Numerical Simulation of Volatile Organic Compounds during Condensation in a Vertical Tube

The purpose of this study is to analyze the combined heat and mass transfer through condensation of volatile organic compounds (VOCs), particularly alcohol (n-butanol-propanol) in the presence of non-condensable gas inside a vertical tube. An implicit finite difference method is employed to solve th...

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Main Authors: Youness El Hammami, Kaoutar Zine-Dine, Rachid Mir, Touria Midiouni, Mustapha Ait Hssain
Format: Article
Language:English
Published: MDPI AG 2020-12-01
Series:Proceedings
Subjects:
Online Access:https://www.mdpi.com/2504-3900/38/1/21
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author Youness El Hammami
Kaoutar Zine-Dine
Rachid Mir
Touria Midiouni
Mustapha Ait Hssain
author_facet Youness El Hammami
Kaoutar Zine-Dine
Rachid Mir
Touria Midiouni
Mustapha Ait Hssain
author_sort Youness El Hammami
collection DOAJ
description The purpose of this study is to analyze the combined heat and mass transfer through condensation of volatile organic compounds (VOCs), particularly alcohol (n-butanol-propanol) in the presence of non-condensable gas inside a vertical tube. An implicit finite difference method is employed to solve the coupled governing equations for liquid film and gas flow together with the interfacial matching conditions. The numerical results indicate that the Transfers are more intense at the entrance of the tube for the ternary mixture and promote heat and mass exchanges.
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spelling doaj.art-25f207694e7c45e8a69b171e5e0383d72023-11-21T02:38:35ZengMDPI AGProceedings2504-39002020-12-013812110.3390/proceedings2019038021Numerical Simulation of Volatile Organic Compounds during Condensation in a Vertical TubeYouness El Hammami0Kaoutar Zine-Dine1Rachid Mir2Touria Midiouni3Mustapha Ait Hssain4Laboratory of Mechanics, Processes of Energy and the Environment (LMP2E) National School of Applied Sciences, Ibn Zohr, Agadir, MoroccoLaboratory of Mechanics, Processes of Energy and the Environment (LMP2E) National School of Applied Sciences, Ibn Zohr, Agadir, MoroccoLaboratory of Mechanics, Processes of Energy and the Environment (LMP2E) National School of Applied Sciences, Ibn Zohr, Agadir, MoroccoLaboratory of Mechanics, Processes of Energy and the Environment (LMP2E) National School of Applied Sciences, Ibn Zohr, Agadir, MoroccoLaboratory of Mechanics, Processes of Energy and the Environment (LMP2E) National School of Applied Sciences, Ibn Zohr, Agadir, MoroccoThe purpose of this study is to analyze the combined heat and mass transfer through condensation of volatile organic compounds (VOCs), particularly alcohol (n-butanol-propanol) in the presence of non-condensable gas inside a vertical tube. An implicit finite difference method is employed to solve the coupled governing equations for liquid film and gas flow together with the interfacial matching conditions. The numerical results indicate that the Transfers are more intense at the entrance of the tube for the ternary mixture and promote heat and mass exchanges.https://www.mdpi.com/2504-3900/38/1/21pollutantsVOCscondensationphase changenumerical simulation formatting
spellingShingle Youness El Hammami
Kaoutar Zine-Dine
Rachid Mir
Touria Midiouni
Mustapha Ait Hssain
Numerical Simulation of Volatile Organic Compounds during Condensation in a Vertical Tube
Proceedings
pollutants
VOCs
condensation
phase change
numerical simulation formatting
title Numerical Simulation of Volatile Organic Compounds during Condensation in a Vertical Tube
title_full Numerical Simulation of Volatile Organic Compounds during Condensation in a Vertical Tube
title_fullStr Numerical Simulation of Volatile Organic Compounds during Condensation in a Vertical Tube
title_full_unstemmed Numerical Simulation of Volatile Organic Compounds during Condensation in a Vertical Tube
title_short Numerical Simulation of Volatile Organic Compounds during Condensation in a Vertical Tube
title_sort numerical simulation of volatile organic compounds during condensation in a vertical tube
topic pollutants
VOCs
condensation
phase change
numerical simulation formatting
url https://www.mdpi.com/2504-3900/38/1/21
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