首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Systematic investigation on shape stability of high-efficiency SEBS/paraffin form-stable phase change materials
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Systematic investigation on shape stability of high-efficiency SEBS/paraffin form-stable phase change materials

机译:高效SEBS /石蜡形状稳定相变材料形状稳定性的系统研究

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摘要

In this work, form-stable phase change materials (FSPCMs) comprising paraffin as latent heat storage material and styrene-b-(ethylene-co-butylene)-b- styrene triblock copolymer (SEBS) as supporting material were prepared, and their shape stability was studied systematically by rheological analysis for a deep understanding of shape stability mechanism. The mass percentage of paraffin can reach 90 wt% without any obvious leakage of paraffin above its melting point, suggesting excellent energy storage capacity. The results of rheological measurement reveal that the shape stability of these composites derives from the formation of SEBS-paraffin reversible physical gel, which can prevent the free flowage of melted paraffin, while the failure to keep their apparent shapes stable at a further higher temperature may be ascribed to hard gel-soft gel and gel-fluid transitions. In addition, thermal properties and thermal stability of the composites were also investigated. This study proposed a universal method to detect the variation of materials with temperature and deeply understand the physical mechanism of shape stability, which not only accelerates the pace for practical application of existing FSPCMs, but also provides foundational insight for the design of new FSPCMs. Considering the proposed analysis method is applicable for most FSPCMs, this work may build up bridges for both comprehensive academic research and industrial application of FSPCMs.
机译:在这项工作中,制备了包括石蜡作为潜热材料和苯乙烯-b-(乙烯-共-丁烯)-b-苯乙烯三嵌段共聚物(SEBS)作为支撑材料的形状稳定的相变材料(FSPCM),其形状通过流变分析系统地研究了稳定性,以深入了解形状稳定机制。石蜡的质量百分数可达到90wt%,而在其熔点以上没有任何明显的石蜡渗漏,表明优异的能量存储能力。流变测量结果表明,这些复合材料的形状稳定性源自SEBS-石蜡可逆物理凝胶的形成,可以防止熔融石蜡的自由流动,而无法在更高的温度下保持其表观形状稳定。归因于硬凝胶-软凝胶和凝胶-流体过渡。此外,还研究了复合材料的热性能和热稳定性。这项研究提出了一种通用的方法来检测材料随温度的变化并深入了解形状稳定性的物理机制,这不仅加快了现有FSPCM的实际应用步伐,而且为新型FSPCM的设计提供了基础见解。考虑到所提出的分析方法适用于大多数FSPCM,该工作可能为FSPCM的全面学术研究和工业应用搭建桥梁。

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