Numerical simulation of convective heat transfer coefficient in wire mesh absorbers with fixed porosity

被引:8
作者
Sanchez-Senoran, Daniel [1 ,2 ]
Reyes-Belmonte, Miguel A. [2 ]
Fernandez-Reche, Jesus [3 ]
Avila-Marin, Antonio L. [1 ]
机构
[1] CIEMAT, Point Focus Solar Thermal Technol Unit, Av Complutense 40, Madrid, Spain
[2] Rey Juan Carlos Univ, ESCET, Chem Energy & Mech Technol, C Tulipan S-N, Mostoles, Spain
[3] Point Focus Solar Thermal Technol Unit, POB 22, Tabernas, Spain
关键词
Volumetric absorbers; Volumetric receivers; CFD simulations; Heat transfer coefficient; Central receiver system; VOLUMETRIC AIR RECEIVER; SOLAR POWER-PLANTS; TEMPERATURE; OPTIMIZATION; PERFORMANCE; FOAMS; CYCLE;
D O I
10.1016/j.rineng.2022.100830
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Convective heat transfer is one of the main thermal mechanisms in volumetric absorbers technology. There is a lack of literature on the behaviour of convective heat transfer in dense wire meshes. In this research, numerical simulations are used to determine the influence of geometrical parameters of dense wire meshes, such as wire diameter and mesh count, in obtaining the local volumetric Nusselt coefficient. In order to achieve that aim, a sensitivity study of the inlet air velocity (0.5-5 m/s) and wire temperature (700 K, 1100 K and 1500 K) has been performed with different staggered stacked wire mesh configurations. The fixed single screen and staggered porosity of the studied configurations are 80% and 64% respectively, however the wire diameters in each configuration range from 0.1 mm to 0.7 mm. As a result of this study, the effect of the convection heat transfer is more emphasized in larger wire diameters than in smaller ones. In summary, the flow and heat transfer can be modified without changing the porosity.
引用
收藏
页数:8
相关论文
共 50 条
  • [31] Simulation of forced convective heat transfer in Kelvin cells with optimized skeletons
    Sun, Mingrui
    Yang, Lei
    Hu, Chengzhi
    Zhao, Jiafei
    Tang, Dawei
    Song, Yongchen
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2021, 165
  • [32] Numerical Simulation of Chemical Reactions' Influence on Convective Heat Transfer in Hydrothermal Circulation Reaction Zones
    Luo, Yina
    Feng, Yuebo
    Zhang, Da
    Li, Yan
    ENERGIES, 2024, 17 (11)
  • [33] Numerical simulations of airflow and convective heat transfer of a sow
    Cao, Mengbing
    Zong, Chao
    Wang, Xiaoshuai
    Teng, Guanghui
    Zhuang, Yanrong
    Lei, Kaidong
    BIOSYSTEMS ENGINEERING, 2020, 200 : 23 - 39
  • [34] Convective heat transfer enhancement by corona discharge in a wire-cylinder electrostatic precipitator with the water-cooling system
    Fu, Hui
    Xu, Wenyi
    Li, Shuran
    Liu, Zhen
    Yan, Keping
    JOURNAL OF ELECTROSTATICS, 2023, 125
  • [35] CFD Analysis of Convective Heat Transfer Coefficient on External Surfaces of Buildings
    Vollaro, Andrea de Lieto
    Galli, Giorgio
    Vallati, Andrea
    SUSTAINABILITY, 2015, 7 (07): : 9088 - 9099
  • [36] DETERMINATION OF FLUID-PARTICLE CONVECTIVE HEAT-TRANSFER COEFFICIENT
    BHAMIDIPATI, S
    SINGH, RK
    TRANSACTIONS OF THE ASAE, 1995, 38 (03): : 857 - 862
  • [37] Prediction of the convective heat transfer coefficient for the transient and turbulent flows in a tube
    Mikhailov, GM
    Mikhailov, VG
    Kondakova, LA
    Reva, LS
    THEORETICAL FOUNDATIONS OF CHEMICAL ENGINEERING, 2005, 39 (06) : 658 - 662
  • [38] INFLUENCE OF THE GEOMETRICAL PARAMETERS OF URBAN CANYONS ON THE CONVECTIVE HEAT TRANSFER COEFFICIENT
    Vallati, Andrea
    Galli, Giorgio
    Colucci, Chiara
    Oclon, Pawel
    THERMAL SCIENCE, 2019, 23 (02): : 1211 - 1223
  • [39] Measuring the natural convective heat transfer coefficient at the surface of electronic components
    Hanreich, G
    Nicolics, J
    IMTC/2001: PROCEEDINGS OF THE 18TH IEEE INSTRUMENTATION AND MEASUREMENT TECHNOLOGY CONFERENCE, VOLS 1-3: REDISCOVERING MEASUREMENT IN THE AGE OF INFORMATICS, 2001, : 1045 - 1050
  • [40] COMPUTATION OF CONVECTIVE HEAT TRANSFER COEFFICIENT FOR FINITE INCLINED AND ISOTHERMAL PLATE
    Bouksani, M.
    Bouaziz, M. N.
    MECHANIKA, 2017, 23 (04): : 537 - 544