和 3D 多孔气凝胶支撑的 PCM 复合材料都保持了初始固态,没有任何泄漏。与微胶囊化 PCM 复合材料相比,由于其高孔隙率,3D 多孔气凝胶支撑的 PCM 复合材料表现出相对较高的工作材料重量分数。此外,交联石墨烯气凝胶(GCA)在渗透过程中可以有效地减少体积收缩,GCA 支撑的 PCM 复合材料保持了较高的潜热(∆H)和形态稳定性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/baa5/9919233/c3cb9c0370f8/molecules-28-01309-g001.jpg

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