In this paper, a numerical model employing an approximately realistic three-dimensional (3D) foam structure represented by Weaire–Phelan foam cell is developed to study the steady-state heat conduction of high porosity open-cell metal foam/paraffin composite at the pore-scale level. The conduction problem is considered in a cubic representative computation unit of the composite material with a constant temperature difference between one opposite sides of the cubic unit (the other outer surfaces of the cubic unit are thermally insulated). The effective thermal conductivities (ETCs) of metal foam/paraffin composites are calculated with the developed pore-scale model considering small-scale details of heat conduction, which avoids using adjustable free parameters that are usually adopted in the previous analytical models. Then, the reason why the foam pore size has no evident effect on ETC as reported in the previous macroscopic experimental studies is explored at pore scale. Finally, the effect of air cavities existing within solid paraffin in foam pore region on conduction capacity of metal foam/paraffin composite is investigated. It is found that our ETC data agree well with the reported experimental results, and thus by direct numerical simulation (DNS), the ETC data of different metal foam/paraffin composites are provided for engineering applications. The essential reason why pore size has no evident effect on ETC is due to the negligible interstitial heat transfer between metal foam and paraffin under the present thermal boundary conditions usually used to determine the ETC. It also shows that overlarge volume fraction of air cavity significantly weakens the conduction capacity of paraffin, which however can be overcome by the adoption of high conductive metal foam due to enhancement of conduction.
Skip Nav Destination
Article navigation
September 2017
This article was originally published in
Journal of Heat Transfer
Research-Article
Pore Scale Investigation of Heat Conduction of High Porosity Open-Cell Metal Foam/Paraffin Composite
Yuanpeng Yao,
Yuanpeng Yao
School of Mechanical Engineering,
Shanghai Jiao Tong University,
Shanghai 200240, China
e-mail: yaoyuanpeng@sjtu.edu.cn
Shanghai Jiao Tong University,
Shanghai 200240, China
e-mail: yaoyuanpeng@sjtu.edu.cn
Search for other works by this author on:
Huiying Wu,
Huiying Wu
School of Mechanical Engineering,
Shanghai Jiao Tong University,
Shanghai 200240, China
e-mail: whysrj@sjtu.edu.cn
Shanghai Jiao Tong University,
Shanghai 200240, China
e-mail: whysrj@sjtu.edu.cn
Search for other works by this author on:
Zhenyu Liu
Zhenyu Liu
School of Mechanical Engineering,
Shanghai Jiao Tong University,
Shanghai 200240, China
e-mail: zhenyu.liu@sjtu.edu.cn
Shanghai Jiao Tong University,
Shanghai 200240, China
e-mail: zhenyu.liu@sjtu.edu.cn
Search for other works by this author on:
Yuanpeng Yao
School of Mechanical Engineering,
Shanghai Jiao Tong University,
Shanghai 200240, China
e-mail: yaoyuanpeng@sjtu.edu.cn
Shanghai Jiao Tong University,
Shanghai 200240, China
e-mail: yaoyuanpeng@sjtu.edu.cn
Huiying Wu
School of Mechanical Engineering,
Shanghai Jiao Tong University,
Shanghai 200240, China
e-mail: whysrj@sjtu.edu.cn
Shanghai Jiao Tong University,
Shanghai 200240, China
e-mail: whysrj@sjtu.edu.cn
Zhenyu Liu
School of Mechanical Engineering,
Shanghai Jiao Tong University,
Shanghai 200240, China
e-mail: zhenyu.liu@sjtu.edu.cn
Shanghai Jiao Tong University,
Shanghai 200240, China
e-mail: zhenyu.liu@sjtu.edu.cn
1Corresponding author.
Contributed by the Heat Transfer Division of ASME for publication in the JOURNAL OF HEAT TRANSFER. Manuscript received November 17, 2016; final manuscript received March 12, 2017; published online May 9, 2017. Assoc. Editor: Alan McGaughey.
J. Heat Transfer. Sep 2017, 139(9): 091302 (11 pages)
Published Online: May 9, 2017
Article history
Received:
November 17, 2016
Revised:
March 12, 2017
Citation
Yao, Y., Wu, H., and Liu, Z. (May 9, 2017). "Pore Scale Investigation of Heat Conduction of High Porosity Open-Cell Metal Foam/Paraffin Composite." ASME. J. Heat Transfer. September 2017; 139(9): 091302. https://doi.org/10.1115/1.4036526
Download citation file:
Get Email Alerts
Cited By
The Effect of Biot Number on a Generalized Heat Conduction Solution
J. Heat Mass Transfer
Numerical Investigation of Conjugate Natural Convection From a Vertical Cylindrical Open Cavity
J. Heat Mass Transfer (August 2023)
Heat Transfer and Pressure Loss of Turbulent Flow in a Wedge-Shaped Cooling Channel With Different Types of Triply Periodic Minimal Surfaces
J. Heat Mass Transfer (September 2023)
Related Articles
Heat Transfer Analysis in Metal Foams With Low-Conductivity Fluids
J. Heat Transfer (August,2006)
Analysis of Solid–Liquid Phase Change Under Pulsed Heating
J. Heat Transfer (March,2007)
Thermal and Fluid Transport in Micro-Open-Cell Metal Foams: Effect of Node Size
J. Heat Transfer (January,2018)
The Effective Thermal Conductivity of High Porosity Fibrous Metal Foams
J. Heat Transfer (May,1999)
Related Proceedings Papers
Related Chapters
Conduction Heat Transfer in a Printed Circuit Board
Everyday Heat Transfer Problems: Sensitivities to Governing Variables
Radiation
Thermal Management of Microelectronic Equipment