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Numerical and experimental investigations of melting process of composite material (nanoPCM/carbon foam) used for thermal energy storage

机译:用于热能储存的复合材料(纳米氟氯烃/碳泡沫)熔化过程的数值和实验研究

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摘要

Paraffin wax is considered as stable and environmentally convivial phase change materials (PCM) for thermal energy storage systems (TESS). However they suffer to low thermal conductivity which reduced the rate of heat storage and energy conversion, as well as the leakage of materials during the melting process. In this paper, nanocomposites consisting of a paraffin / graphite mixture embedded in carbon foam by vacuum impregnation were prepared in the aim to develop a new formulation of phase change material (PCM) with excellent shape stabilization, thermal conductivity improved and exceptional thermal reliability. Different tests such as Fourier transform infrared spectroscopy, differential scanning calorimetry, and thermal conductivity analyzer are proposed to determine thermal properties of the composite PCM. After the validation of numerical model with experimental results, the numerical analysis is extended to investigate the melting process of the composite PCM under constant temperature. A regular three-dimensional (3D) foam structure was designed. The effects of carbon foam porosity and nanoparticles' volume fraction on the thermal behavior of composite PCMs were investigated. The results show that the addition of both graphite and carbon foam to paraffin wax enhance the thermal properties and prevent the leakage of the melted paraffin which preserve its stable thermal performance. This is due to the conductive network path created by the 3D structure of the carbon foam and the percolation of graphite, which might facilitate an increased phase change speed of composite PCM.
机译:石蜡被认为是热能储存系统(TESS)的稳定和环保的相变材料(PCM)。然而,它们遭受低导热率,这减少了储热量和能量转换的速率,以及在熔化过程中的材料泄漏。在本文中,制备由真空浸渍中嵌入碳泡沫中的石蜡/石墨混合物组成的纳米复合材料,其目的是开发具有优异形状稳定,导热率和卓越的热可靠性的相变材料(PCM)的新配方。提出了诸如傅里叶变换红外光谱,差示扫描量热法和导热性分析仪的不同测试,以确定复合PCM的热性能。在实验结果验证数值模型之后,延长了数值分析以研究恒温下复合PCM的熔化过程。设计了常规的三维(3D)泡沫结构。研究了碳泡沫孔隙率和纳米颗粒体积分数对复合PCM的热行为的影响。结果表明,将石墨和碳泡沫加入石蜡蜡增强了热性能,并防止熔融石蜡的泄漏,以保持其稳定的热性能。这是由于由碳泡沫的3D结构产生的导电网络路径和石墨的渗透,这可能有助于增加复合PCM的相变速。

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