Large-eddy-simulation of turbulent buoyant flow and conjugate heat transfer in a cubic cavity with fin ribbed radiators

被引:7
|
作者
Siddiqa, Sadia [1 ,2 ]
Naqvi, Sahrish Batool [3 ]
Azam, Muhammad [2 ,4 ]
Aly, Abdelraheem M. [5 ,6 ]
Molla, Md. Mamun [7 ,8 ,9 ]
机构
[1] Prince Sultan Univ, Coll Humanities & Sci, Dept Math & Sci, Riyadh, Saudi Arabia
[2] Pebble Al, Artificial Intelligence & Computat Sci Lab, Ottawa, ON, Canada
[3] Univ Minho, Dept Polymer Engn, Guimaraes, Portugal
[4] Concordia Univ, Concordia Inst Informat Syst Engn, Montreal, PQ, Canada
[5] King Khalid Univ, Coll Sci, Dept Math, Abha, Saudi Arabia
[6] South Valley Univ, Fac Sci, Dept Math, Qena, Egypt
[7] North South Univ, Dept Math & Phys, Dhaka, Bangladesh
[8] North South Univ, Ctr Appl Sci Comp CASC, Dhaka, Bangladesh
[9] North South Univ, Dept Math & Phys, Dhaka 1229, Bangladesh
关键词
Conjugate heat transfer; convective flow; fins; large-eddy-simulation; OpenFOAM; NATURAL-CONVECTION; RECTANGULAR FIN; ELECTRONIC EQUIPMENT; MIXED CONVECTION; CFD ANALYSIS; SUBSTRATE; SYSTEMS; CHANNEL; DESIGN;
D O I
10.1080/10407782.2022.2157351
中图分类号
O414.1 [热力学];
学科分类号
摘要
Turbulent convective flow in a cubic cavity is a fundamental model observed in various processes that appeared in environmental and industrial applications. The turbulent fluctuations in the flow field, fluid-solid interaction/coupling, and the transient nature of the problem make it challenging to establish numerical modeling. The turbulent flow and convective heat transfer in a cubic cavity fixed with three fins are studied here. The numerical solutions are obtained through large-eddy simulation with Smagorinsky subgrid-scale model combined with conjugate heat transfer to incorporate temperature distribution in solid fins. The upper and lower walls of the enclosure are differently heated, while the lateral walls are adiabatic, and equally spaced conductive fins are located at the bottom surface. The solutions are initially compared with the numerical and experimental results for validation purposes. Successively, the model is applied to explore the impact of a material (copper) that makes up the horizontal wall on the flow field. We found that the heat transfer essentially alters the turbulent field, and the flow field becomes less homogeneous along the vertical direction. A number of streaky and coherent turbulent structures are found with varying magnitudes. The Q-criterion, second-invariant of the velocity-gradient tensor, predicted that strong vortices occur near the fins and in the surrounding regions of the cavity. Moreover, the energy (entropy) spectral, which plays a crucial role in engineering applications and turbulent theory, is also presented, showing the contribution of each frequency component to the velocity (temperature) variance at a given point. The velocity and temperature fields are found to be anti-symmetric, except close to the front and back walls. The major cause for this is the conducting bottom and fins, which produces thermal stratification in the cavity. The conducting bottom induces the locally unstable thermal stratification in the vicinity of the wall, which intensifies the turbulence as the flow advances toward the temperature-controlled boundaries. Further, the turbulent exchange in the central region is more responsible for the heat transfer than convection that occurs due to the differentially heated walls.
引用
收藏
页码:900 / 918
页数:19
相关论文
共 50 条
  • [21] Large eddy simulation of turbulent flow and heat transfer in a rotating rectangular duct
    Ma, Liangdong
    Zhang, Jili
    Zhang, Dingcai
    FIRST INTERNATIONAL CONFERENCE ON BUILDING ENERGY AND ENVIRONMENT, PROCEEDINGS VOLS 1-3, 2008, : 1163 - 1170
  • [22] LARGE EDDY SIMULATION OF FREE SURFACE TURBULENT CHANNEL FLOW WITH HEAT TRANSFER
    Zhong Feng-quan
    Journal of Hydrodynamics(SerB)., 2002, (01) : 16 - 22
  • [23] An investigation of turbulent open channel flow with heat transfer by large eddy simulation
    Wang, L
    Dong, YH
    Lu, XY
    COMPUTERS & FLUIDS, 2005, 34 (01) : 23 - 47
  • [24] Large eddy simulation of free surface turbulent channel flow with heat transfer
    Zhong, Feng-Quan
    Liu, Nan-Sheng
    Lu, Xi-Yun
    Zhuang, Li-Xian
    Journal of Hydrodynamics, 2002, 14 (01) : 16 - 22
  • [25] Large Eddy Simulation of Turbulent Heat Transfer in Curved-Pipe Flow
    Kang, Changwoo
    Yang, Kyung-Soo
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2016, 138 (01):
  • [26] LARGE EDDY SIMULATION OF TURBULENT FLOW AND HEAT TRANSFER IN A KENICS STATIC MIXER
    Murasiewicz, Halina
    Zakrzewska, Barbara
    CHEMICAL AND PROCESS ENGINEERING-INZYNIERIA CHEMICZNA I PROCESOWA, 2019, 40 (01): : 87 - 99
  • [27] Large eddy simulation of enhanced heat transfer in pulsatile turbulent channel flow
    van Buren, S.
    Miranda, A. Cardenas
    Polifke, W.
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2019, 144
  • [28] Large-Eddy Simulation for Turbulent Heat Transfer
    Tafti, Danesh K.
    JOURNAL OF THERMAL SCIENCE AND ENGINEERING APPLICATIONS, 2013, 5 (02)
  • [29] Large eddy simulation of turbulent flow over an open cavity
    Choi, HC
    Hahn, SY
    Choi, JH
    ADVANCES IN TURBULENCE VIII, 2000, : 105 - 108
  • [30] Predictions of Conjugate Heat Transfer in Turbulent Channel Flow Using Advanced Wall-Modeled Large Eddy Simulation Techniques
    Li, Yongxiang
    Ries, Florian
    Nishad, Kaushal
    Sadiki, Amsini
    ENTROPY, 2021, 23 (06)