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Review of stability and thermal conductivity enhancements for salt hydrates

机译:康复审查盐水液的稳定性和导热率增强

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摘要

Salt hydrates can be used as phase change materials for thermal energy storage. Critical technical challenges for their widespread deployment include poor cycling stability, large supercooling, and low thermal conductivity. In this work, numerous enhancement techniques are reviewed. Related to stability, numerous existing methods to characterize the number of thermal cycles are summarized. Following this, 11 techniques to mitigate phase separation (plus 9 studies on macro-, micro-, and nano-encapsulation types) are reviewed. For supercooling, 38 nucleator-salt hydrate combinations to minimize subcooling are reviewed. The empirically observed effect of isomorphism in minimizing subcooling is explored and discussed, with cross-study trends depicted for 38 nucleators across 9 salt hydrates. In addition, several studies reporting combined effects on stability and supercooling are presented. Related to thermal conductivity, 32 combinations of conductivity enhancement material and salt hydrate are reviewed. For those using graphite, the dependence of conductivity enhancement on graphite mass fraction is shown across numerous studies for different graphite types. The performance and stability of calcium chloride hexahydrate, sodium sulfate decahydrate, and sodium acetate were explored and are discussed in-depth. Finally, the status of enhancement to salt hydrates is summarized, and remaining challenges are identified.
机译:盐水合物可用作热能储存的相变材料。其广泛部署的关键技术挑战包括循环稳定性,大的过冷和低导热率低。在这项工作中,综述了许多增强技术。与稳定性相关,总结了表征热循环次数的许多现有方法。在此之后,回顾了用于减轻相分离的11种技术(加上宏观,微观和纳米封装类型的9研究)。对于过冷,综述了38条核酸盐水合物组合以最小化过过冷却。探索和讨论了在最小化过冷中的经验观察到的同构在最小化过冷中的作用,其横跨9种含有9种盐水合物的核心趋势。此外,还提出了报告综合影响稳定性和过冷的几项研究。与导热系数有关,综述了32种导电性增强材料和盐水合物的组合。对于使用石墨的那些,导电性增强对石墨质量分数的依赖性显示在不同石墨类型的许多研究中。探讨了氯化钙六水合物,硫酸钠十二水合物和乙酸钠的性能和稳定性,并深入讨论。最后,总结了对盐水合物的增强状态,并确定了剩余的挑战。

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