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Preparation, thermal characterization and examination of phase change materials (PCMs) enhanced by carbon-based nanoparticles for solar thermal energy storage

机译:碳基纳米颗粒增强的用于太阳能热能储存的相变材料(PCM)的制备,热表征和检查

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This paper presents the preparation and thermal characterization of phase change materials (PCMs) enhanced by carbon-based nanoparticles, including graphene nanoplatelets (GNPs), multi-walled carbon nanotubes (MWCNTs) and nano-graphite (NG). A systematic experimental framework, consisting of material selection and preparation, material property characterization and thermal performance examination, was proposed and used in this study to facilitate the development of nano-enhanced PCMs (NePCMs) for solar thermal energy storage applications. By applying this framework, the characteristics and potential performance of PCM composites can be comprehensively understood, and better assessed before practical applications. It was found that the thermal conductivity of the myristic acid (MA) can be significantly enhanced by adding the nanoparticles in particular GNPs as additives into the PCM. The thermal conductivity of the PCM composites can be improved by 176.26%, 47.30% and 44.01% respectively under the solid phase, by adding GNPs, MWCNTs and NG with a concentration of 3 wt%. However, the concentration of the nanoparticles needs to be carefully determined to maximise the benefit in thermal conductivity enhancement. Different from that under the solid phase, the thermal conductivity enhancement of the NePCMs developed under the liquid phase followed linear increasing trends with relatively low increasing rates, when increasing the concentration of the nanoparticles. Besides the thermal conductivity enhancement, the adding of nanoparticles also modified the phase change process with a smaller phase change temperature range and eliminated supercooling while maintaining the high latent heat capacity. A further thermal performance examination demonstrated that the prepared NePCMs showed high thermal and chemical stability, which can be used to substantially reduce the phase transition time, and therefore are good potential candidates for solar thermal energy storage applications.
机译:本文介绍了由碳基纳米颗粒增强的相变材料(PCM)的制备和热表征,包括石墨烯纳米片(GNP),多壁碳纳米管(MWCNT)和纳米石墨(NG)。提出了一个系统的实验框架,包括材料选择和制备,材料特性表征和热性能检查,并在本研究中用于促进开发用于太阳能热能存储应用的纳米增强PCM(NePCM)。通过应用此框架,可以全面了解PCM复合材料的特性和潜在性能,并在实际应用之前对其进行更好的评估。已经发现,通过将纳米颗粒特别是GNP作为添加剂添加到PCM中,可以明显提高肉豆蔻酸(MA)的热导率。通过添加浓度为3 wt%的GNP,MWCNT和NG,在固相下PCM复合材料的热导率可以分别提高176.26%,47.30%和44.01%。但是,需要仔细确定纳米颗粒的浓度,以最大程度地提高导热系数。与固相相比,当增加纳米颗粒的浓度时,在液相下形成的NePCM的导热系数呈线性增加趋势,且增长率相对较低。除了提高导热性外,添加纳米粒子还以较小的相变温度范围改进了相变过程,并消除了过冷现象,同时保持了较高的潜热容量。进一步的热性能检查表明,制得的NePCM具有较高的热稳定性和化学稳定性,可用于大幅减少相变时间,因此是太阳能热存储应用的良好潜在候选者。

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