Hydrogen Production and Subsequent Adsorption/Desorption Process within a Modified Unitized Regenerative Fuel Cell

For sustainable and incremental growth, mankind is adopting renewable sources of energy along with storage systems. Storing surplus renewable energy in the form of hydrogen is a viable solution to meet continuous energy demands. In this paper the concept of electrochemical hydrogen storage in a soli...

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Main Authors: Diksha Kapoor, Amandeep Singh Oberoi, Parag Nijhawan
Format: Article
Language:English
Published: MDPI AG 2019-04-01
Series:Processes
Subjects:
Online Access:https://www.mdpi.com/2227-9717/7/4/238
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spelling doaj-1bf21c14e0694c0ebbf0ce1a9ebad4842020-11-24T21:49:56ZengMDPI AGProcesses2227-97172019-04-017423810.3390/pr7040238pr7040238Hydrogen Production and Subsequent Adsorption/Desorption Process within a Modified Unitized Regenerative Fuel CellDiksha Kapoor0Amandeep Singh Oberoi1Parag Nijhawan2Electrical and Instrumentation Engineering Department, Thapar Institute of Engineering and Technology Patiala, Punjab-147004, IndiaMechanical Engineering Department, Thapar Institute of Engineering and Technology Patiala, Punjab 147004, IndiaElectrical and Instrumentation Engineering Department, Thapar Institute of Engineering and Technology Patiala, Punjab-147004, IndiaFor sustainable and incremental growth, mankind is adopting renewable sources of energy along with storage systems. Storing surplus renewable energy in the form of hydrogen is a viable solution to meet continuous energy demands. In this paper the concept of electrochemical hydrogen storage in a solid multi-walled carbon nanotube (MWCNT) electrode integrated in a modified unitized regenerative fuel cell (URFC) is investigated. The method of solid electrode fabrication from MWCNT powder and egg white as an organic binder is disclosed. The electrochemical testing of a modified URFC with an integrated MWCNT-based hydrogen storage electrode is performed and reported. Galvanostatic charging and discharging was carried out and results analyzed to ascertain the electrochemical hydrogen storage capacity of the fabricated electrode. The electrochemical hydrogen storage capacity of the porous MWCNT electrode is found to be 2.47 wt%, which is comparable with commercially available AB<sub>5</sub>-based hydrogen storage canisters. The obtained results prove the technical feasibility of a modified URFC with an integrated MWCNT-based hydrogen storage electrode, which is the first of its kind. This is surelya step forward towards building a sustainable energy economy.https://www.mdpi.com/2227-9717/7/4/238hydrogen energysolid-state hydrogen storageunitized regenerative fuel cellmulti- walled carbon nanotubeproton battery
collection DOAJ
language English
format Article
sources DOAJ
author Diksha Kapoor
Amandeep Singh Oberoi
Parag Nijhawan
spellingShingle Diksha Kapoor
Amandeep Singh Oberoi
Parag Nijhawan
Hydrogen Production and Subsequent Adsorption/Desorption Process within a Modified Unitized Regenerative Fuel Cell
Processes
hydrogen energy
solid-state hydrogen storage
unitized regenerative fuel cell
multi- walled carbon nanotube
proton battery
author_facet Diksha Kapoor
Amandeep Singh Oberoi
Parag Nijhawan
author_sort Diksha Kapoor
title Hydrogen Production and Subsequent Adsorption/Desorption Process within a Modified Unitized Regenerative Fuel Cell
title_short Hydrogen Production and Subsequent Adsorption/Desorption Process within a Modified Unitized Regenerative Fuel Cell
title_full Hydrogen Production and Subsequent Adsorption/Desorption Process within a Modified Unitized Regenerative Fuel Cell
title_fullStr Hydrogen Production and Subsequent Adsorption/Desorption Process within a Modified Unitized Regenerative Fuel Cell
title_full_unstemmed Hydrogen Production and Subsequent Adsorption/Desorption Process within a Modified Unitized Regenerative Fuel Cell
title_sort hydrogen production and subsequent adsorption/desorption process within a modified unitized regenerative fuel cell
publisher MDPI AG
series Processes
issn 2227-9717
publishDate 2019-04-01
description For sustainable and incremental growth, mankind is adopting renewable sources of energy along with storage systems. Storing surplus renewable energy in the form of hydrogen is a viable solution to meet continuous energy demands. In this paper the concept of electrochemical hydrogen storage in a solid multi-walled carbon nanotube (MWCNT) electrode integrated in a modified unitized regenerative fuel cell (URFC) is investigated. The method of solid electrode fabrication from MWCNT powder and egg white as an organic binder is disclosed. The electrochemical testing of a modified URFC with an integrated MWCNT-based hydrogen storage electrode is performed and reported. Galvanostatic charging and discharging was carried out and results analyzed to ascertain the electrochemical hydrogen storage capacity of the fabricated electrode. The electrochemical hydrogen storage capacity of the porous MWCNT electrode is found to be 2.47 wt%, which is comparable with commercially available AB<sub>5</sub>-based hydrogen storage canisters. The obtained results prove the technical feasibility of a modified URFC with an integrated MWCNT-based hydrogen storage electrode, which is the first of its kind. This is surelya step forward towards building a sustainable energy economy.
topic hydrogen energy
solid-state hydrogen storage
unitized regenerative fuel cell
multi- walled carbon nanotube
proton battery
url https://www.mdpi.com/2227-9717/7/4/238
work_keys_str_mv AT dikshakapoor hydrogenproductionandsubsequentadsorptiondesorptionprocesswithinamodifiedunitizedregenerativefuelcell
AT amandeepsinghoberoi hydrogenproductionandsubsequentadsorptiondesorptionprocesswithinamodifiedunitizedregenerativefuelcell
AT paragnijhawan hydrogenproductionandsubsequentadsorptiondesorptionprocesswithinamodifiedunitizedregenerativefuelcell
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