Numerical Study of Heat and Mass Transfer Using Phase Change Materials

Phase Change Materials (PCM) absorb and release heat at preset temperatures. Due to their relatively high values of latent heat, they are capable of storing and releasing large amounts of energy during phase change. When a PCM is in its solid phase, it will absorb heat as the external temperature ri...

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Main Author: Mahdavi Nejad, Alireza
Other Authors: Mark W. Richman, Committee Member
Format: Others
Published: Digital WPI 2018
Subjects:
Online Access:https://digitalcommons.wpi.edu/etd-dissertations/500
https://digitalcommons.wpi.edu/cgi/viewcontent.cgi?article=1496&context=etd-dissertations
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spelling ndltd-wpi.edu-oai-digitalcommons.wpi.edu-etd-dissertations-14962019-03-22T05:43:12Z Numerical Study of Heat and Mass Transfer Using Phase Change Materials Mahdavi Nejad, Alireza Phase Change Materials (PCM) absorb and release heat at preset temperatures. Due to their relatively high values of latent heat, they are capable of storing and releasing large amounts of energy during phase change. When a PCM is in its solid phase, it will absorb heat as the external temperature rises. The temperature of the PCM will mirror the external temperature until the melting point of PCM is reached. At this stage, the PCM will begin to melt with almost no change in its temperature. PCM plays an opposite role when the external temperature drops. It releases the stored energy back while going through phase change from liquid phase to solid phase. The present work is a numerical study towards fundamental understanding of the impact of using PCM on enhancement of heat and mass transfer in several scenarios. A numerical analysis has been carried out to determine the impact of presence of PCM on the insulating characteristics of paper board packaging. Two different cases of a layered PCM and uniformly dispersed PCM within the packaging wall are considered. The numerical results illustrate significant reduction in exchange of heat between the exterior and the interior of the packaging. Specifically, the unique concept of utilizing PCM in drying of paper is proposed and a numerical investigation is performed to determine the corresponding transport characteristics. The results indicate that the PCM acts as a heat source and a heat sink alternatingly throughout the conventional paper drying process, enhancing the drying energy efficiency. This study also included presence of gas-fired infrared emitters in the drying process as well for which the spectral absorption coefficient of PCM was measured and incorporated into the theoretical model. Finally, the impact of the presence of PCM in convective air-drying of moist paper is numerically investigated. The hot air ow is generated by an in-line jet nozzle. The air impinges on the exposed surface of the moist paper while the other side is considered to be perfectly insulated. The results provide the corresponding air flow field as well as air temperature distribution in between the nozzle exit and the surface of the moist paper. The results also reveal the enhancement of drying rates with PCM, fundamentally confirming the role of PCM on enhancing the energy efficiency of convective drying of moist paper. 2018-04-20T07:00:00Z text application/pdf https://digitalcommons.wpi.edu/etd-dissertations/500 https://digitalcommons.wpi.edu/cgi/viewcontent.cgi?article=1496&context=etd-dissertations Doctoral Dissertations (All Dissertations, All Years) Digital WPI Mark W. Richman, Committee Member Jamal S. Yagoobi, Advisor John M. Sullivan, Jr., Committee Member Brian J. Savilonis, Committee Member Burt S. Tilley, Committee Member packaging drying phase change material
collection NDLTD
format Others
sources NDLTD
topic packaging drying phase change material
spellingShingle packaging drying phase change material
Mahdavi Nejad, Alireza
Numerical Study of Heat and Mass Transfer Using Phase Change Materials
description Phase Change Materials (PCM) absorb and release heat at preset temperatures. Due to their relatively high values of latent heat, they are capable of storing and releasing large amounts of energy during phase change. When a PCM is in its solid phase, it will absorb heat as the external temperature rises. The temperature of the PCM will mirror the external temperature until the melting point of PCM is reached. At this stage, the PCM will begin to melt with almost no change in its temperature. PCM plays an opposite role when the external temperature drops. It releases the stored energy back while going through phase change from liquid phase to solid phase. The present work is a numerical study towards fundamental understanding of the impact of using PCM on enhancement of heat and mass transfer in several scenarios. A numerical analysis has been carried out to determine the impact of presence of PCM on the insulating characteristics of paper board packaging. Two different cases of a layered PCM and uniformly dispersed PCM within the packaging wall are considered. The numerical results illustrate significant reduction in exchange of heat between the exterior and the interior of the packaging. Specifically, the unique concept of utilizing PCM in drying of paper is proposed and a numerical investigation is performed to determine the corresponding transport characteristics. The results indicate that the PCM acts as a heat source and a heat sink alternatingly throughout the conventional paper drying process, enhancing the drying energy efficiency. This study also included presence of gas-fired infrared emitters in the drying process as well for which the spectral absorption coefficient of PCM was measured and incorporated into the theoretical model. Finally, the impact of the presence of PCM in convective air-drying of moist paper is numerically investigated. The hot air ow is generated by an in-line jet nozzle. The air impinges on the exposed surface of the moist paper while the other side is considered to be perfectly insulated. The results provide the corresponding air flow field as well as air temperature distribution in between the nozzle exit and the surface of the moist paper. The results also reveal the enhancement of drying rates with PCM, fundamentally confirming the role of PCM on enhancing the energy efficiency of convective drying of moist paper.
author2 Mark W. Richman, Committee Member
author_facet Mark W. Richman, Committee Member
Mahdavi Nejad, Alireza
author Mahdavi Nejad, Alireza
author_sort Mahdavi Nejad, Alireza
title Numerical Study of Heat and Mass Transfer Using Phase Change Materials
title_short Numerical Study of Heat and Mass Transfer Using Phase Change Materials
title_full Numerical Study of Heat and Mass Transfer Using Phase Change Materials
title_fullStr Numerical Study of Heat and Mass Transfer Using Phase Change Materials
title_full_unstemmed Numerical Study of Heat and Mass Transfer Using Phase Change Materials
title_sort numerical study of heat and mass transfer using phase change materials
publisher Digital WPI
publishDate 2018
url https://digitalcommons.wpi.edu/etd-dissertations/500
https://digitalcommons.wpi.edu/cgi/viewcontent.cgi?article=1496&context=etd-dissertations
work_keys_str_mv AT mahdavinejadalireza numericalstudyofheatandmasstransferusingphasechangematerials
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