材料科学
热导率
聚乙二醇
碳化
煅烧
PEG比率
多孔性
复合材料
热稳定性
相变材料
热能储存
微观结构
质量分数
碳纤维
复合数
化学工程
热的
化学
有机化学
热力学
物理
财务
工程类
经济
扫描电子显微镜
催化作用
作者
Yajing Zhao,Xin Min,Zhaohui Huang,Yangai Liu,Xiaowen Wu,Minghao Fang
标识
DOI:10.1016/j.enbuild.2017.10.078
摘要
Shape-stable and high-thermal conductivity composite phase change materials (c-PCMs) composed of polyethylene glycol (PEG) and biological porous carbon (BPC) are investigated. BPC based on potatoes and white radishes are obtained by the carbonization method. The thermal conductivity of the BPC increases with the rising of the carbonization temperature due to the higher graphitization degree. Especially, BPC calcined at 1300 °C for 2 h resulted in the optimum PEG supporting matrix candidate, showing an attractive honeycomb-like microstructure. Calcination above 1300 °C results in the destruction of the shape. BPC/PEG c-PCMs are synthesized via a vacuum impregnation approach. PEG equally distributed in the matrix material with a mass fraction of 85.36% approximately and it could keep its morphological stability after heating at 80 °C for 40 h. Moreover, the highest thermal conductivity is 4.5 W/m K, which is about 10 times higher than the pristine PEG. Furthermore, no chemical interaction is found between the PEG and BPC. The melting and solidifying temperature, and enthalpy not vary upon a 200 thermal cycles test. This confirms the excellent chemical and structure stability for c-PCMs, which are within the most promising materials in the area of building heat preservation by being clean, energy-saving and recycled materials.
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