Effective conductivity of Voronoi’s closed- and open-cell foams: analytical laws and numerical results

被引:0
作者
Dominique Baillis
Rémi Coquard
S. Cunsolo
机构
[1] LaMCoS,UMR CNRS 5259
[2] INSA-Lyon,undefined
[3] EC2-MODELISATION,undefined
来源
Journal of Materials Science | 2017年 / 52卷
关键词
Effective Conductivity; Open-cell Foams; Closed Cell Structure; Simple Analytical Relations; Cell Struts;
D O I
暂无
中图分类号
学科分类号
摘要
The conductive heat transfer in high-porosity cellular materials is generally treated by defining a homogeneous effective thermal conductivity. Numerous empirical and semiempirical models as well as numerical investigations have already been conducted to estimate this conductivity. These previous investigations were based on simplifications of the morphology of the cellular structure and/or of the method of solution of the heat transfer problem. Moreover, they were developed specifically for a type of foam, thus limiting their range of applicability. In order to improve the theoretical knowledge on this field, we have developed an innovative approach combining Voronoi methods for the generation of representative cellular materials and the finite element method (FEM) for solving the conductive heat transfer. The structures generated are able to reproduce the discriminating details of the microstructure and cover the whole range of open-cell or closed-cell foams commonly used in scientific or industrial applications. The influence of the structural parameters on the effective conductivity is analyzed. Based on this assessment, new simplified analytical relations are deduced accounting for the composition and structural parameters of the material. The validity of these laws has been verified by comparisons with “tomographic” results obtained from 3D tomographic data of real open-cell and closed-cell foams. The analytical correlations are potentially very useful for numerous applications.
引用
收藏
页码:11146 / 11167
页数:21
相关论文
共 94 条
[1]  
Placido E(2005)Thermal properties predictive model for insulating foams Infrared Phys Technol 46 219-231
[2]  
Arduini-Schuster MC(2006)Modeling of heat transfer in low-density EPS foams J Heat Transf 128 538-549
[3]  
Kuhn J(2010)Radiative properties of extruded polystyrene foams: predictive model and experimental results J Quant Spectrosc Radiat Transf 111 865-877
[4]  
Coquard R(2012)A review on application of carbonaceous materials and carbon matrix composites for heat exchangers and heat Int J Refrig 35 7-26
[5]  
Baillis D(2003)Metal foams as compact high performance heat exchangers Mech Mater 35 1161-1176
[6]  
Kaemmerlen A(2005)Thermal management of Li-ion battery with phase change material for electric scooters: experimental validation J Power Sources 142 345-353
[7]  
Vo C(2006)Open-cell aluminum foams filled with phase change materials as compact heat sinks Scr Mater 55 887-890
[8]  
Asllanaj F(1995)The combustion of liquid fuels within a porous media radiant burner Exp Therm Fluid Sci 11 13-20
[9]  
Jeandel G(1997)A study of the structure of submerged reaction zone in porous ceramic radiant burners Combust Flame 111 175-184
[10]  
Baillis D(2009)Materials selection for optimal design of a porous radiant burner for environmentally driven requirements Adv Eng Mater 11 1049-1056