Numerical Simulation on Heating Effects during Hydrogen Absorption in Metal Hydride Systems for Hydrogen Storage

A 2-D numerical simulation model was established based on a small-sized metal hydride storage tank, and the model was validated by the existing experiments. An external cooling bath was equipped to simulate the heating effects of hydrogen absorption reactions. Furthermore, both the type and the flow...

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Main Authors: Jiahui Tan, Mu Chai, Kuanfang He, Yong Chen
Format: Article
Language:English
Published: MDPI AG 2022-04-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/15/7/2673
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author Jiahui Tan
Mu Chai
Kuanfang He
Yong Chen
author_facet Jiahui Tan
Mu Chai
Kuanfang He
Yong Chen
author_sort Jiahui Tan
collection DOAJ
description A 2-D numerical simulation model was established based on a small-sized metal hydride storage tank, and the model was validated by the existing experiments. An external cooling bath was equipped to simulate the heating effects of hydrogen absorption reactions. Furthermore, both the type and the flow rate of the cooling fluids in the cooling bath were altered, so that changes in temperature and hydrogen storage capacity in the hydrogen storage model could be analyzed. It is demonstrated that the reaction rate in the center of the hydrogen storage tank gradually becomes lower than that at the wall surface. When the flow rate of the fluid is small, significant differences can be found in the cooling liquid temperature at the inlet and the outlet cooling bath. In areas adjacent to its inlet, the reaction rate is higher than that at the outlet, and a better cooling effect is produced by water. As the flow rate increases, the total time consumed by hydrogen adsorption reaction is gradually reduced to a constant value. At the same flow rate, the wall surface of the tank shows a reaction rate insignificantly different from that in its center, provided that cooling water or oil coolant is replaced with air.
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spelling doaj.art-74f3996f94f5473da315702aab1447be2023-11-30T23:13:36ZengMDPI AGEnergies1996-10732022-04-01157267310.3390/en15072673Numerical Simulation on Heating Effects during Hydrogen Absorption in Metal Hydride Systems for Hydrogen StorageJiahui Tan0Mu Chai1Kuanfang He2Yong Chen3School of Mechatronic Engineering and Automation, Foshan University, Foshan 528225, ChinaSchool of Mechatronic Engineering and Automation, Foshan University, Foshan 528225, ChinaSchool of Mechatronic Engineering and Automation, Foshan University, Foshan 528225, ChinaSchool of Mechatronic Engineering and Automation, Foshan University, Foshan 528225, ChinaA 2-D numerical simulation model was established based on a small-sized metal hydride storage tank, and the model was validated by the existing experiments. An external cooling bath was equipped to simulate the heating effects of hydrogen absorption reactions. Furthermore, both the type and the flow rate of the cooling fluids in the cooling bath were altered, so that changes in temperature and hydrogen storage capacity in the hydrogen storage model could be analyzed. It is demonstrated that the reaction rate in the center of the hydrogen storage tank gradually becomes lower than that at the wall surface. When the flow rate of the fluid is small, significant differences can be found in the cooling liquid temperature at the inlet and the outlet cooling bath. In areas adjacent to its inlet, the reaction rate is higher than that at the outlet, and a better cooling effect is produced by water. As the flow rate increases, the total time consumed by hydrogen adsorption reaction is gradually reduced to a constant value. At the same flow rate, the wall surface of the tank shows a reaction rate insignificantly different from that in its center, provided that cooling water or oil coolant is replaced with air.https://www.mdpi.com/1996-1073/15/7/2673metal hydridehydrogen absorption reactionheat and mass transfercooling bathnumerical simulation
spellingShingle Jiahui Tan
Mu Chai
Kuanfang He
Yong Chen
Numerical Simulation on Heating Effects during Hydrogen Absorption in Metal Hydride Systems for Hydrogen Storage
Energies
metal hydride
hydrogen absorption reaction
heat and mass transfer
cooling bath
numerical simulation
title Numerical Simulation on Heating Effects during Hydrogen Absorption in Metal Hydride Systems for Hydrogen Storage
title_full Numerical Simulation on Heating Effects during Hydrogen Absorption in Metal Hydride Systems for Hydrogen Storage
title_fullStr Numerical Simulation on Heating Effects during Hydrogen Absorption in Metal Hydride Systems for Hydrogen Storage
title_full_unstemmed Numerical Simulation on Heating Effects during Hydrogen Absorption in Metal Hydride Systems for Hydrogen Storage
title_short Numerical Simulation on Heating Effects during Hydrogen Absorption in Metal Hydride Systems for Hydrogen Storage
title_sort numerical simulation on heating effects during hydrogen absorption in metal hydride systems for hydrogen storage
topic metal hydride
hydrogen absorption reaction
heat and mass transfer
cooling bath
numerical simulation
url https://www.mdpi.com/1996-1073/15/7/2673
work_keys_str_mv AT jiahuitan numericalsimulationonheatingeffectsduringhydrogenabsorptioninmetalhydridesystemsforhydrogenstorage
AT muchai numericalsimulationonheatingeffectsduringhydrogenabsorptioninmetalhydridesystemsforhydrogenstorage
AT kuanfanghe numericalsimulationonheatingeffectsduringhydrogenabsorptioninmetalhydridesystemsforhydrogenstorage
AT yongchen numericalsimulationonheatingeffectsduringhydrogenabsorptioninmetalhydridesystemsforhydrogenstorage