Thermal efficiency assessment of MPCM and sand in two concentric cylinders pulsating fluidized bed

Abstract Fluidized beds are widely used in various industrial processes due to their excellent characteristics in drying, chemical reactors, solids separation, fluid catalytic cracking and combustion. Integrating phase change materials (PCMs) into fluidized beds offers a promising solution for therm...

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Main Authors: Amin Salehianfard, Mohammad Reza Assari, Milad Setareh, Hassan Basirat Tabrizi
Format: Article
Language:English
Published: Springer 2025-04-01
Series:Discover Applied Sciences
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Online Access:https://doi.org/10.1007/s42452-025-06921-6
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author Amin Salehianfard
Mohammad Reza Assari
Milad Setareh
Hassan Basirat Tabrizi
author_facet Amin Salehianfard
Mohammad Reza Assari
Milad Setareh
Hassan Basirat Tabrizi
author_sort Amin Salehianfard
collection DOAJ
description Abstract Fluidized beds are widely used in various industrial processes due to their excellent characteristics in drying, chemical reactors, solids separation, fluid catalytic cracking and combustion. Integrating phase change materials (PCMs) into fluidized beds offers a promising solution for thermal energy storage, effectively absorbing and storing thermal energy from periodic or alternating heat sources as latent heat. This technology holds significant potential for enhancing thermal energy storage capabilities of the fluidized beds., The thermal energy storage and charging and discharging efficiencies of MPCM in a pulsating fluidized bed comprising two concentric pipes have not been investigated yet. This study investigates a solid–gas pulsed fluidized bed consisting of two concentric pipes filled with microencapsulated phase change material (MPCM) and sand as the thermal energy storage system. Experiments are carried out to measure the thermal energy storage between the inner pipe containing sand and the MPCM-containing bed, analyzing the effects of the input velocity and pulsation frequency on the energy storage and recovery efficiencies of the MPCM-containing bed. Experiments are performed at three inlet velocity to minimum fluidization velocity (U/U mf) ratios of 1.1, 1.3, and 1.5, and three frequencies of 1.0, 2.5, and 5.0 Hz. Results indicate that the pulsating fluidized bed has higher thermal energy storage and recovery efficiencies than the continuous fluidized bed. Moreover, the thermal energy storage efficiency increases as the U/U mf and pulsation frequency increase; is maximized to 86.01% at a U/U mf of 1.5 and frequency of 5 Hz. In addition, higher frequencies accelerate the charging process, and the bed reaches the stabilized temperature in a shorter time. It is found that the efficiency of thermal energy recovery increases as the frequency increases and the U/U mf reduces. The maximum efficiency of thermal energy recovery is equal to 94.02% at a U/U mf of 1.1 and a frequency of 5 Hz.
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spelling doaj-art-ede6d3203cda4a11b074a9c53c32b25f2025-08-20T02:28:10ZengSpringerDiscover Applied Sciences3004-92612025-04-017511810.1007/s42452-025-06921-6Thermal efficiency assessment of MPCM and sand in two concentric cylinders pulsating fluidized bedAmin Salehianfard0Mohammad Reza Assari1Milad Setareh2Hassan Basirat Tabrizi3Mechanical Engineering Department, Jundi-Shapur University of TechnologyMechanical Engineering Department, Jundi-Shapur University of TechnologyMechanical Engineering Department, Jundi-Shapur University of TechnologyMechanical Engineering Department, Amirkabir University of TechnologyAbstract Fluidized beds are widely used in various industrial processes due to their excellent characteristics in drying, chemical reactors, solids separation, fluid catalytic cracking and combustion. Integrating phase change materials (PCMs) into fluidized beds offers a promising solution for thermal energy storage, effectively absorbing and storing thermal energy from periodic or alternating heat sources as latent heat. This technology holds significant potential for enhancing thermal energy storage capabilities of the fluidized beds., The thermal energy storage and charging and discharging efficiencies of MPCM in a pulsating fluidized bed comprising two concentric pipes have not been investigated yet. This study investigates a solid–gas pulsed fluidized bed consisting of two concentric pipes filled with microencapsulated phase change material (MPCM) and sand as the thermal energy storage system. Experiments are carried out to measure the thermal energy storage between the inner pipe containing sand and the MPCM-containing bed, analyzing the effects of the input velocity and pulsation frequency on the energy storage and recovery efficiencies of the MPCM-containing bed. Experiments are performed at three inlet velocity to minimum fluidization velocity (U/U mf) ratios of 1.1, 1.3, and 1.5, and three frequencies of 1.0, 2.5, and 5.0 Hz. Results indicate that the pulsating fluidized bed has higher thermal energy storage and recovery efficiencies than the continuous fluidized bed. Moreover, the thermal energy storage efficiency increases as the U/U mf and pulsation frequency increase; is maximized to 86.01% at a U/U mf of 1.5 and frequency of 5 Hz. In addition, higher frequencies accelerate the charging process, and the bed reaches the stabilized temperature in a shorter time. It is found that the efficiency of thermal energy recovery increases as the frequency increases and the U/U mf reduces. The maximum efficiency of thermal energy recovery is equal to 94.02% at a U/U mf of 1.1 and a frequency of 5 Hz.https://doi.org/10.1007/s42452-025-06921-6Pulsating fluidized bedConcentric pipesMicroencapsulated phase change materialContinuous fluidized bedThermal energy storage
spellingShingle Amin Salehianfard
Mohammad Reza Assari
Milad Setareh
Hassan Basirat Tabrizi
Thermal efficiency assessment of MPCM and sand in two concentric cylinders pulsating fluidized bed
Discover Applied Sciences
Pulsating fluidized bed
Concentric pipes
Microencapsulated phase change material
Continuous fluidized bed
Thermal energy storage
title Thermal efficiency assessment of MPCM and sand in two concentric cylinders pulsating fluidized bed
title_full Thermal efficiency assessment of MPCM and sand in two concentric cylinders pulsating fluidized bed
title_fullStr Thermal efficiency assessment of MPCM and sand in two concentric cylinders pulsating fluidized bed
title_full_unstemmed Thermal efficiency assessment of MPCM and sand in two concentric cylinders pulsating fluidized bed
title_short Thermal efficiency assessment of MPCM and sand in two concentric cylinders pulsating fluidized bed
title_sort thermal efficiency assessment of mpcm and sand in two concentric cylinders pulsating fluidized bed
topic Pulsating fluidized bed
Concentric pipes
Microencapsulated phase change material
Continuous fluidized bed
Thermal energy storage
url https://doi.org/10.1007/s42452-025-06921-6
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AT miladsetareh thermalefficiencyassessmentofmpcmandsandintwoconcentriccylinderspulsatingfluidizedbed
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