A staggered semi-implicit hybrid FV/FE projection method for weakly compressible flows

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In this article we present a novel staggered semi-implicit hybrid finite-volume/finite-element (FV/FE) method for the resolution of weakly compressible flows in two and three space dimensions. The pressure-based methodology introduced in [1], [2] for viscous incompressible flows is extended here to solve the compressible Navier-Stokes equations. Instead of considering the classical system including the energy conservation equation, we replace it by the pressure evolution equation written in non-conservative form. To ease the discretization of complex spatial domains, face-type unstructured staggered meshes are considered. A projection method allows the decoupling of the computation of the density and linear momentum variables from the pressure. Then, an explicit finite volume scheme is used for the resolution of the transport diffusion equations on the dual mesh, whereas the pressure system is solved implicitly by using continuous finite elements defined on the primal simplex mesh. Consequently, the CFL stability condition depends only on the flow velocity, avoiding the severe time restrictions that might be imposed by the sound velocity in the weakly compressible regime. High order of accuracy in space and time of the transport diffusion stage is attained using a local ADER (LADER) methodology. Moreover, also the CVC Kolgan-type second order in space and first order in time scheme is considered. To prevent spurious oscillations in the presence of shocks, an ENO-based reconstruction, the minmod limiter or the Barth-Jespersen limiter are employed. To show the validity and robustness of our novel staggered semi-implicit hybrid FV/FE scheme, several benchmarks are analysed, showing a good agreement with available exact solutions and numerical reference data from low Mach numbers, up to Mach numbers of the order of unity.

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Bermúdez, Busto, Dumbser, Ferrín, Saavedra, & Vázquez-Cendón. (2020). A staggered semi-implicit hybrid FV/FE projection method for weakly compressible flows. Journal of Computational Physics, 421. https://doi.org/10.1016/J.JCP.2020.109743

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This work was financially supported by INdAM (Istituto Nazionale di Alta Matematica, Italy) under a Post-doctoral grant of the research project Progetto premiale FOE 2014-SIES and by the Spanish MECD under grant FPU13/00279; by Spanish MICINN projects MTM2013-43745-R, MTM2015-68275-R; by Spanish MCIU under project MTM2017-86459-R; by FEDER and Xunta de Galicia funds under the ED431C 2017/60 project. S.B. and M.D. acknowledge funding from the Italian Ministry of Education, University and Research (MIUR) in the frame of the Departments of Excellence Initiative 2018–2022 attributed to DICAM of the University of Trento (grant L. 232/2016) and in the frame of the PRIN 2017 project Innovative numerical methods for evolutionary partial differential equations and applications. Furthermore, M.D. has also received funding from the University of Trento via the Strategic Initiative Modeling and Simulation and acknowledges partial support of the European Union's Horizon 2020 Research and Innovation Programme under the project ExaHyPE, grant no. 671698 (call FETHPC-1-2014). S.B. and M.D. are members of the GNCS-INdAM group.

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