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Phase Change Process in a Zigzag Plate Latent Heat Storage System during Melting and Solidification

Applying a well-performing heat exchanger is an efficient way to fortify the relatively low thermal response of phase-change materials (PCMs), which have broad application prospects in the fields of thermal management and energy storage. In this study, an improved PCM melting and solidification in c...

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Autores principales: Mahani, Roohollah Babaei, Mohammed, Hayder I., Mahdi, Jasim M., Alamshahi, Farhad, Ghalambaz, Mohammad, Talebizadehsardari, Pouyan, Yaïci, Wahiba
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7587217/
https://www.ncbi.nlm.nih.gov/pubmed/33053792
http://dx.doi.org/10.3390/molecules25204643
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author Mahani, Roohollah Babaei
Mohammed, Hayder I.
Mahdi, Jasim M.
Alamshahi, Farhad
Ghalambaz, Mohammad
Talebizadehsardari, Pouyan
Yaïci, Wahiba
author_facet Mahani, Roohollah Babaei
Mohammed, Hayder I.
Mahdi, Jasim M.
Alamshahi, Farhad
Ghalambaz, Mohammad
Talebizadehsardari, Pouyan
Yaïci, Wahiba
author_sort Mahani, Roohollah Babaei
collection PubMed
description Applying a well-performing heat exchanger is an efficient way to fortify the relatively low thermal response of phase-change materials (PCMs), which have broad application prospects in the fields of thermal management and energy storage. In this study, an improved PCM melting and solidification in corrugated (zigzag) plate heat exchanger are numerically examined compared with smooth (flat) plate heat exchanger in both horizontal and vertical positions. The effects of the channel width (0.5 W, W, and 2 W) and the airflow temperature (318 K, 323 K, and 328 K) are exclusively studied and reported. The results reveal the much better performance of the horizontal corrugated configuration compared with the smooth channel during both melting and solidification modes. It is found that the melting rate is about 8% faster, and the average temperature is 4 K higher in the corrugated region compared with the smooth region because of the large heat-exchange surface area, which facilitates higher rates of heat transfer into the PCM channel. In addition to the higher performance, a more compact unit can be achieved using the corrugated system. Moreover, applying the half-width PCM channel accelerates the melting rate by eight times compared to the double-width channel. Meanwhile, applying thicker channels provides faster solidification rates. The melting rate is proportional to the airflow temperature. The PCM melts within 274 s when the airflow temperature is 328 K. However, the melting time increases to 460 s for the airflow temperature of 308 K. Moreover, the PCM solidifies in 250 s and 405 s in the cases of 318 K and 328 K airflow temperatures, respectively.
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spelling pubmed-75872172020-10-29 Phase Change Process in a Zigzag Plate Latent Heat Storage System during Melting and Solidification Mahani, Roohollah Babaei Mohammed, Hayder I. Mahdi, Jasim M. Alamshahi, Farhad Ghalambaz, Mohammad Talebizadehsardari, Pouyan Yaïci, Wahiba Molecules Article Applying a well-performing heat exchanger is an efficient way to fortify the relatively low thermal response of phase-change materials (PCMs), which have broad application prospects in the fields of thermal management and energy storage. In this study, an improved PCM melting and solidification in corrugated (zigzag) plate heat exchanger are numerically examined compared with smooth (flat) plate heat exchanger in both horizontal and vertical positions. The effects of the channel width (0.5 W, W, and 2 W) and the airflow temperature (318 K, 323 K, and 328 K) are exclusively studied and reported. The results reveal the much better performance of the horizontal corrugated configuration compared with the smooth channel during both melting and solidification modes. It is found that the melting rate is about 8% faster, and the average temperature is 4 K higher in the corrugated region compared with the smooth region because of the large heat-exchange surface area, which facilitates higher rates of heat transfer into the PCM channel. In addition to the higher performance, a more compact unit can be achieved using the corrugated system. Moreover, applying the half-width PCM channel accelerates the melting rate by eight times compared to the double-width channel. Meanwhile, applying thicker channels provides faster solidification rates. The melting rate is proportional to the airflow temperature. The PCM melts within 274 s when the airflow temperature is 328 K. However, the melting time increases to 460 s for the airflow temperature of 308 K. Moreover, the PCM solidifies in 250 s and 405 s in the cases of 318 K and 328 K airflow temperatures, respectively. MDPI 2020-10-12 /pmc/articles/PMC7587217/ /pubmed/33053792 http://dx.doi.org/10.3390/molecules25204643 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mahani, Roohollah Babaei
Mohammed, Hayder I.
Mahdi, Jasim M.
Alamshahi, Farhad
Ghalambaz, Mohammad
Talebizadehsardari, Pouyan
Yaïci, Wahiba
Phase Change Process in a Zigzag Plate Latent Heat Storage System during Melting and Solidification
title Phase Change Process in a Zigzag Plate Latent Heat Storage System during Melting and Solidification
title_full Phase Change Process in a Zigzag Plate Latent Heat Storage System during Melting and Solidification
title_fullStr Phase Change Process in a Zigzag Plate Latent Heat Storage System during Melting and Solidification
title_full_unstemmed Phase Change Process in a Zigzag Plate Latent Heat Storage System during Melting and Solidification
title_short Phase Change Process in a Zigzag Plate Latent Heat Storage System during Melting and Solidification
title_sort phase change process in a zigzag plate latent heat storage system during melting and solidification
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7587217/
https://www.ncbi.nlm.nih.gov/pubmed/33053792
http://dx.doi.org/10.3390/molecules25204643
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