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Phase Change Material (PCM)-based thermalstorage system for managing the sonochemical reactor heat: Thermodynamic analysis of the liquid height impact

As an alternative to a water-based cooling system for a sonoreactor, the present work presents for the first time the use of a phase change material for the management and storage of the dissipated heat within the sonicated water. The performance of the PCM is analyzed as a function of liquid height...

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Detalles Bibliográficos
Autores principales: Chibani, Atef, Dehane, Aissa, Merouani, Slimane, Hamdaoui, Oualid
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10320240/
https://www.ncbi.nlm.nih.gov/pubmed/37354766
http://dx.doi.org/10.1016/j.ultsonch.2023.106483
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author Chibani, Atef
Dehane, Aissa
Merouani, Slimane
Hamdaoui, Oualid
author_facet Chibani, Atef
Dehane, Aissa
Merouani, Slimane
Hamdaoui, Oualid
author_sort Chibani, Atef
collection PubMed
description As an alternative to a water-based cooling system for a sonoreactor, the present work presents for the first time the use of a phase change material for the management and storage of the dissipated heat within the sonicated water. The performance of the PCM is analyzed as a function of liquid height (LH = 5.1, 10.2, 15.3, and 20.4 cm) at a frequency of 300 kHz and two electric powers (P(E) = 20 and 60 W). The effective powers dissipated in the irradiated water were determined by the calorimetric technique. A computational fluid dynamics (CFD) model (implemented in ANSYS Fluent® software), was used for the analysis of the combined system (sonoreactor + PCM-thermal unit) at different operating conditions (liquid height and electric power). By analyzing the different outputs (variation of temperature, velocity, enthalpy, liquid fraction of PCM) of the used CFD model, more clarifications are provided about the behaviour of the combined system (sonoreactor + PCM-thermal unit) as function of the liquid height (5.1–20.4 cm) and electric power (20 and 60 W). In terms of temperature, velocity, enthalpy and liquid fraction of the PCM, promising results were obtained in spite of the low thermal conductivity of the employed PCM. The best performance of the combined system (sonoreactor and thermal unit) was obtained at the liquid height of 15.3 cm (corresponding to a water volume of 300 mL) with a similar behaviour (evolution of temperature, velocity, enthalpy, and liquid fraction of the PCM) at both electric powers (i.e., 20 and 60 W) with an intensified response at the P(E) = 60 W.
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spelling pubmed-103202402023-07-06 Phase Change Material (PCM)-based thermalstorage system for managing the sonochemical reactor heat: Thermodynamic analysis of the liquid height impact Chibani, Atef Dehane, Aissa Merouani, Slimane Hamdaoui, Oualid Ultrason Sonochem Ultrasonic Degradation of Pollutant As an alternative to a water-based cooling system for a sonoreactor, the present work presents for the first time the use of a phase change material for the management and storage of the dissipated heat within the sonicated water. The performance of the PCM is analyzed as a function of liquid height (LH = 5.1, 10.2, 15.3, and 20.4 cm) at a frequency of 300 kHz and two electric powers (P(E) = 20 and 60 W). The effective powers dissipated in the irradiated water were determined by the calorimetric technique. A computational fluid dynamics (CFD) model (implemented in ANSYS Fluent® software), was used for the analysis of the combined system (sonoreactor + PCM-thermal unit) at different operating conditions (liquid height and electric power). By analyzing the different outputs (variation of temperature, velocity, enthalpy, liquid fraction of PCM) of the used CFD model, more clarifications are provided about the behaviour of the combined system (sonoreactor + PCM-thermal unit) as function of the liquid height (5.1–20.4 cm) and electric power (20 and 60 W). In terms of temperature, velocity, enthalpy and liquid fraction of the PCM, promising results were obtained in spite of the low thermal conductivity of the employed PCM. The best performance of the combined system (sonoreactor and thermal unit) was obtained at the liquid height of 15.3 cm (corresponding to a water volume of 300 mL) with a similar behaviour (evolution of temperature, velocity, enthalpy, and liquid fraction of the PCM) at both electric powers (i.e., 20 and 60 W) with an intensified response at the P(E) = 60 W. Elsevier 2023-06-14 /pmc/articles/PMC10320240/ /pubmed/37354766 http://dx.doi.org/10.1016/j.ultsonch.2023.106483 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Ultrasonic Degradation of Pollutant
Chibani, Atef
Dehane, Aissa
Merouani, Slimane
Hamdaoui, Oualid
Phase Change Material (PCM)-based thermalstorage system for managing the sonochemical reactor heat: Thermodynamic analysis of the liquid height impact
title Phase Change Material (PCM)-based thermalstorage system for managing the sonochemical reactor heat: Thermodynamic analysis of the liquid height impact
title_full Phase Change Material (PCM)-based thermalstorage system for managing the sonochemical reactor heat: Thermodynamic analysis of the liquid height impact
title_fullStr Phase Change Material (PCM)-based thermalstorage system for managing the sonochemical reactor heat: Thermodynamic analysis of the liquid height impact
title_full_unstemmed Phase Change Material (PCM)-based thermalstorage system for managing the sonochemical reactor heat: Thermodynamic analysis of the liquid height impact
title_short Phase Change Material (PCM)-based thermalstorage system for managing the sonochemical reactor heat: Thermodynamic analysis of the liquid height impact
title_sort phase change material (pcm)-based thermalstorage system for managing the sonochemical reactor heat: thermodynamic analysis of the liquid height impact
topic Ultrasonic Degradation of Pollutant
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10320240/
https://www.ncbi.nlm.nih.gov/pubmed/37354766
http://dx.doi.org/10.1016/j.ultsonch.2023.106483
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