首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Preparation and characterization of microencapsulated n-octadecane as phase change material with different n-butyl methacrylate-based copolymer shells
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Preparation and characterization of microencapsulated n-octadecane as phase change material with different n-butyl methacrylate-based copolymer shells

机译:具有不同甲基丙烯酸正丁酯基共聚物壳的相变材料微囊化正十八烷的制备与表征

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摘要

Microcapsules containing n-octadecane with different n-butyl methacrylate (BMA)-based copolymer shells were fabricated by a suspension-like polymerization method. n-butyl acrylate (BA), methacrylic acid (MAA) and acrylic acid (AA) were employed as monomers to copolymerize with BMA. The surface morphologies of the microencapsulated phase change materials (MicroPCMs) were studied by scanning electron microscopy (SEM). The thermal properties, thermal reliabilities and thermal stabilities of the MicroPCMs were investigated by differential scanning calorimetry (DSC) and thermal gravimetric analysis (TGA). The temperature-regulated properties of the MicroPCMs were determined by an infrared thermography. The incorporation of MAA or AA to the acrylic composition of the polymer shells led to an increase in both the heat storage capacities and thermal stabilities of the MicroPCMs. The MicroPCMs with P(BMA-co-MAA) exhibit a greater heat capacity and thermal stability compared with the MicroPCMs with P(BMA-co-AA). The MicroPCMs with P(BMA-co-MAA) have the highest latent heats of melting (144.3 J/g) and crystallization (152.9 J/g) as well as the highest thermal resistant temperature (249 ℃). The phase change temperatures and enthalpies of the MicroPCMs varied little after 1000 thermal cycles. Thermal images showed that the gypsum board containing the MicroPCMs with BMA-based copolymers as shells, especially with P(BMA-co-MAA) and P(BMA-co-AA) as shells, possessed temperature-regulated properties. As a result, the MicroPCMs with BMA-based copolymers as shells have good thermal energy storage and thermal regulation potentials, such as solar energy-saving building materials.
机译:通过悬浮样聚合法制备了含有正十八烷与不同甲基丙烯酸正丁酯(BMA)基共聚物壳的微胶囊。丙烯酸正丁酯(BA),甲基丙烯酸(MAA)和丙烯酸(AA)作为单体与BMA共聚。通过扫描电子显微镜(SEM)研究了微囊相变材料(MicroPCMs)的表面形态。通过差示扫描量热法(DSC)和热重分析(TGA)研究了MicroPCM的热性能,热可靠性和热稳定性。 MicroPCM的温度调节特性是通过红外热成像法确定的。 MAA或AA掺入聚合物外壳的丙烯酸酯组合物中导致MicroPCM的储热容量和热稳定性均提高。与带有P(BMA-co-AA)的MicroPCM相比,带有P(BMA-co-MAA)的MicroPCM具有更高的热容和热稳定性。具有P(BMA-co-MAA)的MicroPCM具有最高的熔化潜热(144.3 J / g)和结晶潜热(152.9 J / g),以及最高的耐热温度(249℃)。经过1000个热循环后,MicroPCM的相变温度和焓几乎没有变化。热图像显示,含有以BMA基共聚物为外壳的MicroPCMs的石膏板,特别是以P(BMA-co-MAA)和P(BMA-co-AA)为外壳的石膏板,具有温度调节性能。结果,以BMA基共聚物为外壳的MicroPCM具有良好的热能存储和热调节潜力,例如节电的太阳能建筑材料。

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