Experiments and modeling of boiling heat transfer on hybrid-wettability surfaces

被引:25
作者
Liang, Gangtao [1 ]
Chen, Yang [1 ,3 ]
Wang, Jiajun [1 ]
Wang, Zhao [2 ]
Shen, Shengqiang [1 ]
机构
[1] Dalian Univ Technol, Sch Energy & Power Engn, Minist Educ, Key Lab Ocean Energy Utilizat & Energy Conservat, Dalian 116024, Peoples R China
[2] China Acad Engn Phys, Inst Appl Elect, Mianyang 621000, Sichuan, Peoples R China
[3] Shanghai Marine Diesel Engine Res Inst, Shanghai 201203, Peoples R China
基金
中国国家自然科学基金;
关键词
Pool boiling; Heat transfer coefficient; Critical heat flux (CHF); Hybrid wettability; Modeling; MIXED-WETTABILITY; CONTACT-ANGLE; POOL; FLUX; ENHANCEMENT; COPPER; WATER; FABRICATION; CHF;
D O I
10.1016/j.ijmultiphaseflow.2021.103810
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
This paper studies pool boiling heat transfer on the hybrid-wettability surfaces, i.e., hydrophobic dot/stripe patterns fabricated on a superhydrophilic substrate. It is shown that the nucleate boiling heat transfer coefficient for the hybrid surface is improved compared to both the substrate and plain copper reference, but the critical heat flux (CHF) on the enhanced surface is very complex. The pattern-to-substrate contact angle difference is also concerned: CHF for the hybrid surface increases remarkably with increasing the contact angle difference, but the nucleate boiling heat transfer coefficient declines. Combining the results for both dot and stripe patterns, it is revealed that CHF on the hybrid surfaces is closely associated with the pattern-to-surface area ratio and the pattern-to-pattern spacing: it declines generally with increasing the area ratio; its dependence on the pattern spacing is minor at large area ratios; however, at small area ratios, the pattern spacing plays an increasingly important role because it dominates both vapor-liquid instabilities and surface rewetting, and the optimal pattern spacing for maximal pool boiling heat transfer enhancement can be estimated using the capillary length. A modified theoretical model is proposed to predicting CHF on both homogenous-and hybrid-wettability surfaces.
引用
收藏
页数:18
相关论文
共 50 条
[11]   Pool boiling of nanoparticle-modified surface with interlaced wettability [J].
Hsu, Chin-Chi ;
Su, Tsung-Wen ;
Chen, Ping-Hei .
NANOSCALE RESEARCH LETTERS, 2012, 7
[12]   Surface wettability effects on critical heat flux of boiling heat transfer using nanoparticle coatings [J].
Hsu, Chin-Chi ;
Chen, Ping-Hei .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2012, 55 (13-14) :3713-3719
[13]   Fabrication of high wettability gradient on copper substrate [J].
Huang, Ding-Jun ;
Leu, Tzong-Shyng .
APPLIED SURFACE SCIENCE, 2013, 280 :25-32
[14]  
Jo HJ, 2009, ICNMM 2009, PTS A-B, P93
[15]   Critical heat flux and nucleate boiling on several heterogeneous wetting surfaces: Controlled hydrophobic patterns on a hydrophilic substrate [J].
Jo, HangJin ;
Kim, SeolHa ;
Park, Hyun Sun ;
Kim, Moo Hwan .
INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2014, 62 :101-109
[16]   Heterogeneous bubble nucleation on ideally-smooth horizontal heated surface [J].
Jo, HangJin ;
Kaviany, Massoud ;
Kim, Seol Ha ;
Kim, Moo Hwan .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2014, 71 :149-157
[17]   A study of nucleate boiling heat transfer on hydrophilic, hydrophobic and heterogeneous wetting surfaces [J].
Jo, HangJin ;
Ahn, Ho Seon ;
Kane, SoonHo ;
Kim, Moo Hwan .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2011, 54 (25-26) :5643-5652
[18]   A theoretical model to predict pool boiling CHF incorporating effects of contact angle and orientation [J].
Kandlikar, SG .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2001, 123 (06) :1071-1079
[19]   Effect of surface roughness on pool boiling heat transfer of water on hydrophobic surfaces [J].
Kim, Jin S. ;
Girard, Adam ;
Jun, Seongchul ;
Lee, Jungho ;
You, Seung M. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2018, 118 :802-811
[20]   Enhancement of nucleate boiling by combining the effects of surface structure and mixed wettability: A lattice Boltzmann study [J].
Li, W. X. ;
Li, Q. ;
Yu, Y. ;
Wen, Z. X. .
APPLIED THERMAL ENGINEERING, 2020, 180