Accelerated numerical simulations of hydrogen flames: Open-source implementation of an advanced diffusion model library in OpenFOAM

dc.contributor.authorHaider, Ali
dc.contributor.authorMorev, Ilya
dc.contributor.authorRintanen, Aleksi
dc.contributor.authorShahin, Zin
dc.contributor.authorTamadonfar, Parsa
dc.contributor.authorKarimkashi, Shervin
dc.contributor.authorWehrfritz, Armin
dc.contributor.authorVuorinen, Ville
dc.contributor.organizationfi=konetekniikka|en=Mechanical Engineering|
dc.contributor.organization-code1.2.246.10.2458963.20.73637165264
dc.converis.publication-id505761551
dc.converis.urlhttps://research.utu.fi/converis/portal/Publication/505761551
dc.date.accessioned2026-01-21T12:16:40Z
dc.date.available2026-01-21T12:16:40Z
dc.description.abstract<p>Here, the OpenFOAM software with the dynamic load balancer library DLBFoam is investigated for computational fluid dynamics (CFD) simulations of different hydrogen (H<sub>2</sub>) flames. The benefits of DLBFoam for hydrogen have not been thoroughly investigated in the past. To explore this, a new open-source diffusion model library FickianTransportFoam is implemented in this study. FickianTransportFoam includes species-specific constant Lewis number and mixture-averaged models with correction velocity to account for preferential diffusion. The model is first verified for one-dimensional (1D) premixed and non-premixed counterflow flames. Additionally, four hydrogen/air flames are explored: (1) two-dimensional (2D) laminar freely propagating premixed flame, (2) 2D axisymmetric laminar non-premixed jet flame, (3) three-dimensional (3D) turbulent non-premixed swirling flame, and (4) 3D turbulent premixed swirling flame. The main results and achievements regarding the implemented transport models are as follows. First, the results from 2D freely propagating flame demonstrated thermodiffusively unstable flame formation using the mixture averaged model. The analytical and numerical dispersion relationships agree well for the linear instability growth phase. Second, the model functionality is demonstrated for a laminar 2D jet case with conjugate heat transfer. Furthermore, validation and grid sensitivity studies for the 3D turbulent flames are carried out. Third, the computational benchmark for each configuration indicates a factor of ~10-100 speed-up when utilizing DLBFoam. Finally, the test cases and source codes for FickianTransportFoam are openly shared.<br></p>
dc.identifier.eissn1879-3487
dc.identifier.jour-issn0360-3199
dc.identifier.olddbid212297
dc.identifier.oldhandle10024/195315
dc.identifier.urihttps://www.utupub.fi/handle/11111/47381
dc.identifier.urlhttps://www.sciencedirect.com/science/article/pii/S0360319925051183?via%3Dihub
dc.identifier.urnURN:NBN:fi-fe202601216772
dc.language.isoen
dc.okm.affiliatedauthorWehrfritz, Armin
dc.okm.discipline116 Chemical sciencesen_GB
dc.okm.discipline218 Environmental engineeringen_GB
dc.okm.discipline116 Kemiafi_FI
dc.okm.discipline218 Ympäristötekniikkafi_FI
dc.okm.internationalcopublicationnot an international co-publication
dc.okm.internationalityInternational publication
dc.okm.typeA1 ScientificArticle
dc.publisherElsevier
dc.publisher.countryUnited Kingdomen_GB
dc.publisher.countryBritanniafi_FI
dc.publisher.country-codeGB
dc.relation.articlenumber152115
dc.relation.doi10.1016/j.ijhydene.2025.152115
dc.relation.ispartofjournalInternational Journal of Hydrogen Energy
dc.relation.volume189
dc.source.identifierhttps://www.utupub.fi/handle/10024/195315
dc.titleAccelerated numerical simulations of hydrogen flames: Open-source implementation of an advanced diffusion model library in OpenFOAM
dc.year.issued2025

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