THE EFFECT OF POROSITY ON REPRESENTATIVE VOLUME ELEMENT FOR PRESSURE DROP IN OPEN-CELL FOAMS

被引:0
作者
Iasiello, M. [1 ]
Andreozzi, A. [1 ]
Bianco, N. [1 ]
Chiu, W. K. S. [2 ]
Naso, V. [1 ]
机构
[1] Univ Napoli Federico II, Dipartimento Ingn Ind, Ple Tecchio 80, I-80125 Naples, Italy
[2] Univ Connecticut, Dept Mech Engn, 191 Auditorium Rd, Storrs, CT 06269 USA
来源
4TH THERMAL AND FLUIDS ENGINEERING CONFERENCE, ASTFE 2019 | 2019年
关键词
Open-cell foams; Computed tomography; Pressure drop; Representative Volume Element; Numerical analysis; HEAT-TRANSFER; NUMERICAL-SIMULATION; PORE SCALE; FLOW; SIZE;
D O I
暂无
中图分类号
O414.1 [热力学];
学科分类号
摘要
Heat transfer can be enhanced by employing open-cell metal foams which are cellular materials where a fluid passes through a highly conductive solid matrix. They enhance convective heat transfer because of their mixing capability and high specific surface area. The foams complex geometry requires large computational power and makes the accurate numerical simulation of their thermal performance a challenging task. Difficulties are overcome by carrying out computations on a Representative Volume Element (RVE) of the foam, defined as the cubic sub-volume having the same characteristics as those of the whole foam. The effects of porosity on RVE for pressure drop in open-cell foams, for different velocities of the fluid, are analyzed in this paper. Foam geometries are reconstructed with Computed Tomography (CT) scans of real aluminum foams manufactured by ERG Aerospace (Oakland, CA). The numerical grid is then built up by employing the MATLAB tool iso2mesh. Finally, mass and momentum equations are solved numerically by means of the finite-element commercial code COMSOL Multiphysics. Pressure drop, permeability, and inertial factor, for different porosities and inlet flow velocities, are presented; from these results, it is possible to obtain the minimum RVE size. The minimum RVE size can provide guidance to reduce computational needs.
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共 21 条
[1]   The effect of open-cell metal foams strut shape on convection heat transfer and pressure drop [J].
Ambrosio, Giuseppe ;
Bianco, Nicola ;
Chiu, Wilson K. S. ;
Iasiello, Marcello ;
Naso, Vincenzo ;
Oliviero, Maria .
APPLIED THERMAL ENGINEERING, 2016, 103 :333-343
[2]  
Bear J., 1972, Dynamics of Fluids in Porous Media, V1
[3]   Thermophysical properties of high porosity metal foams [J].
Bhattacharya, A ;
Calmidi, VV ;
Mahajan, RL .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2002, 45 (05) :1017-1031
[4]   Simulations of flow through open cell metal foams using an idealized periodic cell structure [J].
Boomsma, K ;
Poulikakos, D ;
Ventikos, Y .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2003, 24 (06) :825-834
[5]   Lord Kelvin and Weaire-Phelan Foam Models: Heat Transfer and Pressure Drop [J].
Cunsolo, Salvatore ;
Iasiello, Marcello ;
Oliviero, Maria ;
Bianco, Nicola ;
Chiu, Wilson K. S. ;
Naso, Vincenzo .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2016, 138 (02)
[6]   Correlations for the pressure drop for flow through metal foam [J].
Dukhan, N. .
EXPERIMENTS IN FLUIDS, 2006, 41 (04) :665-672
[7]   MATHEMATICAL-MODELING OF FLOW THROUGH CONSOLIDATED ISOTROPIC POROUS-MEDIA [J].
DUPLESSIS, JP ;
MASLIYAH, JH .
TRANSPORT IN POROUS MEDIA, 1988, 3 (02) :145-161
[8]  
Dybbs A., 1984, Fundamentals of Transport Phenomena in Porous Media, P199, DOI 10.1007/978-94-009-6175-3_4
[9]   TETRAHEDRAL MESH GENERATION FROM VOLUMETRIC BINARY AND GRAY-SCALE IMAGES [J].
Fang, Qianqian ;
Boas, David A. .
2009 IEEE INTERNATIONAL SYMPOSIUM ON BIOMEDICAL IMAGING: FROM NANO TO MACRO, VOLS 1 AND 2, 2009, :1142-1145
[10]  
Fourie JG, 2002, CHEM ENG SCI, V57, P2781