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dc.contributor.authorYuvraj,
dc.contributor.authorArdebili, Yazdan Naderzadeh
dc.contributor.authorSong, Wonsik
dc.contributor.authorIm, Hong G.
dc.contributor.authorLaw, Chung K.
dc.contributor.authorChaudhuri, Swetaprovo
dc.date.accessioned2023-03-06T13:00:00Z
dc.date.available2023-03-06T13:00:00Z
dc.date.issued2023-03-02
dc.identifier.urihttp://hdl.handle.net/10754/690128
dc.description.abstractGiven the need to develop zero-carbon combustors for power and aircraft engine applications, Sd of a turbulent premixed flame, especially for H2-air, is of immediate interest. The present study investigates 3D DNS cases of premixed H2-air turbulent flames at varied pressures for different Ret and Ka with detailed chemistry to theoretically model Sd at negative curvatures. Prior studies at atmospheric pressure showed Sd˜ to be enhanced significantly over SL at large negative κ due to flame-flame interactions. 1D simulations of an imploding cylindrical H2-air laminar premixed flame used to represent the local flame surfaces undergoing flame-flame interaction in a turbulent flame at the corresponding pressure conditions are performed to understand the interaction dynamics. These simulations emphasized the transient nature of the flame structure during flame-flame interactions and enabled analytical modeling of Sd˜ at these regions of extreme negative κ of the 3D DNS. The JPDF of Sd˜ and κ and the corresponding conditional averages from 3D DNS showed a negative correlation between Sd˜ and κ. The model successfully predicts the variation of ⟨Sd˜|κ⟩ with κ for the regions on the flame surface with κδL≪−1 at all pressures, with good accuracy. This shows the aforementioned configuration to be fruitful in representing local flame-flame interaction in 3D turbulent flames. Moreover, at κ=0, on average Sd˜ can deviate from SL, manifested by the internal flame structure, controlled by turbulence transport in the large Ka regime. Thus, the correlation of ⟨Sd˜⟩/SL with ⟨|∇cˆ|c0⟩ at κ=0 is explored.
dc.description.sponsorshipThis research was enabled in part by support provided by the Natural Sciences and Engineering Research Council of Canada through a Discovery Grant, the Heuckroth Distinguished Faculty Award in Aerospace Engineering from UTIAS. In addition, computational resources were provided by KAUST Supercomputing Laboratory (KSL), alongside support from KAUST. The computational resources were also provided by the SciNet High-Performance Computing Consortium at the University of Toronto and the Digital Research Alliance of Canada (the Alliance).
dc.publisherarXiv
dc.relation.urlhttps://arxiv.org/pdf/2303.00911.pdf
dc.rightsThis is a preprint version of a paper and has not been peer reviewed. Archived with thanks to arXiv.
dc.titleOn flame speed enhancement in turbulent premixed hydrogen-air flames during local flame-flame interaction
dc.typePreprint
dc.contributor.departmentMechanical Engineering Program
dc.contributor.departmentPhysical Science and Engineering (PSE) Division
dc.contributor.departmentClean Combustion Research Center
dc.eprint.versionPre-print
dc.contributor.institutionInstitute for Aerospace Studies, University of Toronto, Toronto, Canada
dc.contributor.institutionDepartment of Mechanical and Aerospace Engineering, Princeton University, USA
dc.identifier.arxivid2303.00911
kaust.personSong, Wonsik
kaust.personIm, Hong G.
refterms.dateFOA2023-03-06T13:00:40Z
kaust.acknowledged.supportUnitSupercomputing Laboratory (KSL)


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