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Ionic cross-linked polyvinyl alcohol tunes vitrification and cold-crystallization of sugar alcohol for long-term thermal energy storage

机译:离子交联聚乙烯醇调整糖醇的玻璃化和冷结晶,用于长期热能储存

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摘要

A new sustainable material for storing heat and releasing it on demand has been demonstrated for long-term latent heat storage (LLHS). The material consists of a high-latent-heat sugar alcohol phase change material (PCM) dispersed within ionic cross-linked matrices of polyvinyl alcohol (PVA). This material's unique property is the inhibition of undesired crystallization of the PCM during cooling due to the strong intermolecular interactions of the polymeric matrices, which leads to vitrification instead of crystallization. The release of latent heat can be controlled due to the PCM's stability below its cold-crystallization, which is triggered by reheating, as demonstrated by differential scanning calorimetry (DSC), optical microscopy (OM) andin situX-ray diffraction (XRD). The addition of an ionic citrate cross-linker further tunes the vitrification and cold-crystallization properties of the PCM. Homogeneity and the presence of hydrogen bonding of the cold-crystalizing PCM (CC-PCM) were studied by scanning electron microscopy-energy dispersive X-ray spectroscopy (SEM-EDX), Fourier transform infrared spectroscopy (FTIR) and XRD. Thermal stability was confirmed by thermogravimetric analysis (TGA) and 100 consecutive DSC heating-cooling cycles. The CC-PCM demonstrated high latent heat of fusion, up to 266 J g(-1), depending on the composition. As a super-adsorbent, PVA was able to swell and hold the liquid PCM resulting in form-stability and leakage-preventive properties above the melting temperature. Taken together, these results confirm that PVA matrices are promising for the thermal and structural stabilization of sugar alcohol PCMs, overcoming unexpected heat release and phase separation, and withstanding repeated melting-cooling cycles for LLHS.
机译:对于长期潜热储存(LLHS),已经证明了一种用于储存热量和释放的可持续材料。该材料由分散在聚乙烯醇(PVA)的离子交联基质中分散在离子交联基质中的高潜热糖醇相变材料(PCM)组成。该材料的独特性质是由于聚合物基质的强分子间相互作用而导致玻璃化而不是结晶而导致玻璃化而不是结晶而在冷却过程中抑制PCM期间的不希望的结晶。可以控制潜热的释放,由于PCM的稳定性低于其冷结晶,通过再加热触发,如差示扫描量热法(DSC),光学显微镜(OM)和in Situx射线衍射(XRD)所示。加入离子柠檬酸盐交联剂进一步调节PCM的玻璃化和冷结晶性能。通过扫描电子显微镜 - 能量分散X射线光谱(SEM-EDX),傅里叶变换红外光谱(FTIR)和XRD研究了冷结晶PCM(CC-PCM)的均匀性和氢键的存在。通过热重分析(TGA)和100个连续的DSC加热冷却循环确认热稳定性。 CC-PCM展示了高潜热的融合,最高可达266 J G(-1),具体取决于组合物。作为超吸附剂,PVA能够溶胀并保持液体PCM,导致熔化温度高于熔化的形式稳定性和漏漏性质。总之,这些结果证实PVA矩阵对糖醇PCM的热和结构稳定,克服意外的热释放和相分离,以及对LLH的重复熔融冷却循环的热和结构稳定。

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