Szymanski Pawel, Mikielewicz Dariusz, Fooladpanjeh Sasan
Faculty of Mechanical Engineering and Ship Technology, Gdansk University of Technology, 80-233 Gdansk, Poland.
Department of Mechanical Engineering, Islamic Azad University, Shahrood 36199-43189, Iran.
Materials (Basel). 2022 Aug 21;15(16):5765. doi: 10.3390/ma15165765.
Thermal control systems have been introduced as an important part of electronic devices, enabling thermal management of their electronic components. Loop heat pipe (LHP) is a passive two-phase heat transfer device with significant potential for numerous applications, such as aerospace applications, high-power LEDs, and solar central receivers. Its advantages are high heat transfer capability, low thermal resistance, long-distance heat transfer, and compact structure. The essential role of wick structures on the performance of LHPs has already been highlighted, but no comprehensive review is available that deals with different parameters such as LHP design and wick size, which are largely decisive and effective in achieving a practical level of thermal transmission governed by wick structures. To rely on this necessity, this article summarizes, analyzes, and classifies advancements in the design and fabrication of wick structures. The main conclusion to be drawn after careful monitoring and weighing of the related literature is that LHPs with composites and additively manufactured wicks show a higher heat transfer coefficient than other conventional structures. Indeed, future works should be focused on the design of more structurally efficient wicks, which may allow us to optimize materials and geometrical parameters of wick structure for higher heat transfer through LHPs.
热控系统已作为电子设备的重要组成部分被引入,实现了对其电子元件的热管理。回路热管(LHP)是一种被动式两相传热装置,在众多应用领域具有巨大潜力,如航空航天应用、高功率发光二极管和太阳能中央接收器。其优点包括高传热能力、低热阻、长距离传热以及结构紧凑。毛细结构对回路热管性能的关键作用已得到强调,但尚无全面综述涉及诸如回路热管设计和毛细尺寸等不同参数,而这些参数在实现由毛细结构控制的实际热传递水平方面具有很大的决定性和有效性。基于此需求,本文对毛细结构的设计与制造进展进行了总结、分析和分类。在仔细监测和权衡相关文献后得出的主要结论是,具有复合材料和增材制造毛细的回路热管比其他传统结构具有更高的传热系数。事实上,未来的工作应聚焦于设计结构更高效的毛细,这可能使我们能够优化毛细结构的材料和几何参数,以通过回路热管实现更高的热传递。