Numerical Study of Fan Coil Heat Exchanger with Copper-Foam

被引:0
作者
Hassan A.M. [1 ,2 ]
Alwan A.A. [1 ,2 ]
Hamzah H.K.
机构
[1] Department of Mechanical Engineering, University of Babylon-Babylon-Iraq, Babylon, Hilla
[2] College of Engineering, Department of Medical industry engineering, National University of Science and Technology, Dhi Qar
关键词
Colburn factor; Cross flow; Darcy-BrinkmanForchheimer; Heat Exchanger; Heat Transfer; Local Thermal Equilibrium (LTE); Metallic Foam;
D O I
10.5293/IJFMS.202316.1.073
中图分类号
学科分类号
摘要
Due to its high porosity as well as a high specific surface area, the use of open cell metallic foam in heat transfer applications has received increasing interest. In present study, the dynamic and thermal performance of heat exchanger composed of copper foam incorporated in a fan coil was numerically analyzed. Darcy-Brinkman-Forchheimer model was used to represent the momentum equation inside the metallic foam (a porous medium). A local thermal equilibrium was used to solve the energy equation through the porous medium. Different porosity values were taken during the study, ranging from 0.88 to 0.98, while the velocity of inlet air of the heat exchanger ranged from 1 m/s to 10 m/s. The objective of current study is to compare the thermal and dynamic performance of the heat exchanger affected by several variables such as heat transfer coefficient, friction factor, pressure drop, Colburn factor, and area goodness factor. The results showed that increasing the air inlet velocity will increase the heat transfer coefficient, but on the other hand, increasing the velocity ten times will rise pressure drop from 19.032 Pa to 335.76 Pa. Also, the area goodness factor value will decrease with increasing inlet velocity. Finally, we found that increasing in medium porosity will reduce heat transfer coefficient but increase pressure drop. © 2023, Turbomachinery Society of Japan. All rights reserved.
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页码:73 / 88
页数:15
相关论文
共 39 条
[1]  
Jacobi A. M., Shah R. K., Air-Side Flow and Heat Transfer in Compact Heat Exchangers: A Discussion of Enhancement Mechanisms, Heat Transfer Engineering, 19, 4, pp. 29-41, (1998)
[2]  
Wu F., Zhang J., Ma X., Zhou W., Numerical Simulation of Gas-Solid Flow in A Novel Spouted Bed: Influence of Row Number of Longitudinal Vortex Generators, Advanced Powder Technology, 29, 8, pp. 1848-1858, (2018)
[3]  
Chamoli S., Lu R., Xu D., Yu P., Thermal Performance Improvement of a Solar Air Heater Fitted with Winglet Vortex Generators, Solar Energy, 159, pp. 966-983, (2018)
[4]  
Liang G., Islam M., Kharoua N., Simmons R., Numerical Study of Heat Transfer and Flow Behavior in A Circular Tube Fitted with Varying Arrays of Winglet Vortex Generators, International Journal of Thermal Sciences, 134, pp. 54-65, (2018)
[5]  
Belharizi M., Yahiaoui T., Khorsi A., Ladjedel O., Adjlout L., Experimental Investigation of Turbulent CrossFlow in A Staggered Tube Bundle with Wavy Cylinders, International Journal of Fluid Machinery and Systems, 15, 3, pp. 344-355, (2022)
[6]  
Promvonge P., Chompookham T., Kwankaomeng S., Thianpong C., Enhanced Heat Transfer in A Triangular Ribbed Channel with Longitudinal Vortex Generators, Energy Conversion and Management, 51, 6, pp. 1242-1249, (2010)
[7]  
Samadifar M., Toghraie D., Numerical Simulation of Heat Transfer Enhancement in A Plate-Fin Heat Exchanger Using a New Type of Vortex Generators, Applied Thermal Engineering, 133, pp. 671-681, (2018)
[8]  
Hosseini M., Ashrafi reza H., Beiranvand P., Dehestani A., Dehestani K., Numerical Simulation of Vortex Induced Vibration of A Flexible Cylinder, International Journal of Fluid Machinery and Systems, 10, 4, pp. 457-464, (2017)
[9]  
Cao R., Liu Z., Flow Characteristics of a Circular Cylinder behind an Impinging Airfoil Near Wake with Different Lateral Spacing, International Journal of Fluid Machinery and Systems, 14, 3, pp. 281-288, (2021)
[10]  
Tadrist L., Miscevic M., Rahli O., Topin F., About The Use of Fibrous Materials in Compact Heat Exchangers, Experimental Thermal and Fluid Science, 28, 2-3, pp. 193-199, (2004)