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用于热能存储的具有增强热导率的棕榈酸丙酯基相变复合材料的制备及热性能

Preparation and Thermal Properties of Propyl Palmitate-Based Phase Change Composites with Enhanced Thermal Conductivity for Thermal Energy Storage.

作者信息

Yin Linzhi, Zhao Min, Yang Rui

机构信息

Department of Chemical Engineering, Tsinghua University, Beijing 100084, China.

出版信息

Polymers (Basel). 2023 Jul 27;15(15):3192. doi: 10.3390/polym15153192.

Abstract

Phase change materials (PCMs), which can absorb and release large amounts of latent heat during phase change, have been extensively studied for heat storage and thermal management. However, technical bottlenecks regarding low thermal conductivity and leakage have hindered practical applications of PCMs. In this paper, a simple, economical, and scalable absorption polymerization technique is proposed to prepare the polymethyl methacrylate/propyl palmitate/expanded graphite (MPCM/EG) phase change composites by constructing the microencapsulated phase change materials (polymethyl methacrylate/propyl palmitate, MPCM) with core-shell structures in the three-dimensional (3D) EG networks, taking propyl palmitate as the PCM core, polymethyl methacrylate (PMMA) as the shell, and long-chain "worm-like" EG as the thermally conductive networks. This technique proved to be a more appropriate combinatorial pathway than direct absorption of MPCM via EG. The MPCM/EG composites with high thermal conductivity, high enthalpy, excellent thermal stability, low leakage, and good thermal cycle reliability were prepared. The results showed that the MPCM-80/EG-10 composite demonstrated a high thermal conductivity of 3.38 W/(m·K), a phase change enthalpy up to 152.0 J/g, an encapsulation ratio of 90.3%, outstanding thermal stability performance, and long-term thermal cycle reliability when the EG loading is 10% and propyl palmitate is 80%. This research offers an easy and efficient approach for designing and fabricating phase change composites with promising applications in diverse energy-saving fields, such as renewable energy collection, building energy conservation, and microelectronic devices thermal protection.

摘要

相变材料(PCM)在相变过程中能够吸收和释放大量潜热,已被广泛研究用于蓄热和热管理。然而,低导热率和泄漏等技术瓶颈阻碍了PCM的实际应用。本文提出了一种简单、经济且可扩展的吸收聚合技术,通过在三维(3D)膨胀石墨(EG)网络中构建具有核壳结构的微胶囊相变材料(聚甲基丙烯酸甲酯/棕榈酸丙酯,MPCM)来制备聚甲基丙烯酸甲酯/棕榈酸丙酯/膨胀石墨(MPCM/EG)相变复合材料,以棕榈酸丙酯为PCM核心,聚甲基丙烯酸甲酯(PMMA)为壳,长链“蠕虫状”EG为导热网络。事实证明,该技术是一种比EG直接吸收MPCM更合适的组合途径。制备出了具有高导热率、高焓值、优异热稳定性、低泄漏和良好热循环可靠性的MPCM/EG复合材料。结果表明,当EG负载量为10%且棕榈酸丙酯为80%时,MPCM-80/EG-10复合材料表现出3.38 W/(m·K)的高导热率、高达152.0 J/g的相变焓、90.3%的封装率、出色的热稳定性性能以及长期热循环可靠性。本研究为设计和制造在可再生能源收集、建筑节能和微电子器件热保护等各种节能领域具有广阔应用前景的相变复合材料提供了一种简便高效的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b7e9/10421114/ea0a1a8d953a/polymers-15-03192-sch001.jpg

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