材料科学
毛细管作用
表面张力
复合材料
粘度
沸腾
沟槽(工程)
毛细管数
传热系数
热阻
传热
热力学
冶金
物理
作者
Chun Jiang,Xu Chen,Yufei Zhang,Qifan Li,Rongfu Wen,Xuehu Ma
出处
期刊:ACS applied nano materials
[American Chemical Society]
日期:2021-04-26
卷期号:4 (5): 5360-5371
被引量:19
标识
DOI:10.1021/acsanm.1c00691
摘要
Evaporation and boiling heat transfer on micro/nanostructured surfaces with superior wicking capability is an efficient cooling approach for high heat flux removal. The enhancement of the wicking capability has been identified as a key mechanism to enhance heat transfer efficiency and prevent thermal crisis. However, the capillary wicking capability is limited by the trade-off between the capillary pressure and the viscous resistance on the length scale of the structure feature. Here, we report a rapid capillary wicking capability on hierarchical nanowired surfaces with interconnected V-grooves, whose wicking coefficient reaches 6.54 mm/s0.5. This is attributed to the highly uniform copper nanowires which provide prominent capillary pressure while the interconnected V-grooves provide liquid film transport channels to reduce the viscous resistance. We experimentally investigated the effect of nanowire spacing, V-groove fraction, and V-groove depth on the wicking coefficient for various liquids with surface tension to viscosity ratios from 6 to 81. Larger fractions and depths of such V-grooves lead to higher wicking coefficients. Moreover, the wicking coefficient is increased as the surface tension to viscosity ratio of the liquid increases. This work offers guidelines for designing and optimizing hierarchical structures to enable ultrafast liquid film wicking, thus highlighting the thermal management potential.
科研通智能强力驱动
Strongly Powered by AbleSci AI