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Mechanistic Considerations for Enhancing Flow Boiling Heat Transfer in Microchannel

机译:增强微通道中流动沸腾传热的力学考虑

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Research efforts on flow boiling in microchannels were focused on stabilizing the flow during the early part of the last decade. After achieving that goal through inlet restrictors and distributed nucleation sites, the focus has now shifted on improving its performance for high heat flux dissipation. The recent worldwide efforts described in this paper are aimed at increasing the critical heat flux (CHF) and reducing the pressure drop, with an implicit goal of dissipating 1 kW/cm~2 for meeting the high-end target in electronics cooling application. The underlying mechanisms in these studies are identified and critically evaluated for their potential in meeting the high heat flux dissipation goals. Future need to simultaneously increase the CHF and the heat transfer coefficient (HTC) has been identified and hierarchical integration of nanoscale and microscale technologies is deemed necessary for developing integrated pathways toward meeting this objective.
机译:在过去的十年初期,对微通道中沸腾的研究工作集中在稳定流量上。通过入口限制器和分布成核位置实现该目标后,现在的重点已转移到提高其高热通量性能上。本文所述的全球最新努力旨在提高临界热通量(CHF)和减小压降,其隐性目标是耗散1 kW / cm〜2以满足电子冷却应用中的高端目标。确定这些研究的潜在机制,并对其潜在潜力进行严格评估,以实现高热通量目标。未来需要同时增加CHF和热传递系数(HTC),并且已经确定了纳米级和微米级技术的层次集成对于开发实现此目标的集成途径非常必要。

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