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具有高储能容量和增强热导率的三维大孔还原氧化石墨烯气凝胶基复合相变材料

Three-Dimensional Macroporous rGO-Aerogel-Based Composite Phase-Change Materials with High Thermal Storage Capacity and Enhanced Thermal Conductivity.

作者信息

Tao Zhang, He Wei, Xu Xiaoliang, Fan Jianzhong, Zhang Zhifeng, Yang Ziyue, Liu Yanqiang, Ma Heng, Qian Miao, Yang Mu

机构信息

GRINM Metal Composites Technology Co., Ltd., Beijing 101407, China.

Wuhan NARI Limited Liability Company, State Grid Electric Power Research Institute, Wuhan 430074, China.

出版信息

Materials (Basel). 2023 Jul 7;16(13):4878. doi: 10.3390/ma16134878.

Abstract

Three-dimensional porous network encapsulation strategy is an effective means to obtain composite phase-change materials (PCMs) with high heat storage capacity and enhanced thermal conductivity. Herein, macroporous reduced graphene oxide (rGO) aerogels with adjustable pore size are prepared by the emulsion template method and hydrothermal reduction process. Further, the shape-stabilized rGO-aerogel-based composite PCMs are constructed after the combination of 3D porous rGO supports and paraffin wax (PW) through vacuum melting infiltration. By regulating the pore structure of the rGO aerogel network, the rGO-based composite PCMs achieve excellent energy storage properties with a phase-change enthalpy of 179.94 J/g for the loading amount of 95.61 wt% and an obvious enhancement in thermal conductivity of 0.412 W/m·K, which is 54.89% higher than pristine PW and enduring thermal cycling stability. The obtained macroporous rGO-aerogel-based composite PCMs with high thermal storage and heat transfer performance effectively broaden the application of PCMs in the field of thermal energy storage.

摘要

三维多孔网络封装策略是获得具有高储能容量和增强热导率的复合相变材料(PCM)的有效手段。在此,通过乳液模板法和水热还原工艺制备了孔径可调的大孔还原氧化石墨烯(rGO)气凝胶。此外,通过真空熔融浸渍将三维多孔rGO载体与石蜡(PW)结合后,构建了形状稳定的基于rGO气凝胶的复合PCM。通过调节rGO气凝胶网络的孔结构,基于rGO的复合PCM实现了优异的储能性能,对于95.61 wt%的负载量,相变焓为179.94 J/g,热导率明显提高至0.412 W/m·K,比原始PW高54.89%,并且具有持久的热循环稳定性。所制备的具有高蓄热和传热性能的基于大孔rGO气凝胶的复合PCM有效地拓宽了PCM在热能存储领域的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5b17/10343296/00ddfce2ff45/materials-16-04878-g001.jpg

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