A Framework of Runge-Kutta, Discontinuous Galerkin, Level Set and Direct Ghost Fluid Methods for the Multi-Dimensional Simulation of Underwater Explosions

dc.contributor.authorSi, Nanen
dc.contributor.authorBrown, Alan J.en
dc.date.accessioned2022-01-11T13:48:09Zen
dc.date.available2022-01-11T13:48:09Zen
dc.date.issued2021-12-29en
dc.date.updated2022-01-10T14:38:12Zen
dc.description.abstractThis work describes the development of a hybrid framework of Runge–Kutta (RK), discontinuous Galerkin (DG), level set (LS) and direct ghost fluid (DGFM) methods for the simulation of near-field and early-time underwater explosions (UNDEX) in early-stage ship design. UNDEX problems provide a series of challenging issues to be solved. The multi-dimensional, multi-phase, compressible and inviscid fluid-governing equations must be solved numerically. The shock front in the solution field must be captured accurately while maintaining the total variation diminishing (TVD) properties. The interface between the explosive gas and water must be tracked without letting the numerical diffusion across the material interface lead to spurious pressure oscillations and thus the failure of the simulation. The non-reflecting boundary condition (NRBC) must effectively absorb the wave and prevent it from reflecting back into the fluid. Furthermore, the CFD solver must have the capability of dealing with fluid–structure interactions (FSI) where both the fluid and structural domains respond with significant deformation. These issues necessitate a hybrid model. In-house CFD solvers (UNDEXVT) are developed to test the applicability of this framework. In this development, code verification and validation are performed. Different methods of implementing non-reflecting boundary conditions (NRBCs) are compared. The simulation results of single and multi-dimensional cases that possess near-field and early-time UNDEX features—such as shock and rarefaction waves in the fluid, the explosion bubble, and the variation of its radius over time—are presented. Continuing research on two-way coupled FSI with large deformation is introduced, and together with a more complete description of the direct ghost fluid method (DGFM) in this framework will be described in subsequent papers.en
dc.description.versionPublished versionen
dc.format.mimetypeapplication/pdfen
dc.identifier.citationSi, N.; Brown, A. A Framework of Runge-Kutta, Discontinuous Galerkin, Level Set and Direct Ghost Fluid Methods for the Multi-Dimensional Simulation of Underwater Explosions. Fluids 2021, 7, 13.en
dc.identifier.doihttps://doi.org/10.3390/fluids7010013en
dc.identifier.urihttp://hdl.handle.net/10919/107528en
dc.language.isoenen
dc.publisherMDPIen
dc.rightsCreative Commons Attribution 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/en
dc.subjectunderwater explosion (UNDEX)en
dc.subjectRiemann problemen
dc.subjectcomputational fluid dynamics (CFD)en
dc.subjectdiscontinuous Galerkin (DG)en
dc.subjectshocken
dc.subjectrarefactionen
dc.subjectbubbleen
dc.subjectnon-reflecting boundary condition (NRBC)en
dc.subjectfluid–structure interaction (FSI)en
dc.titleA Framework of Runge-Kutta, Discontinuous Galerkin, Level Set and Direct Ghost Fluid Methods for the Multi-Dimensional Simulation of Underwater Explosionsen
dc.title.serialFluidsen
dc.typeArticle - Refereeden
dc.type.dcmitypeTexten

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