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Integrated nanomaterials for extreme thermal management: a perspective for aerospace applications

机译:用于极端热管理的集成纳米材料:航空航天应用的视角

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Nanomaterials will play a disruptive role in next-generation thermal management for high power electronics in aerospace platforms. These high power and high frequency devices have been experiencing a paradigm shift toward designs that favor extreme integration and compaction. The reduction in form factor amplifies the intensity of the thermal loads and imposes extreme requirements on the thermal management architecture for reliable operation. In this perspective, we introduce the opportunities and challenges enabled by rationally integrating nanomaterials along the entire thermal resistance chain, beginning at the high heat flux source up to the systemlevel heat rejection. Using gallium nitride radio frequency devices as a case study, we employ a combination of viewpoints comprised of original research, academic literature, and industry adoption of emerging nanotechnologies being used to construct advanced thermal management architectures. We consider the benefits and challenges for nanomaterials along the entire thermal pathway from synthetic diamond and on-chip microfluidics at the heat source to verticallyaligned copper nanowires and nanoporous media along the heat rejection pathway. We then propose a vision for a materials-by-design approach to the rational engineering of complex nanostructures to achieve tunable property combinations on demand. These strategies offer a snapshot of the opportunities enabled by the rational design of nanomaterials to mitigate thermal constraints and approach the limits of performance in complex aerospace electronics.
机译:纳米材料将在航空航天平台中的高功率电子热管理中发挥着颠覆性作用。这些高功率和高频设备一直在体验到有利于极端集成和压实的设计的范式转变。形状因子的减少放大了热负荷的强度,并对热管理架构施加了极端要求,以获得可靠的操作。在这种观点中,我们介绍了通过合理整合纳米材料沿着整个热阻链来实现的机会和挑战,从高热通量源开始到Systemlevel排热量。使用氮化镓射频器件作为一个案例研究,我们采用了由原始研究,学术文献和行业采用新兴纳米技术的观点组合,用于构建先进的热管理架构。我们考虑沿着从伴有热源的合成金刚石和片上微流体的整个热路径到沿着散热途径的完全对齐的铜纳米线和纳米多孔介质的纳米材料的益处和挑战。然后,我们向复合纳米结构的合理工程提供了一种逐个设计方法的愿景,以实现随时性能的需求。这些策略提供了由纳米材料的合理设计使能的机会快照,以减轻热约束,并在复杂的航空航天电子设备中接近性能的限制。

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