Boiling and quenching heat transfer advancement by nanoscale surface modification

被引:0
|
作者
Hong Hu
Cheng Xu
Yang Zhao
Kirk J. Ziegler
J. N. Chung
机构
[1] University of Florida,Cryogenics Heat Transfer Laboratory, Department of Mechanical and Aerospace Engineering
[2] University of Florida,Nanostructured Interfaces Laboratory, Department of Chemical Engineering
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
All power production, refrigeration, and advanced electronic systems depend on efficient heat transfer mechanisms for achieving high power density and best system efficiency. Breakthrough advancement in boiling and quenching phase-change heat transfer processes by nanoscale surface texturing can lead to higher energy transfer efficiencies, substantial energy savings, and global reduction in greenhouse gas emissions. This paper reports breakthrough advancements on both fronts of boiling and quenching. The critical heat flux (CHF) in boiling and the Leidenfrost point temperature (LPT) in quenching are the bottlenecks to the heat transfer advancements. As compared to a conventional aluminum surface, the current research reports a substantial enhancement of the CHF by 112% and an increase of the LPT by 40 K using an aluminum surface with anodized aluminum oxide (AAO) nanoporous texture finish. These heat transfer enhancements imply that the power density would increase by more than 100% and the quenching efficiency would be raised by 33%. A theory that links the nucleation potential of the surface to heat transfer rates has been developed and it successfully explains the current finding by revealing that the heat transfer modification and enhancement are mainly attributed to the superhydrophilic surface property and excessive nanoscale nucleation sites created by the nanoporous surface.
引用
收藏
相关论文
共 50 条
  • [21] Electrical control and enhancement of boiling heat transfer during quenching
    Shahriari, Arjang
    Hermes, Mark
    Bahadur, Vaibhav
    APPLIED PHYSICS LETTERS, 2016, 108 (09)
  • [22] Heat transfer stages recognition by boiling acoustic during quenching
    Ravnik F.
    Grum J.
    Journal of ASTM International, 2011, 8 (01):
  • [23] Film Boiling Conjugate Heat Transfer during Immersion Quenching
    Kamenicky, Robin
    Frank, Michael
    Drikakis, Dimitris
    Ritos, Konstantinos
    ENERGIES, 2022, 15 (12)
  • [24] Boiling heat transfer in the quenching of a hot tube under microgravity
    Univ of Toronto, Toronto, Canada
    J Thermophys Heat Transfer, 2 (302-307):
  • [25] Effect of Modification of Heat-Release Surface on Heat Transfer in Nucleate Boiling at Free Convection of Freon
    Zhukov, V. E.
    Slesareva, E. Yu
    Pavlenko, A. N.
    JOURNAL OF ENGINEERING THERMOPHYSICS, 2021, 30 (01) : 1 - 13
  • [26] Effect of Modification of Heat-Release Surface on Heat Transfer in Nucleate Boiling at Free Convection of Freon
    V. E. Zhukov
    E. Yu. Slesareva
    A. N. Pavlenko
    Journal of Engineering Thermophysics, 2021, 30 : 1 - 13
  • [27] Effect of nanocavity geometry on nanoscale nucleate boiling heat transfer
    Zhou, Wenbin
    Hu, Yanke
    Ma, Hualin
    Zou, Yangbin
    Yu, Liang
    Xia, Guodong
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2024, 225
  • [28] EFFECT OF DECREASING HEAT TRANSFER SURFACE SIZE ON BOILING HEAT TRANSFER
    Koizumi, Yasuo
    Morita, Yoshiki
    PROCEEDINGS OF THE 11TH INTERNATIONAL CONFERENCE ON NANOCHANNELS, MICROCHANNELS, AND MINICHANNELS, 2013, 2013,
  • [29] Experimental investigation on the influence of surface conditions on boiling heat transfer during quenching of a cylinder in subcooled water
    Liu, Yang
    Xiong, Ping
    Li, Qiushi
    Lu, Tao
    Jiang, Qifeng
    Luo, Yan
    Zhou, Linglan
    Yang, Shihao
    EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2025, 165
  • [30] EFFECT OF SURFACE TENSION ON HEAT TRANSFER IN BOILING
    MORGAN, AI
    BROMLEY, LA
    WILKE, CR
    INDUSTRIAL AND ENGINEERING CHEMISTRY, 1949, 41 (12): : 2767 - 2769