GROWTH DYNAMICS DURING DROPWISE CONDENSATION ON NANOSTRUCTURED SUPERHYDROPHOBIC SURFACES

被引:0
作者
Miljkovic, Nenad [1 ]
Enright, Ryan [1 ]
Wang, Evelyn N. [1 ]
机构
[1] MIT, Device Res Lab, Cambridge, MA 02139 USA
来源
PROCEEDINGS OF THE ASME MICRO/NANOSCALE HEAT AND MASS TRANSFER INTERNATIONAL CONFERENCE, 2012 | 2012年
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中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Condensation on superhydrophobic nanostructured surfaces offers new opportunities for enhanced energy conversion, efficient water harvesting, and high performance thermal management. Such surfaces are designed to be Cassie stable, which minimize contact line pinning and allow for passive shedding of condensed water droplets at sizes smaller than the capillary length. In this work, we investigated in situ water condensation on superhydrophobic nanostructured surfaces using environmental scanning electron microscopy (ESEM). The "Cassie stable" surfaces consisted of silane coated silicon nanopillars with diameters of 300 nm, heights of 6.1 mu m, and spacings of 2 mu m, but allowed droplets of distinct suspended (S) and partially wetting (PW) morphologies to coexist. With these experiments combined with thermal modeling of droplet behavior, the importance of initial growth rates and droplet morphology on heat transfer is elucidated. The effect of wetting morphology on heat transfer enhancement is highlighted with observed 6x higher initial growth rate of PW droplets compared to S droplets. Consequently, the heat transfer of the PW droplet is 4-6x higher than that of the S droplet. To compare the heat transfer enhancement, PW and S droplet heat transfer rates are compared to that of a flat superhydrophobic silane coated surface, showing a 56% enhancement for the PW morphology, and 71% degradation for the S morphology. This study provides insight into importance of local wetting morphology on droplet growth rate during superhydrophobic condensation, as well as the importance of designing CB stable surfaces with PW droplet morphologies to achieve enhanced heat transfer during dropwise condensation.
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页码:427 / 436
页数:10
相关论文
共 24 条
[1]   Modeling of heat transfer in dropwise condensation [J].
AbuOrabi, M .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1998, 41 (01) :81-87
[2]   Nanostructures for superhydrophobicity and low adhesion [J].
Bhushan, Bharat ;
Koch, Kerstin ;
Jung, Yong Chae .
SOFT MATTER, 2008, 4 (09) :1799-1804
[3]   Self-Propelled Dropwise Condensate on Superhydrophobic Surfaces [J].
Boreyko, Jonathan B. ;
Chen, Chuan-Hua .
PHYSICAL REVIEW LETTERS, 2009, 103 (18)
[4]  
Carey V.P., 2008, LIQUID VAPOR PHASE C, VSecond
[5]   Dropwise condensation on superhydrophobic surfaces with two-tier roughness [J].
Chen, Chuan-Hua ;
Cai, Qingjun ;
Tsai, Chialun ;
Chen, Chung-Lung ;
Xiong, Guangyong ;
Yu, Ying ;
Ren, Zhifeng .
APPLIED PHYSICS LETTERS, 2007, 90 (17)
[6]   Visualization of droplet departure on a superhydrophobic surface and implications to heat transfer enhancement during dropwise condensation [J].
Dietz, C. ;
Rykaczewski, K. ;
Fedorov, A. G. ;
Joshi, Y. .
APPLIED PHYSICS LETTERS, 2010, 97 (03)
[7]   ESEM Imaging of Condensation on a Nanostructured Superhydrophobic Surface [J].
Dietz, C. ;
Rykaczewski, K. ;
Fedorov, A. ;
Joshi, Y. .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2010, 132 (08) :1
[8]  
Enright R., 2011, NATURE MAT
[9]   Dropwise Condensation Modeling Suitable for Superhydrophobic Surfaces [J].
Kim, Sunwoo ;
Kim, Kwang J. .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2011, 133 (08)
[10]   Superhydrophobic states [J].
Lafuma, A ;
Quéré, D .
NATURE MATERIALS, 2003, 2 (07) :457-460