POOL BOILING HEAT TRANSFER ENHANCEMENT OF WATER USING BRAZED COPPER MICROPOROUS COATINGS

被引:0
作者
Jun, Seongchul [1 ]
Wi, Hyoseong [1 ]
Gurung, Ajay [2 ]
Amaya, Miguel [2 ]
You, Seung M. [1 ]
机构
[1] Univ Texas Dallas, Dept Mech Engn, 800 W Campbell Rd, Richardson, TX 75083 USA
[2] Univ Texas Arlington, Mech & Aerosp Engn Dept, 500 W First St, Arlington, TX USA
来源
PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2015, VOL 8A | 2016年
关键词
SURFACES;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
A novel, high-temperature, thermally-conductive, microporous coating (HTCMC) is developed by brazing copper particles onto a copper surface. This coating is more durable than many previous microporous coatings and also effectively creates reentrant cavities by optimizing brazing conditions. A parametric study of coating thicknesses of 49 - 283 mu m with an average particle size of 25 mu m was conducted using the HTCMC coating to understand nucleate boiling heat transfer (NBHT) enhancement on porous surfaces. It was found that there are three porous coating regimes according to their thicknesses. The first regime is "microporous" in which both NBHT and critical heat flux (CHF) enhancements gradually grow as the coating thickness increases. The second regime is "microporous-to-porous transition" where NBHT is further enhanced at lower heat fluxes but decreases at higher heat fluxes for increasing thickness. CHF in this regime continues to increase as the coating thickness increases. The last regime is named as "porous", and both NBHT and CHF decrease as the coating thickness increases further than that of the other two regimes. The maximum nucleate boiling heat transfer coefficient observed was 350,000 W/m(2)K at 96 mu m thickness ("microporous" regime) and the maximum CHF observed was 2.1 MW/m(2) at 225 mu m thickness ("porous" regime).
引用
收藏
页数:9
相关论文
共 50 条
  • [31] Early Evaporation of Microlayer for Boiling Heat Transfer Enhancement
    Zou, An
    Singh, Dhirendra P.
    Maroo, Shalabh C.
    LANGMUIR, 2016, 32 (42) : 10808 - 10814
  • [32] Pool boiling heat transfer behavior of graphene oxide coating on copper substrate utilizing spin coating method
    Salari, Saham
    Abedini, Ehsan
    Sabbaghi, Samad
    Adibi, Pouyan
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2025,
  • [33] Hook-shaped structures to improve pool boiling heat transfer
    Elkholy, Ahmed
    Swift, John
    Kempers, Roger
    APPLIED THERMAL ENGINEERING, 2023, 219
  • [34] Pool boiling heat transfer of HFE-7100 on metal foams
    Manetti, Leonardo Lachi
    Ribatski, Gherhardt
    de Souza, Reinaldo Rodrigues
    Cardoso, Elaine Maria
    EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2020, 113
  • [35] POOL BOILING HEAT TRANSFER IN A VERTICAL ANNULUS WITH A NARROWER UPSIDE GAP
    Kang, Myeong-Gie
    NUCLEAR ENGINEERING AND TECHNOLOGY, 2009, 41 (10) : 1285 - 1292
  • [36] An experimental investigation on pool boiling heat transfer enhancement using Cu-Al2O3 nano-composite coating
    Gupta, Sanjay Kumar
    Misra, Rahul Dev
    EXPERIMENTAL HEAT TRANSFER, 2019, 32 (02) : 133 - 158
  • [37] Superbiphilic patterned nanowires with wicking for enhanced pool boiling heat transfer
    Shim, Dong Il
    Hsu, Wei-Ting
    Yun, Maroosol
    Lee, Dongwhi
    Kim, Beom Seok
    Cho, Hyung Hee
    INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2023, 249
  • [38] Pool boiling heat transfer in a vertical annulus with a stepped outside tube
    Kang, Myeong-Gie
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2011, 54 (23-24) : 4817 - 4822
  • [39] EXPERIMENTAL STUDY ON POOL BOILING HEAT TRANSFER OF TWO ENHANCED TUBES
    Ouyang, Xinping
    Li, Haizhen
    Si, Shaojuan
    23RD IIR INTERNATIONAL CONGRESS OF REFRIGERATION, 2011, 23 : 522 - 526
  • [40] Microscale Morphology Effects of Copper-Graphene Oxide Coatings on Pool Boiling Characteristics
    Jaikumar, Arvind
    Rishi, Aniket
    Gupta, Anju
    Kandlikar, Satish G.
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2017, 139 (11):