Tahan Latibari Sara, Eversdijk Jacco, Cuypers Ruud, Drosou Vassiliki, Shahi Mina
Faculty of Engineering Technology, Department of Thermal and Fluid engineering (TFE), University of Twente, 7500 AE Enschede, The Netherlands.
TNO, 5656 AE Eindhoven, The Netherlands.
Polymers (Basel). 2019 Sep 16;11(9):1507. doi: 10.3390/polym11091507.
The performance of solar-thermal conversion systems can be improved by incorporation of encapsulated phase change materials. In this study, for the first time, Crodatherm 60 as a phase change material (PCM) was successfully encapsulated within polyurea as the shell supporting material. While preparing the slurry samples, graphite nanoplatelet (GNP) sheets were also incorporated to enhance the thermal and photothermal properties of the prepared materials. The morphology and chemical properties of these capsules were characterized by scanning electron microscopy (SEM) and Fourier transform infrared (FTIR) spectrum, respectively. The results show the spherical-like and core-shell structure of capsules with an average diameter size of 3.34 μm. No chemical interaction was observed between the core and the supporting materials. The thermal characteristics of the microencapsulated PCMs (MEPCMs), analyzed by differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA), indicate that the prepared samples with 0.1 weight percentage of GNP possess the latent heat of 95.5 J/g at the phase transition temperature of about 64 °C. Analyzing the rheological properties of the prepared slurry with 16 wt % of MEPCMs proves that the prepared material meet the requirements given by the heat transfer applications. The thermal storage capacity, good thermal stability, and improved photothermal performance of the prepared material make it a potential candidate for using in direct absorption solar thermal applications.
通过加入封装相变材料可以提高太阳能热转换系统的性能。在本研究中,首次成功地将作为相变材料(PCM)的科莱恩热蜡60封装在作为外壳支撑材料的聚脲中。在制备浆料样品时,还加入了石墨纳米片(GNP)片以增强所制备材料的热性能和光热性能。分别通过扫描电子显微镜(SEM)和傅里叶变换红外(FTIR)光谱对这些胶囊的形态和化学性质进行了表征。结果显示胶囊具有类球形和核壳结构,平均直径尺寸为3.34μm。在芯材和支撑材料之间未观察到化学相互作用。通过差示扫描量热法(DSC)和热重分析(TGA)分析微胶囊相变材料(MEPCM)的热特性,结果表明含有0.1重量百分比GNP的制备样品在约64℃的相变温度下具有95.5J/g的潜热。分析含有16wt%MEPCM的制备浆料的流变性能证明所制备的材料符合传热应用的要求。所制备材料的蓄热能力、良好的热稳定性和改善的光热性能使其成为直接吸收式太阳能热应用的潜在候选材料。