Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/116930
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dc.contributorDepartment of Mechanical Engineering-
dc.contributorResearch Centre for Carbon-Strategic Catalysis-
dc.creatorWu, L-
dc.creatorWang, Q-
dc.creatorLi, W-
dc.creatorTang, M-
dc.creatorAn, L-
dc.date.accessioned2026-01-21T03:54:04Z-
dc.date.available2026-01-21T03:54:04Z-
dc.identifier.urihttp://hdl.handle.net/10397/116930-
dc.language.isoenen_US
dc.publisherKeAi Publishing Communications Ltd.en_US
dc.rights© 2025 The Authors. Publishing services by Elsevier B.V. on behalf of KeAi Communications Co. Ltd. This is an open access article under the CC BY-NC- ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).en_US
dc.rightsThe following publication Wu, L., Wang, Q., Li, W., Tang, M., & An, L. (2025). Multi-scale modeling of the multi-phase flow in water electrolyzers for green hydrogen production. Materials Reports: Energy, 5(3), 100356 is available at https://doi.org/10.1016/j.matre.2025.100356.en_US
dc.subjectBubble dynamicsen_US
dc.subjectModelingen_US
dc.subjectMulti-phaseen_US
dc.subjectMulti-scaleen_US
dc.subjectWater electrolyzersen_US
dc.titleMulti-scale modeling of the multi-phase flow in water electrolyzers for green hydrogen productionen_US
dc.typeJournal/Magazine Articleen_US
dc.identifier.volume5-
dc.identifier.issue3-
dc.identifier.doi10.1016/j.matre.2025.100356-
dcterms.abstractWater electrolyzers play a crucial role in green hydrogen production. However, their efficiency and scalability are often compromised by bubble dynamics across various scales, from nanoscale to macroscale components. This review explores multi-scale modeling as a tool to visualize multi-phase flow and improve mass transport in water electrolyzers. At the nanoscale, molecular dynamics (MD) simulations reveal how electrode surface features and wettability influence nanobubble nucleation and stability. Moving to the mesoscale, models such as volume of fluid (VOF) and lattice Boltzmann method (LBM) shed light on bubble transport in porous transport layers (PTLs). These insights inform innovative designs, including gradient porosity and hydrophilic-hydrophobic patterning, aimed at minimizing gas saturation. At the macroscale, VOF simulations elucidate two-phase flow regimes within channels, showing how flow field geometry and wettability affect bubble discharging. Moreover, artificial intelligence (AI)-driven surrogate models expedite the optimization process, allowing for rapid exploration of structural parameters in channel-rib flow fields and porous flow field designs. By integrating these approaches, we can bridge theoretical insights with experimental validation, ultimately enhancing water electrolyzer performance, reducing costs, and advancing affordable, high-efficiency hydrogen production.-
dcterms.abstractGraphical abstract: [Figure not available: see fulltext.]-
dcterms.accessRightsopen accessen_US
dcterms.bibliographicCitationMaterials reports : energy, Aug. 2025, v. 5, no. 3, 100356-
dcterms.isPartOfMaterials reports : energy-
dcterms.issued2025-08-
dc.identifier.scopus2-s2.0-105012773791-
dc.identifier.eissn2666-9358-
dc.identifier.artn100356-
dc.description.validate202601 bcch-
dc.description.oaVersion of Recorden_US
dc.identifier.FolderNumberOA_Scopus/WOSen_US
dc.description.fundingSourceRGCen_US
dc.description.fundingSourceOthersen_US
dc.description.fundingTextThis work was supported by a grant from the Research Grants Council of the Hong Kong Special Administrative Region, China (Project No. 15308024) and a grant from Research Centre for Carbon-Strategic Catalysis, The Hong Kong Polytechnic University (CE2X).en_US
dc.description.pubStatusPublisheden_US
dc.description.oaCategoryCCen_US
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