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由石蜡和纳米多孔结构膨胀石墨制成的导热形状稳定相变材料。

Thermally Conductive Shape-Stabilized Phase Change Materials Enabled by Paraffin Wax and Nanoporous Structural Expanded Graphite.

作者信息

Zhao Yilin, Huang Shuhui, Jin Zhaoguo, Xie Zhongnan, Guo Hong, Xie Haofeng

机构信息

State Key Laboratory of Nonferrous Metals and Processes, GRIMN Group Co., Ltd., Beijing 100088, China.

GRIMAT Engineering Institute Co., Ltd., Beijing 101407, China.

出版信息

Nanomaterials (Basel). 2025 Jan 12;15(2):110. doi: 10.3390/nano15020110.

Abstract

Paraffin wax (PW) has significant potential for spacecraft thermal management, but low thermal conductivity and leakage issues make it no longer sufficient for the requirements of evolving spacecraft thermal control systems. Although free-state expanded graphite (EG) as a thermal conductivity enhancer can ameliorate the above problems, it remains challenging to achieve higher thermal conductivity (K) (>8 W/(m·K)) at filler contents below 10 wt.% and to mitigate the leakage problem. Two preparations of thermally conductive shape-stabilized PW/EG composites, using the pressure-induced method and prefabricated skeleton method, were designed in this paper. The expanded graphite formed a nanoscale porous structure by different methods, which enhanced the capillary action between the graphite flake layers, improved the adsorption and encapsulation of EG, and alleviated the leakage problem. The thermal conductivity and the latent heat of the phase-change materials (PCM) prepared by the two methods mentioned above are 9.99 W/(m·K), 10.70 W/(m·K) and 240.06 J/g, 231.67 J/g, respectively, at EG loading by 10 wt.%, and the residual mass fraction was greater than 99% after 50 cycles of high and low temperature. In addition, due to the excellent thermal management capability of PW/EG, the operating temperature of electronic components can be stably maintained at 68-71 °C for about 15 min and the peak temperature can be reduced by at least 23 °C when the heating power of the electronic components is 10 w. These provide novel and cost-effective methods to further improve the management capability of spacecraft thermal control systems.

摘要

石蜡(PW)在航天器热管理方面具有巨大潜力,但低导热率和泄漏问题使其不再满足不断发展的航天器热控系统的要求。尽管自由态膨胀石墨(EG)作为导热增强剂可以改善上述问题,但在填料含量低于10 wt.%时实现更高的导热率(K)(>8 W/(m·K))并减轻泄漏问题仍然具有挑战性。本文设计了两种采用压力诱导法和预制骨架法制备的导热形状稳定的PW/EG复合材料。膨胀石墨通过不同方法形成纳米级多孔结构,增强了石墨鳞片层之间的毛细作用,改善了EG的吸附和封装,减轻了泄漏问题。上述两种方法制备的相变材料(PCM)在EG负载量为10 wt.%时,导热率分别为9.99 W/(m·K)、10.70 W/(m·K),潜热分别为240.06 J/g、231.67 J/g,经过50次高低温循环后残留质量分数大于99%。此外,由于PW/EG具有出色的热管理能力,当电子元件加热功率为10 w时,电子元件的工作温度可稳定维持在68 - 71°C约15分钟,峰值温度可降低至少23°C。这些为进一步提高航天器热控系统的管理能力提供了新颖且具有成本效益的方法。

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