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April 30, 20240 citationsOpen Access

Computational study of numerical flux schemes for mesoscale atmospheric flows in a Finite Volume framework

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NCNicola ClincoMGMichele GirfoglioAQAnnalisa Quaini

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Abstract

We develop, and implement in a Finite Volume environment, a density-based approach for the Euler equations written in conservative form using density, momentum, and total energy as variables. Under simplifying assumptions, these equations are used to describe non-hydrostatic atmospheric flow. The well-balancing of the approach is ensured by a local hydrostatic reconstruction updated in runtime during the simulation to keep the numerical error under control. To approximate the solution of the Riemann problem, we consider four methods: Roe-Pike, HLLC, AUSM+-up and HLLC-AUSM. We assess our density-based approach and compare the accuracy of these four approximated Riemann solvers using two two classical benchmarks, namely the smooth rising thermal bubble and the density current.

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Clinco et al. (2024) studied this question.

synapsesocial.com/papers/68e6cdf2b6db64358764bda1https://doi.org/10.48550/arxiv.2404.19559
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