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基于流动驱动定向冷冻铸造在管状部件上制备石墨烯气凝胶以增强热能管理
Flow-driven directional freeze-casting of graphene aerogels on tubular components for enhanced thermal energy management
语言:
中文摘要
摘要 在快速发展的储能技术领域,实现高效性与可持续性已成为关键目标,其中吸附过程发挥着至关重要的作用。由于气凝胶基结构具有固有的多孔性和可定制的架构,能够显著促进传热与传质性能,因此该吸附过程可从中获得巨大优势。然而,尽管已有大量研究致力于优化气凝胶微观结构以提升吸附性能,但将这些材料集成到实际储能系统中仍面临挑战。为克服这一难题,本文提出一种流动驱动的定向冷冻铸造技术,可在管状部件表面集成具有径向取向孔道网络的气凝胶,形成高度有序、类似鳍片的结构。该创新方法显著提升了气凝胶在真实储能系统中的实用性。通过调节工艺参数,我们进一步实现了类似于纵向翅片结构的更优取向排列,从而显著增强了传质性能。与取向程度最低的样品相比,这种改进的结构使吸附和脱附时间均减少了约35%。基于实测的吸附特性,对集成定制化气凝胶结构的热能储存系统进行性能估算的结果表明,其功率密度相较于目前已报道的基于吸附式热电池的最高值提高了61%。当应用于吸附式热泵系统时,其估计的单位比冷却功率较其他已报道的吸附复合材料提升了68%至98%。这些结果凸显了我们所提出的新型气凝胶集成技术在提升热管理解决方案以及推动基于吸附的能源系统发展方面的巨大潜力。
English Abstract
Abstract In the rapidly advancing field of energy storage technologies, achieving efficiency and sustainability has become paramount, with adsorption playing a crucial role. This adsorption process benefits significantly from aerogel-based structures due to their inherent porosity and customizable architectures, which facilitate exceptional heat- and mass-transfer capabilities. However, despite extensive research on optimizing aerogel microstructures for enhanced adsorption, integrating these materials into practical energy storage systems remains challenging. To overcome this, we present a flow-driven directional freeze-casting technique that integrates aerogels with radially oriented pore networks onto tubular components, forming well-aligned, fin-like structures. This innovative method increases the practical applicability of aerogels in real-world energy storage systems. By adjusting process conditions, we achieve a further improved alignment similar to longitudinal finned structures, significantly enhancing mass transfer. This improved alignment results in ∼ 35 % reductions in both adsorption and desorption times compared to the lowest alignment sample. Based on the measured adsorption characteristics, the performance estimation for thermal energy storage systems integrating the tailored aerogel structure showed a 61 % increase in power density compared to the highest recently reported value for sorption-based thermal battery. When applied to adsorption heat pump systems, the estimated specific cooling power improved by 68–98 % compared to other reported adsorbent composites. These results highlight the potential of our novel aerogel integration technique to enhance thermal management solutions and significantly advance adsorption-based energy systems .
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SunView 深度解读
该气凝胶定向冷冻铸造技术对阳光电源储能系统具有重要价值。通过径向孔网络结构实现的35%吸附/解吸时间缩短和61%功率密度提升,可直接应用于ST系列PCS和PowerTitan储能系统的热管理优化。该技术的快速传热传质特性能显著改善电池热失控防护和温控效率,降低HVAC能耗。建议在储能集装箱级联散热方案中引入该材料体系,结合iSolarCloud平台实现温度场预测性维护,提升系统安全性与循环寿命,为大规模储能电站热管理提供创新解决方案。