3D CFD analysis of a diamond lattice-based porous burner

被引:11
作者
Billerot, Pierre-Lou [1 ]
Dufresne, Louis [1 ]
Lemaire, Romain [1 ]
Seers, Patrice [1 ]
机构
[1] Ecole Technol Super, Dept Mech Engn, TFT Lab, 1100 Notre Dame St West, Montreal, PQ H3C 1K3, Canada
关键词
3D modeling; Combustion; Dispersion; Pore scale; Porous burner; Porous media; FLAME STABILIZATION; HEAT-TRANSFER; PREMIXED COMBUSTION; LONGITUDINAL DISPERSION; HYDROCARBON FUELS; LAMINAR-FLOW; FLUID-FLOW; MEDIA; SIMULATION; EMISSIONS;
D O I
10.1016/j.energy.2020.118160
中图分类号
O414.1 [热力学];
学科分类号
摘要
Innovative 3D metal and ceramic additive printing technologies allow manufacturing porous media with a tailored design pattern, unlike the sponge-like matrices commonly used in porous media burners. Based on this technology, this paper aims at modeling, at the pore scale, the flow behavior and combustion features within a structured diamond lattice pattern offering an isotropic and homogeneous porous medium as would be printed using additive manufacturing. A low porosity, 15 pores per inch, porous medium has been tested at equivalence ratios ranging from 0.55 to 0.8. Energy analysis of the proposed 3D model showed that solid radiation losses are negligible compared to solid conduction and convection. The heat transfer analysis reveals that the energy recirculation efficiency reaches a maximum value of 82% at lean-combustion regime. At the pore scale, a symmetrical flow pattern has been observed until a critical Reynolds number of 65 is reached. Based on the flow spatial variations, dispersion has been analyzed and compared with data reported in random structures. Using a lattice structure results in a more homogeneous energy release with less temperature spatial variations. This offers the advantage of decreasing thermal constraints associated with temperature gradients which induce breakage in random structure burners. (C) 2020 Elsevier Ltd. All rights reserved.
引用
收藏
页数:14
相关论文
共 65 条
[1]   Mechanical behavior of regular open-cell porous biomaterials made of diamond lattice unit cells [J].
Ahmadi, S. M. ;
Campoli, G. ;
Yavari, S. Amin ;
Sajadi, B. ;
Wauthle, R. ;
Schrooten, J. ;
Weinans, H. ;
Zadpoor, A. A. .
JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2014, 34 :106-115
[2]   Lean flammability limits for stable performance with a porous burner [J].
Akbari, M. H. ;
Riahi, P. ;
Roohi, R. .
APPLIED ENERGY, 2009, 86 (12) :2635-2643
[3]   Heat recirculation and heat transfer in porous burners [J].
Barra, AJ ;
Ellzey, JL .
COMBUSTION AND FLAME, 2004, 137 (1-2) :230-241
[4]   Numerical study of the effects of material properties on flame stabilization in a porous burner [J].
Barra, AJ ;
Diepvens, G ;
Ellzey, JL ;
Henneke, MR .
COMBUSTION AND FLAME, 2003, 134 (04) :369-379
[5]  
Bear J., 2013, DOVER CIVIL MECH ENG
[6]   Experimental study, 1D volume-averaged calculations and 3D direct pore level simulations of the flame stabilization in porous inert media at elevated pressure [J].
Bedoya, C. ;
Dinkov, I. ;
Habisreuther, P. ;
Zarzalis, N. ;
Bockhorn, H. ;
Parthasarathy, P. .
COMBUSTION AND FLAME, 2015, 162 (10) :3740-3754
[7]   Experimental and Theoretical Study of Combustion under Elevated Pressure within Porous Inert Media [J].
Bedoya, Cesar ;
Zarzalis, Nikolaos ;
Habisreuther, Peter .
ENERGY TECHNOLOGY, 2017, 5 (07) :1124-1133
[8]  
Cd-Adapco, 2016, STAR CCM DOC
[9]   Laminar flow with combustion in inert porous media [J].
Coutinho, Jose E. A. ;
de Lemos, Marcelo J. S. .
INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2012, 39 (07) :896-903
[10]   Longitudinal and transverse dispersion in porous media [J].
Delgado, J. M. P. Q. .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 2007, 85 (A9) :1245-1252