Forced-Convection Measurements in the Fully Developed and Exit Regions of Open-Cell Metal Foam

被引:7
作者
Bagci, Ozer [1 ]
Dukhan, Nihad [2 ]
Kavurmacioglu, Levent A. [1 ]
机构
[1] Istanbul Tech Univ, Makina Fak, TR-34437 Istanbul, Turkey
[2] Univ Detroit Mercy, Dept Mech Engn, Detroit, MI 48334 USA
关键词
Metal foam; Convection; Fully developed; Exit region; Experiment; Water; PARALLEL-PLATE CHANNEL; HEAT-TRANSFER; THERMAL TRANSPORT; POROUS-MEDIUM; FLOW; VALIDATION; EXCHANGERS; SIMULATION; DARCY;
D O I
10.1007/s11242-015-0534-5
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Experimental heat transfer data for water flow in commercial, open-cell-aluminum-foam cylinder heated at the wall by a constant heat flux, are presented. The measurements include wall temperature along flow direction as well as average inlet and outlet temperatures of the water. Flow speeds were in the Darcy and non-Darcy (transitional and Forchheimer) regimes. Heat fluxes were 14,998 and for the Darcy and non-Darcy regimes, respectively. Measurements were focused on the thermally fully developed and an anticipated exit regions, with the latter region being often ignored in the literature. The experimental Nusselt number for the Darcy flow cases is compared to its analytical counterpart. A comparison shows good agreement, considering the approximations involved in the analytical solution and experimental errors. Previously unpublished phenomenon is presented in the behavior of Nusselt number for non-Darcy regimes. The experimental results and measuring technique can be used for validation of other analytical and numerical solutions, as well as in testing heat-exchange engineering designs based on metal foam.
引用
收藏
页码:513 / 526
页数:14
相关论文
共 50 条
[41]   Processing of Shape Memory CuZnAl Open-cell Foam by Molten Metal Infiltration [J].
E. M. Castrodeza ;
C. Mapelli ;
M. Vedani ;
S. Arnaboldi ;
P. Bassani ;
A Tuissi .
Journal of Materials Engineering and Performance, 2009, 18 :484-489
[42]   A Tool to Generate Grain-Resolved Open-Cell Metal Foam Models [J].
Joseph C. Tucker ;
Ashley D. Spear .
Integrating Materials and Manufacturing Innovation, 2019, 8 :247-256
[43]   Modelling of Droplet Capture in an Open-Cell Metal Foam at the Pore and Macroscopic Scales [J].
Thiago P. de Carvalho ;
David M. Hargreaves ;
Hervé P. Morvan ;
Michael Klingsporn .
Transport in Porous Media, 2023, 148 :1-25
[44]   Processing of Shape Memory CuZnAl Open-cell Foam by Molten Metal Infiltration [J].
Castrodeza, E. M. ;
Mapelli, C. ;
Vedani, M. ;
Arnaboldi, S. ;
Bassani, P. ;
Tuissi, A. .
JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2009, 18 (5-6) :484-489
[45]   Neutrons attenuation on composite metal foams and hybrid open-cell Al foam [J].
Chen, Shuo ;
Bourham, Mohamed ;
Rabiei, Afsaneh .
RADIATION PHYSICS AND CHEMISTRY, 2015, 109 :27-39
[46]   Passive control of centrifugal fan noise by employing open-cell metal foam [J].
Xu, Chen ;
Mao, Yijun .
APPLIED ACOUSTICS, 2016, 103 :10-19
[47]   Simulation intricacies of open-cell metal foam fin subjected to convective flow [J].
Dixit, Tisha ;
Ghosh, Indranil .
APPLIED THERMAL ENGINEERING, 2018, 137 :532-544
[48]   Modelling of Droplet Capture in an Open-Cell Metal Foam at the Pore and Macroscopic Scales [J].
de Carvalho, Thiago P. P. ;
Hargreaves, David M. M. ;
Morvan, Herve P. ;
Klingsporn, Michael .
TRANSPORT IN POROUS MEDIA, 2023, 148 (01) :1-25
[49]   Flow boiling of R134a in an open-cell metal foam mini-channel evaporator [J].
Gao, Wuhuan ;
Xu, Xianghua ;
Liang, Xingang .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2018, 126 :103-115
[50]   Experimental investigation on the solidification rate of water in open-cell metal foam with copper fins [J].
Bai, Qingsong ;
Guo, Zengxu ;
Xin Cui ;
Yang, Xiaohu ;
Liu Yanhua ;
Jin, Liwen ;
Sun, Yanjun .
CLEANER ENERGY FOR CLEANER CITIES, 2018, 152 :210-214