A Numerical Study of Fluid Flow and Heat Transfer in Carbon Dioxide Enclosures on Mars

In order to support the future thermal control and energy conservation design for the Mars rover, numerical studies on natural convection in CO2 enclosures on Mars’ surface were conducted for both horizontal and vertical enclosures. The parameters are as follows: the atmospheric pressure was 1000 Pa...

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Main Authors: Yue Sun, Guiping Lin, Xueqin Bu, Lizhan Bai, Chunhua Xiao, Dongsheng Wen
Format: Article
Language:English
Published: MDPI AG 2018-03-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/11/4/756
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spelling doaj-ac6a3cbb2534404688092a5e8b17ff3b2020-11-24T21:38:18ZengMDPI AGEnergies1996-10732018-03-0111475610.3390/en11040756en11040756A Numerical Study of Fluid Flow and Heat Transfer in Carbon Dioxide Enclosures on MarsYue Sun0Guiping Lin1Xueqin Bu2Lizhan Bai3Chunhua Xiao4Dongsheng Wen5Laboratory of Fundamental Science on Ergonomics and Environmental Control, School of Aeronautic Science and Engineering, Beihang University, Beijing 100191, ChinaLaboratory of Fundamental Science on Ergonomics and Environmental Control, School of Aeronautic Science and Engineering, Beihang University, Beijing 100191, ChinaLaboratory of Fundamental Science on Ergonomics and Environmental Control, School of Aeronautic Science and Engineering, Beihang University, Beijing 100191, ChinaLaboratory of Fundamental Science on Ergonomics and Environmental Control, School of Aeronautic Science and Engineering, Beihang University, Beijing 100191, ChinaState Key Laboratory of Aerodynamics, China Aerodynamics Research and Development Center, Mianyang 621000, ChinaLaboratory of Fundamental Science on Ergonomics and Environmental Control, School of Aeronautic Science and Engineering, Beihang University, Beijing 100191, ChinaIn order to support the future thermal control and energy conservation design for the Mars rover, numerical studies on natural convection in CO2 enclosures on Mars’ surface were conducted for both horizontal and vertical enclosures. The parameters are as follows: the atmospheric pressure was 1000 Pa, the gravitational acceleration was 3.62 m/s2, and the Prandtl number was 0.77. The heat flux, temperature, and velocity fields of the CO2 enclosures were obtained with the aspect ratio ranging from 5.56 to 200 and the Grashof number ranging from 430 to 2.6 × 104. It was found that natural convection formed more easily in the horizontal enclosures than that in the vertical enclosures when the enclosures had same thickness. With the increasing thickness of the enclosures, Rayleigh–Bénard convections formed in the horizontal enclosures, while only single-cell convections formed in the vertical enclosures. The heat flux through the horizontal enclosures was greater than that through the vertical enclosures with the same thickness when natural convection formed. The maximum difference between them reached 35.26%, which was illustrated by the field synergy principle. A hysteresis phenomenon of the natural convection dominating the heat transfer was found in the vertical enclosure on Mars’ surface. New values for the critical Grashof number and correlations for the average Nusselt number for both the horizontal and vertical CO2 enclosures on Mars’ surface were also developed.http://www.mdpi.com/1996-1073/11/4/756carbon dioxide (CO2) enclosurenatural convectioncorrelationMarsfield synergy principle
collection DOAJ
language English
format Article
sources DOAJ
author Yue Sun
Guiping Lin
Xueqin Bu
Lizhan Bai
Chunhua Xiao
Dongsheng Wen
spellingShingle Yue Sun
Guiping Lin
Xueqin Bu
Lizhan Bai
Chunhua Xiao
Dongsheng Wen
A Numerical Study of Fluid Flow and Heat Transfer in Carbon Dioxide Enclosures on Mars
Energies
carbon dioxide (CO2) enclosure
natural convection
correlation
Mars
field synergy principle
author_facet Yue Sun
Guiping Lin
Xueqin Bu
Lizhan Bai
Chunhua Xiao
Dongsheng Wen
author_sort Yue Sun
title A Numerical Study of Fluid Flow and Heat Transfer in Carbon Dioxide Enclosures on Mars
title_short A Numerical Study of Fluid Flow and Heat Transfer in Carbon Dioxide Enclosures on Mars
title_full A Numerical Study of Fluid Flow and Heat Transfer in Carbon Dioxide Enclosures on Mars
title_fullStr A Numerical Study of Fluid Flow and Heat Transfer in Carbon Dioxide Enclosures on Mars
title_full_unstemmed A Numerical Study of Fluid Flow and Heat Transfer in Carbon Dioxide Enclosures on Mars
title_sort numerical study of fluid flow and heat transfer in carbon dioxide enclosures on mars
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2018-03-01
description In order to support the future thermal control and energy conservation design for the Mars rover, numerical studies on natural convection in CO2 enclosures on Mars’ surface were conducted for both horizontal and vertical enclosures. The parameters are as follows: the atmospheric pressure was 1000 Pa, the gravitational acceleration was 3.62 m/s2, and the Prandtl number was 0.77. The heat flux, temperature, and velocity fields of the CO2 enclosures were obtained with the aspect ratio ranging from 5.56 to 200 and the Grashof number ranging from 430 to 2.6 × 104. It was found that natural convection formed more easily in the horizontal enclosures than that in the vertical enclosures when the enclosures had same thickness. With the increasing thickness of the enclosures, Rayleigh–Bénard convections formed in the horizontal enclosures, while only single-cell convections formed in the vertical enclosures. The heat flux through the horizontal enclosures was greater than that through the vertical enclosures with the same thickness when natural convection formed. The maximum difference between them reached 35.26%, which was illustrated by the field synergy principle. A hysteresis phenomenon of the natural convection dominating the heat transfer was found in the vertical enclosure on Mars’ surface. New values for the critical Grashof number and correlations for the average Nusselt number for both the horizontal and vertical CO2 enclosures on Mars’ surface were also developed.
topic carbon dioxide (CO2) enclosure
natural convection
correlation
Mars
field synergy principle
url http://www.mdpi.com/1996-1073/11/4/756
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