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TOWARDS HIGH ENERGY DENSITY, HIGH CONDUCTIVITY THERMAL ENERGY STORAGE COMPOSITES

机译:迈向高能量密度,高电导率热能存储复合材料

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摘要

Thermal energy storage (TES) materials absorb transient pulses of heat, allowing for rapid storage of low-quality thermal energy for later use, and effective temperature regulation as part of a thermal management system. This paper describes recent development of salt hydrate-based TES composites at the Air Force Research Laboratory. Salt hydrates are known to be susceptible to undercooling and chemical segregation, and their bulk thermal conductivities remain too low for rapid heat transfer. Here, we discuss recent progress towards solving these challenges in the composite system lithium nitrate trihydrate/graphitic foam. This system takes advantage of both the high volumetric thermal energy storage density of lithium nitrate trihydrate and the high thermal conductivity of graphitic foams. We demonstrate a new stable nucleation agent specific to lithium nitrate trihydrate which decreases undercooling by up to ~70% relative to previously described nucleation agents. Furthermore, we demonstrate the compatibility of lithium nitrate trihydrate and graphitic foam with the addition of a commercial nonionic silicone polyether surfactant. Finally, we show that thermal conductivity across water-graphite interfaces is optimized by tuning the surfactant concentration. These advances demonstrate a promising route to synthesizing high energy density, high thermal conductivity TES composites.
机译:热能存储(TES)材料吸收瞬态热脉冲,从而可以快速存储低质量的热能以供以后使用,并作为热管理系统的一部分进行有效的温度调节。本文介绍了空军研究实验室基于盐水合物的TES复合材料的最新进展。已知盐水合物易于过冷和化学偏析,并且它们的整体热导率对于快速传热而言仍然太低。在这里,我们讨论了解决复合系统硝酸锂三水合物/石墨泡沫中这些挑战的最新进展。该系统既利用了三水合硝酸锂的高体积热能存储密度,又利用了石墨泡沫的高热导率。我们证明了一种新的稳定的成核剂,其对三水合硝酸锂具有特异性,相对于先前描述的成核剂,它可将过冷度降低约70%。此外,我们证明了硝酸锂三水合物和石墨泡沫与商业非离子有机硅聚醚表面活性剂的相容性。最后,我们表明通过调节表面活性剂的浓度可以优化水-石墨界面的导热系数。这些进展证明了合成高能量密度,高导热率TES复合材料的有前途的途径。

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