Multiscale Dynamic Growth and Energy Transport of Droplets during Condensation

被引:32
作者
Xu, Zhenyuan [1 ,2 ]
Zhang, Lenan [2 ]
Wilke, Kyle [2 ]
Wang, Evelyn N. [2 ]
机构
[1] Shanghai Jiao Tong Univ, Inst Refrigerat & Cryogen, Shanghai 200240, Peoples R China
[2] MIT, Dept Mech Engn, Cambridge, MA 02139 USA
关键词
LAMINAR FILMWISE CONDENSATION; DROPWISE CONDENSATION; HEAT-TRANSFER; SUPERHYDROPHOBIC SURFACES; INTERNAL CIRCULATION; EVAPORATION DYNAMICS; WATER DROPS; VAPOR; FLOW; AIR;
D O I
10.1021/acs.langmuir.8b01450
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Condensation is an important physical process and has direct relevance for a range of engineering applications, including heat transfer, antifrosting, and self-cleaning. Understanding the mechanism of droplet growth during condensation is an important aspect, but past works have not typically considered the dynamics of the multiscale process. In this paper, we developed a dynamic growth model, which considers the continuous and multiscale nature of the droplet growth process from several nanometers to hundreds of microns. This model couples the transient phase change heat transfer and two-phase flow both inside and outside the droplet. Accordingly, the energy transport is distinct from the classical pure conduction model. We show that convection near the liquid vapor interface and inside the droplets plays an increasingly important role as droplets grow and finally dominates the energy transport process. Driven by strong convection, the droplets mix well and the discrete layers of temperature observed in the pure conduction model disappear at the microscale. This model that considers convection can lead to over 4 times higher predicted overall heat transfer than that obtained with the pure conduction model. The interfacial mass flow through the liquid vapor interface is the dominant factor responsible for the strong convection. We studied the critical radius where convection starts to have a significant influence on droplet growth under different subcooling temperatures and contact angles. Droplets have smaller critical radii under larger subcooling temperatures or larger contact angles, ranging from 0.5 to 20 mu m. This work identifies the modes of energy transport in condensation at different scales, which not only enhances our fundamental understanding of individual droplet growth but provides design guidelines for various dropwise and jumping-droplet condensation research.
引用
收藏
页码:9085 / 9095
页数:11
相关论文
共 42 条
  • [1] Modeling of heat transfer in dropwise condensation
    AbuOrabi, M
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1998, 41 (01) : 81 - 87
  • [2] Heat transfer characteristics and internal fluidity of a sessile droplet on hydrophilic and hydrophobic surfaces
    Al-Sharafi, Abdullah
    Yilbas, Bekir S.
    Sahin, Ahmet Z.
    Ali, Haider
    Al-Qahtani, H.
    [J]. APPLIED THERMAL ENGINEERING, 2016, 108 : 628 - 640
  • [3] Universal evaporation dynamics of a confined sessile droplet
    Bansal, Lalit
    Hatte, Sandeep
    Basu, Saptarshi
    Chakraborty, Suman
    [J]. APPLIED PHYSICS LETTERS, 2017, 111 (10)
  • [4] High efficiency electric power generation:: The environmental role
    Beer, Janos M.
    [J]. PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2007, 33 (02) : 107 - 134
  • [5] Delayed Frost Growth on Jumping-Drop Superhydrophobic Surfaces
    Boreyko, Jonathan B.
    Collier, C. Patrick
    [J]. ACS NANO, 2013, 7 (02) : 1618 - 1627
  • [6] Self-Propelled Dropwise Condensate on Superhydrophobic Surfaces
    Boreyko, Jonathan B.
    Chen, Chuan-Hua
    [J]. PHYSICAL REVIEW LETTERS, 2009, 103 (18)
  • [7] Heat Transfer through a Condensate Droplet on Hydrophobic and Nanostructured Superhydrophobic Surfaces
    Chavan, Shreyas
    Cha, Hyeongyun
    Orejon, Daniel
    Nawaz, Kashif
    Singla, Nitish
    Yeung, Yip Fun
    Park, Deokgeun
    Kang, Dong Hoon
    Chang, Yujin
    Takata, Yasuyuki
    Miljkovic, Nenad
    [J]. LANGMUIR, 2016, 32 (31) : 7774 - 7787
  • [8] Nanograssed Micropyramidal Architectures for Continuous Dropwise Condensation
    Chen, Xuemei
    Wu, Jun
    Ma, Ruiyuan
    Hua, Meng
    Koratkar, Nikhil
    Yao, Shuhuai
    Wang, Zuankai
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2011, 21 (24) : 4617 - 4623
  • [9] Microscopic observations of condensation of water on lotus leaves
    Cheng, YT
    Rodak, DE
    Angelopoulos, A
    Gacek, T
    [J]. APPLIED PHYSICS LETTERS, 2005, 87 (19) : 1 - 3
  • [10] Recent developments in simulation techniques for vapour-compression refrigeration systems
    Ding, Guo-liang
    [J]. INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2007, 30 (07): : 1119 - 1133