The present paper proposes a simplified and efficient FV-WENO scheme for simulating weakly-compressible multi-phase flows. Comparing with a classic FV-WENO scheme, the computational accuracy and efficiency are improved by two choices: (i) reconstructing the primitive variables instead of the conservative ones; (ii) performing the WENO reconstruction only once per direction. Although these choices lead to a formally 2nd -order accurate scheme, it is still different from conventional 2nd-order schemes and can be expected to provide higher-order accuracies far from interfaces. An HLLC-type Riemann flux solver is proposed, which appears to be more robust than the linearized Riemann flux solver, allowing the use of smaller artificial sound speeds. The proposed scheme is proven to have the oscillation-free property in the advection of isolated interfaces. A series of validation test-cases have been carried out, in which a good agreement can be observed with references. It is shown that the proposed scheme can give accurate results with little numerical diffusion in the simulations involving weakly-compressible multi-phase flows.
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Ecole Normale Super Kouba, LEDP, BP 92, Algiers, AlgeriaEcole Normale Super Kouba, LEDP, BP 92, Algiers, Algeria
Mahiout, Latifa Ait
Amaziane, Brahim
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Univ Pau & Pays Adour, CNRS, Lab Math & Leurs Applicat, UMR 5142, Av Univ, F-64000 Pau, FranceEcole Normale Super Kouba, LEDP, BP 92, Algiers, Algeria
Amaziane, Brahim
Mokrane, Abdelhafid
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Ecole Normale Super Kouba, LEDP, BP 92, Algiers, AlgeriaEcole Normale Super Kouba, LEDP, BP 92, Algiers, Algeria
Mokrane, Abdelhafid
Pankratov, Leonid
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Univ Pau & Pays Adour, CNRS, Lab Math & Leurs Applicat, UMR 5142, Av Univ, F-64000 Pau, France
Moscow Phys & Technol, Lab Fluid Dynam & Seism, 9 Inst Per, Dolgoprudnyi 141700, Moscow Region, RussiaEcole Normale Super Kouba, LEDP, BP 92, Algiers, Algeria