Characteristics of natural convection heat transfer in composite cavity

In order to study the influence of the nature of the mining airspace on the natural convection heat transfer in the unventilated working face, we establish a numerical model of natural convection in a composite cavity containing porous media by CFD method. The effects of different Rayleigh numbers (...

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Main Authors: Changkui Lei, Yaoqian Zhu, Suntong Qiu, Chengbo Wang, Ruoyu Bao, Cunbao Deng
Format: Article
Language:English
Published: Elsevier 2024-04-01
Series:Case Studies in Thermal Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X24002855
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author Changkui Lei
Yaoqian Zhu
Suntong Qiu
Chengbo Wang
Ruoyu Bao
Cunbao Deng
author_facet Changkui Lei
Yaoqian Zhu
Suntong Qiu
Chengbo Wang
Ruoyu Bao
Cunbao Deng
author_sort Changkui Lei
collection DOAJ
description In order to study the influence of the nature of the mining airspace on the natural convection heat transfer in the unventilated working face, we establish a numerical model of natural convection in a composite cavity containing porous media by CFD method. The effects of different Rayleigh numbers (Ra), porous media thicknesses, and porosities ε on the natural convection temperature and velocity fields and heat dissipation from the heat source were comparatively analyzed. The results show that the larger Ra is, the stronger the natural convection flow and heat transfer in the composite cavity; when the thickness of porous media increases from 0.2 to 0.75, the average Nussel number (Nuave) of the high-temperature wall surface decreases by 40.38%, the Nuave of the interfaces decreases by 6.15%, the maximum dimensionless velocity of the boundary layer in the porous region decreases from 10,771 to 3775, and the dimensionless horizontal line in the center of cavity decreases by 0.05, indicating that the natural convection temperature and velocity fields and heat dissipation from the heat source are affected by different Ra. Temperature decreased by 0.05, demonstrating that the increase in the thickness of porous media will weaken the strength of the fluid side of the flow and heat transfer; porosity increased from 0.2 to 0.8, and the interfacial Nuave increased by 5.61%, demonstrating that the larger porosity makes the porous media area flow and heat transfer enhancement, but has a certain weakening effect on the flow and heat transfer in the fluid domain. The results of the study can be used for the natural convection flow and heat transfer in the unventilated coal mining face, and provide some reference value for avoiding the thermal damage of mechanical equipment.
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spelling doaj.art-34eb05eb22b4489aa6b4e84451a8b3b42024-04-02T04:15:07ZengElsevierCase Studies in Thermal Engineering2214-157X2024-04-0156104254Characteristics of natural convection heat transfer in composite cavityChangkui Lei0Yaoqian Zhu1Suntong Qiu2Chengbo Wang3Ruoyu Bao4Cunbao Deng5College of Safety and Emergency Management Engineering, Taiyuan University of Technology, Taiyuan, Shanxi, 030024, China; Corresponding author.College of Safety and Emergency Management Engineering, Taiyuan University of Technology, Taiyuan, Shanxi, 030024, China; Corresponding author.College of Safety and Emergency Management Engineering, Taiyuan University of Technology, Taiyuan, Shanxi, 030024, ChinaCollege of Safety and Emergency Management Engineering, Taiyuan University of Technology, Taiyuan, Shanxi, 030024, ChinaInformation Research Institute of the Ministry of Emergency Management, Beijing, 100020, ChinaCollege of Safety and Emergency Management Engineering, Taiyuan University of Technology, Taiyuan, Shanxi, 030024, ChinaIn order to study the influence of the nature of the mining airspace on the natural convection heat transfer in the unventilated working face, we establish a numerical model of natural convection in a composite cavity containing porous media by CFD method. The effects of different Rayleigh numbers (Ra), porous media thicknesses, and porosities ε on the natural convection temperature and velocity fields and heat dissipation from the heat source were comparatively analyzed. The results show that the larger Ra is, the stronger the natural convection flow and heat transfer in the composite cavity; when the thickness of porous media increases from 0.2 to 0.75, the average Nussel number (Nuave) of the high-temperature wall surface decreases by 40.38%, the Nuave of the interfaces decreases by 6.15%, the maximum dimensionless velocity of the boundary layer in the porous region decreases from 10,771 to 3775, and the dimensionless horizontal line in the center of cavity decreases by 0.05, indicating that the natural convection temperature and velocity fields and heat dissipation from the heat source are affected by different Ra. Temperature decreased by 0.05, demonstrating that the increase in the thickness of porous media will weaken the strength of the fluid side of the flow and heat transfer; porosity increased from 0.2 to 0.8, and the interfacial Nuave increased by 5.61%, demonstrating that the larger porosity makes the porous media area flow and heat transfer enhancement, but has a certain weakening effect on the flow and heat transfer in the fluid domain. The results of the study can be used for the natural convection flow and heat transfer in the unventilated coal mining face, and provide some reference value for avoiding the thermal damage of mechanical equipment.http://www.sciencedirect.com/science/article/pii/S2214157X24002855Natural convectionNumerical simulationComposite cavityRayleigh numberPorosity
spellingShingle Changkui Lei
Yaoqian Zhu
Suntong Qiu
Chengbo Wang
Ruoyu Bao
Cunbao Deng
Characteristics of natural convection heat transfer in composite cavity
Case Studies in Thermal Engineering
Natural convection
Numerical simulation
Composite cavity
Rayleigh number
Porosity
title Characteristics of natural convection heat transfer in composite cavity
title_full Characteristics of natural convection heat transfer in composite cavity
title_fullStr Characteristics of natural convection heat transfer in composite cavity
title_full_unstemmed Characteristics of natural convection heat transfer in composite cavity
title_short Characteristics of natural convection heat transfer in composite cavity
title_sort characteristics of natural convection heat transfer in composite cavity
topic Natural convection
Numerical simulation
Composite cavity
Rayleigh number
Porosity
url http://www.sciencedirect.com/science/article/pii/S2214157X24002855
work_keys_str_mv AT changkuilei characteristicsofnaturalconvectionheattransferincompositecavity
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AT suntongqiu characteristicsofnaturalconvectionheattransferincompositecavity
AT chengbowang characteristicsofnaturalconvectionheattransferincompositecavity
AT ruoyubao characteristicsofnaturalconvectionheattransferincompositecavity
AT cunbaodeng characteristicsofnaturalconvectionheattransferincompositecavity