Investigation of thermal dispersion and intra-pore turbulent heat flux in porous media

被引:9
作者
Jouybari, Nima Fallah [1 ]
Lundstrom, T. Staffan [1 ]
Hellstrom, J. Gunnar, I [1 ]
机构
[1] Lulea Univ Technol, Div Fluid Mech, S-97187 Lulea, Sweden
基金
瑞典研究理事会;
关键词
Turbulence; Porous media; LES; Thermal dispersion; Turbulent heat flux; 2-ENERGY EQUATION MODEL; MACROSCOPIC TURBULENCE; TRANSFER COEFFICIENT; FLOW; BED; CONDUCTIVITY; COMBUSTION; TRANSPORT; ARRAY;
D O I
10.1016/j.ijheatfluidflow.2019.108523
中图分类号
O414.1 [热力学];
学科分类号
摘要
In the present study, the importance of the thermal dispersion and the turbulent heat flux in porous media and their effects on the macroscopic distribution of thermal energy are investigated. To this end, turbulent flow and heat transfer within five unit-cells mimicking porous media are solved using large eddy simulation. It is shown that the thermal dispersion and the turbulent heat flux are negligible as compared to the convection term in the macroscopic energy equation. When further scrutinizing this equation, it is revealed that except for the longitudinal components of the thermal dispersion, the other components of thermal dispersion and turbulent heat flux may be neglected away from the boundaries as compared to the interfacial heat transfer. Visualizations of vortices show that the size of the turbulence structures within the cells is of the same order as the size of the pores; therefore, the turbulent heat flux is limited to the intra-pore level. Finally, a discussion is provided on the accuracy of the gradient type diffusion model commonly used for turbulent heat flux in porous media in the absence of macroscopic turbulence. It is shown that the intra-pore turbulence does not affect the macroscopic transport of thermal energy within the porous media studied.
引用
收藏
页数:12
相关论文
共 44 条
[1]  
Ansys C, 2012, USERS GUIDE 14
[2]   Direct numerical simulations of turbulent flow over a permeable wall using a direct and a continuum approach [J].
Breugem, WP ;
Boersma, BJ .
PHYSICS OF FLUIDS, 2005, 17 (02) :1-15
[3]   Direct numerical simulation of turbulent heat transfer in a fluid-porous domain [J].
Chandesris, M. ;
D'Hueppe, A. ;
Mathieu, B. ;
Jamet, D. ;
Goyeau, B. .
PHYSICS OF FLUIDS, 2013, 25 (12)
[4]   Flow turbulence topology in regular porous media: From macroscopic to microscopic scale with direct numerical simulation [J].
Chu, Xu ;
Weigand, Bernhard ;
Vaikuntanathan, Visakh .
PHYSICS OF FLUIDS, 2018, 30 (06)
[5]   Numerical Results for the Effective Flow and Thermal Properties of Idealized Graphite Foam [J].
DeGroot, Christopher T. ;
Straatman, Anthony G. .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2012, 134 (04)
[6]  
Dybbs A., 1984, Fundamentals of Transport Phenomena in Porous Media, P199, DOI 10.1007/978-94-009-6175-3_4
[7]   FLUID FLOW THROUGH RANDOMLY PACKED COLUMNS AND FLUIDIZED BEDS [J].
ERGUN, S ;
ORNING, AA .
INDUSTRIAL AND ENGINEERING CHEMISTRY, 1949, 41 (06) :1179-1184
[8]   Theoretical analysis and simulation of obstructed breakup of micro-droplet in T-junction under an asymmetric pressure difference [J].
Fu, Yuhang ;
Bai, Lin ;
Jin, Yong ;
Cheng, Yi .
PHYSICS OF FLUIDS, 2017, 29 (03)
[9]   Characteristics of turbulence in a face-centred cubic porous unit cell [J].
He, Xiaoliang ;
Apte, Sourabh, V ;
Finn, Justin R. ;
Wood, Brian D. .
JOURNAL OF FLUID MECHANICS, 2019, 873 :608-645
[10]   Parallel CFD simulations of an original and redesigned hydraulic turbine draft tube [J].
Hellstrom, J. G. I. ;
Marjavaara, B. D. ;
Lundstrom, T. S. .
ADVANCES IN ENGINEERING SOFTWARE, 2007, 38 (05) :338-344