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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Thermal conductivity and latent heat thermal energy storage characteristics of paraffin/expanded graphite composite as phase change material
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Thermal conductivity and latent heat thermal energy storage characteristics of paraffin/expanded graphite composite as phase change material

机译:作为相变材料的石蜡/膨胀石墨复合材料的导热系数和潜热储热特性

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This study aimed determination of proper amount of paraffin (n-docosane) absorbed into expanded graphite (EG) to obtain form-stable composite as phase change material (PCM), examination of the influence of EG addition on the thermal conductivity using transient hot-wire method and investigation of latent heat thermal energy storage (LHTES) characteristics of paraffin such as melting time, melting temperature and latent heat capacity using differential scanning calorimetry (DSC) technique. The paraffin/EG composites with the mass fraction of 2%, 4%, 7%, and 10% EG were prepared by absorbing liquid paraffin into the EG. The composite PCM with mass fraction of 10% EG was considered as form-stable allowing no leakage of melted paraffin during the solid-liquid phase change due to capillary and surface tension forces of EG. Thermal conductivity of the pure paraffin and the composite PCMs including 2, 4, 7 and 10 wt% EG were measured as 0.22, 0.40, 0.52, 0.68 and 0.82 W/m K, respectively. Melting time test showed that the increasing thermal conductivity of paraffin noticeably decreased its melting time. Furthermore, DSC analysis indicated that changes in the melting temperatures of the composite PCMs were not considerable, and their latent heat capacities were approximately equivalent to the values calculated based on the mass ratios of the paraffin in the composites It was concluded that the composite PCM with the mass fraction of 10% EG was the most promising one for LHTES applications due to its form-stable property, direct usability without a need of extra storage container, high thermal conductivity, good melting temperature and satisfying latent heat storage capacity.
机译:这项研究的目的是确定吸收到膨胀石墨(EG)中的石蜡(正二十二烷)的适当量,以获得形状稳定的复合材料作为相变材料(PCM),并使用瞬态热法检查EG添加对热导率的影响。线法和使用差示扫描量热法(DSC)技术研究石蜡的潜热储能(LHTES)特性,例如熔化时间,熔化温度和潜热容量。通过将液体石蜡吸收到EG中来制备质量分数为2%,4%,7%和10%EG的石蜡/ EG复合物。质量分数为10%EG的复合PCM被认为是形状稳定的,由于EG的毛细作用和表面张力,在固液相变化过程中不会熔化石蜡泄漏。测得纯石蜡和包含2、4、7和10 wt%EG的复合PCM的热导率分别为0.22、0.40、0.52、0.68和0.82 W / mK。熔化时间测试表明,石蜡导热系数的增加明显缩短了熔化时间。此外,DSC分析表明,复合PCM的熔融温度变化不大,其潜热容量约等于基于复合物中石蜡质量比计算的值。 10%EG的质量分数是LHTES应用最有前途的一种,因为它的形状稳定,无需额外存储容器即可直接使用,高导热率,良好的熔化温度和令人满意的潜热存储能力。

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