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Form stable binary chlorides/expanded graphite composite material with enhanced compressive strength for high temperature thermal storage

机译:形成稳定的二元氯化物/膨胀石墨复合材料,具有增强的抗压强度,用于高温热储存

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In this study, series of KCl-LiCl /expanded graphite (EG) composite phase change materials (CPCM) with dif-ferent EG contents for high temperature thermal energy utilization were prepared by melting impregnation method. The mixture of KCl-LiCl was served as the phase change material (PCM) for thermal energy storage, while EG was acted as not only the matrix to prevent the leakage of PCM but also the heat transfer promoter to improve the thermal conductivity of PCM. The microstructures, phase transition properties, thermal conductivity and thermal stability of different samples were evaluated, and the results showed that KCl-LiCl was wrapped in the network structure of EG without agglomeration. The experimental latent heat of CPCMs were close to the theoretical value and there was no remarkable variation in melting point. The highest thermal conductivity of CPCMs was 12.05 W/(m center dot K), which is 41.6 times higher than that of KCl-LiCl. Moreover, the CPCMs whose EG content higher than 20 wt% showed good thermal stability after 100 thermal shock cycles. Furthermore, when 10 wt% SiC particles were added into 80KCl-LiCl/20EG, the compressive strength of 80KCl-LiCl/20EG/10SiC was enhanced to 9 MPa, which is 1.8 times higher than that of 80KCl-LiCl/20EG.
机译:在该研究中,通过熔化浸渍方法制备了具有差异例如高温热能利用率的kcl-licl /膨胀石墨(例如)复合相变材料(Cpcm)。 KCl-LiCl的混合物用作热能储存的相变材料(PCM),而例如作为基质的作用以防止PCM泄漏,而且是传热启动子以提高PCM的导热率。评估了不同样品的微观结构,相变性,导热性和热稳定性,结果表明KCl-LiCl被包裹在例如无凝聚的网络结构中。 CPCMS的实验潜热接近理论值,熔点没有显着变化。 CPCMS的最高导热率为12.05W /(中心点K),比KCl-LiCL高41.6倍。此外,在100个热冲击循环之后,例如高于20wt%的含量高于20wt%的CPCMS显示出良好的热稳定性。此外,当将10wt%的SiC颗粒加入到80kCl-LiCl / 20中时,80kcl-liCl / 20eg / 10sic的压缩强度增强至9MPa,比80kcl-licl / 20g的1.8倍。

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