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首页> 外文期刊>Energy >Thermal performance enhancement of palmitic-stearic acid by adding graphene nanoplatelets and expanded graphite for thermal energy storage: A comparative study
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Thermal performance enhancement of palmitic-stearic acid by adding graphene nanoplatelets and expanded graphite for thermal energy storage: A comparative study

机译:通过添加石墨烯纳米片和膨胀石墨来增强热能储存,增强棕榈硬脂酸的热性能:一项比较研究

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The effects of adding GnPs (graphene nanoplatelets) (nanoscale) and EG (expanded graphite) (micro scale) were investigated to improve the thermal performance of PA-SA (palmitic-stearic acid) eutectic mixture as a PCM (phase change material). Carbon materials were dispersed into PA-SA with loadings of 1 wt%, 2wt%, 4wt%, and 8wt%. The thermal properties measurement results show that the phase change latent heats of composite PCMs decreased with increasing loadings. The thermal conductivities of the composite PCMs were measured by the transient plane heat source method. Both GnPs and EG can effectively improve the thermal conductivity of PA-SA, but EG is more effective due to its worm-like structure. For the highest loading (8wt%), the thermal conductivity of the composite PCMs is 2.7 times higher with GnPs and 15.8 times higher with EG than that of PA-SA at 25 degrees C. The thermal energy storage and release rates of the composite PCMs also increased due to the high thermal conductivity of carbon materials. The density of composite PCMs were found to increase with the addition of GnPs but to decrease with EG. All composite PCMs show good thermal reliability. This work shows that EG has the greater potential to enhance the thermal energy storage performance of PCMs. (C) 2015 Elsevier Ltd. All rights reserved.
机译:研究了添加GnPs(石墨烯纳米片)(纳米级)和EG(膨胀石墨)(微级)的效果,以改善PA-SA(棕榈-硬脂酸)共晶混合物作为PCM(相变材料)的热性能。将碳材料以1重量%,2重量%,4重量%和8重量%的负载分散到PA-SA中。热性能测量结果表明,复合PCM的相变潜热随着载荷的增加而降低。复合PCM的热导率通过瞬态平面热源法测量。 GnP和EG均可有效提高PA-SA的导热性,但EG由于其蠕虫状结构而更为有效。对于最高负载(8wt%),复合PCM在25摄氏度时的热导率是PAn-SA的2.7倍,而GnPs是EG的15.8倍。复合PCM的热能存储和释放速率也由于碳材料的高导热性而增加。发现复合PCM的密度随GnP的添加而增加,但随EG而降低。所有复合PCM均显示出良好的热可靠性。这项工作表明,EG具有增强PCM热能存储性能的更大潜力。 (C)2015 Elsevier Ltd.保留所有权利。

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