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Preparation and Thermal Properties of Microencapsulated Polyurethane and Double-Component Polyethylene glycol) as Phase Change Material for Thermal Energy Storage by Interfacial Polymerization

机译:微囊化聚氨酯和双组分聚乙二醇作为相变材料通过界面聚合储热的制备及热性能

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摘要

Phase change materials (PCMs) with high thermal storage densities and nearly isothermal process can use latent heat to store energy. However, their suboptimal leaching resistance and narrow temperature range hindered their development. In this work, an ingenious design of microencapsulated PCMs with core-shell structure (M-PCMs) was built by interfacial polymerization. Formaldehyde-free polyurethane was selected as the shell. Compounding poly(ethylene glycol) formed a double-component energy storage mode and acted as core. The morphology, leaching resistance, chemical structure, and thermal properties of M-PCMs were investigated. Results showed the M-PCMs were constructed with an even size distribution by the synergism of core/shell mass ratio optimization and emulsifier emulsification. The -N=C=O on isophorone diisocyanate reacting to diethylene triamine with -NH2 group formed a polyurethane shell through urea linkage and polymerized compounding PEG by -OH. The M-PCMs obtained high latent heats of 97.19 and 98.58 J.g(-1) which were regulated by two peak temperatures at 28.02 and 36.24 degrees C as well as 23.12 and 32.88 degrees C during the energy storage/release stage, respectively. The undercooling was reduced by the energy compensation of temperature levels. This research offered a novel way for ecoenvironment M-PCMs fabrication, and the obtained M-PCMs are promising for energy storage temperature extension and indoor comfort improvement.
机译:具有高热存储密度和几乎等温过程的相变材料(PCM)可以使用潜热来存储能量。然而,它们的次优浸出性和狭窄的温度范围阻碍了它们的发展。在这项工作中,通过界面聚合构建了具有核-壳结构的微囊PCM(M-PCM)的巧妙设计。选择不含甲醛的聚氨酯作为壳。复合聚乙二醇形成双组分储能模式,并作为核。研究了M-PCM的形貌,耐溶出性,化学结构和热性能。结果表明,通过核/壳质量比优化和乳化剂乳化的协同作用,M-PCM的尺寸分布均匀。异佛尔酮二异氰酸酯上的-N = C = O与具有-NH2基团的二亚乙基三胺反应,通过脲键形成聚氨酯壳,并通过-OH聚合PEG。 M-PCM获得了97.19和98.58 J.g(-1)的高潜热,在能量存储/释放阶段,这两个峰值温度分别由28.02和36.24摄氏度以及23.12和32.88摄氏度的两个峰值温度调节。通过温度水平的能量补偿减少了过冷。这项研究为生态环境的M-PCMs的制造提供了一种新颖的方法,并且所获得的M-PCMs有望用于扩展储能温度和改善室内舒适度。

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  • 来源
    《Energy & fuels》 |2020年第1期|1024-1032|共9页
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  • 作者单位

    Beijing Forestry Univ MOE Key Lab Wooden Mat Sci & Applicat Beijing 100083 Peoples R China|Beijing Forestry Univ Beijing Key Lab Wood Sci & Engn Beijing 100083 Peoples R China;

    Beijing Forestry Univ MOE Key Lab Wooden Mat Sci & Applicat Beijing 100083 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 05:21:35

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