Nanoencapsulated n-tetradecane phase change materials with melamine–urea–formaldehyde–TiO2 hybrid shell for cold energy storage

材料科学 纳米囊 热稳定性 三聚氰胺树脂 三聚氰胺 相变材料 化学工程 复合材料 纳米技术 热的 纳米颗粒 物理 工程类 气象学 涂层
作者
Jinghang Wang,Xinyu Zhai,Zunrui Zhong,Xinwen Zhang,Hao Peng
出处
期刊:Colloids and Surfaces A: Physicochemical and Engineering Aspects [Elsevier]
卷期号:636: 128162-128162 被引量:18
标识
DOI:10.1016/j.colsurfa.2021.128162
摘要

A series of nanoencapsulated phase change materials with n-tetradecane as the core material and melamine–urea–formaldehyde (MUF)–TiO2 composite as the shell material was developed using a two-step method. Sol-gel and blending modification methods were respectively utilized after the in situ polymerization. The physical, chemical, and thermal properties of the nanoencapsulated phase change material (NEPCM) samples were characterized. Furthermore, a comprehensive performance evaluation system was established based on the efficacy coefficient method. The results indicated that the average diameter of the nanocapsules was significantly increased by the sol-gel modification and was slightly influenced by the blending method. All NEPCMs exhibited high chemical and thermal stability. The NEPCMs modified by the sol-gel method (C14@MUF–TiO2-S1) exhibited the best performance in terms of the encapsulation ratio, melting enthalpy, and onset decomposition temperature, which were 68.6%, 156.2 J·g-1, and 155.36 °C, respectively. C14@MUF–TiO2-S2 exhibited the lowest mass loss of 44.2% at 100 h. For the blending method, C14@MUF–TiO2-B1 had the highest yield of 53.87%. The thermal conductivity of C14@MUF–TiO2-B3 increased up to 88.15% compared with the unmodified NEPCMs. Therefore, modification by the sol-gel method with 2.2 g TiO2 sol had the highest total efficacy coefficient of 0.843 among the samples.
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