A high order least square-based finite difference-finite volume method with lattice Boltzmann flux solver for simulation of incompressible flows on unstructured grids
This paper presents a high order least square-based finite difference-finite volume (LSFD-FV) method together with lattice Boltzmann flux solver for accurate simulation of incompressible flows on unstructured grids. Within each control cell, a high order polynomial, which is based on Taylor series expansion, is applied to approximate the solution function. The derivatives in the Taylor series expansion are approximated by the functional values at the centers of neighboring cells using the mesh-free least squarebased finite difference (LSFD) method developed by Ding et al. (2004) [36]. In the high order finite volume method, the recently developed lattice Boltzmann flux solver (LBFS) is applied to evaluate the inviscid and viscous fluxes physically and simultaneously at the cell interface by local reconstruction of lattice Boltzmann solution. Compared with traditional k-exact high-order finite volume method, the present method is more accurate and efficient. Various benchmark examples are tested to validate the high-order accuracy, high computational efficiency and flexibility of the proposed method on unstructured grids. (C) 2019 Elsevier Inc. All rights reserved.
机构:
Beijing Computat Sci Res Ctr, Beijing 100094, Peoples R China
Old Dominion Univ, Dept Math & Stat, Norfolk, VA 23529 USABeijing Computat Sci Res Ctr, Beijing 100094, Peoples R China
Li, Weidong
Li, Wei
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Tsinghua Univ Shenzhen, Res Inst, Shenzhen 518057, Peoples R ChinaBeijing Computat Sci Res Ctr, Beijing 100094, Peoples R China
机构:
Univ Santiago de Compostela, Fac Matemat, Dept Matemat Aplicada, ES-15782 Santiago De Compostela, SpainUniv Santiago de Compostela, Fac Matemat, Dept Matemat Aplicada, ES-15782 Santiago De Compostela, Spain
Busto, S.
Ferrin, J. L.
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Univ Santiago de Compostela, Fac Matemat, Dept Matemat Aplicada, ES-15782 Santiago De Compostela, Spain
ITMATI, Campus Sur, ES-15782 Santiago De Compostela, Spain
Fac Matemat, Inst Matemat, Campus Sur, ES-15782 Santiago De Compostela, SpainUniv Santiago de Compostela, Fac Matemat, Dept Matemat Aplicada, ES-15782 Santiago De Compostela, Spain
Ferrin, J. L.
Toro, E. F.
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Univ Trento, DICAM, Lab Appl Math, IT-38100 Trento, ItalyUniv Santiago de Compostela, Fac Matemat, Dept Matemat Aplicada, ES-15782 Santiago De Compostela, Spain
Toro, E. F.
Vazquez-Cendon, M. E.
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Univ Santiago de Compostela, Fac Matemat, Dept Matemat Aplicada, ES-15782 Santiago De Compostela, Spain
ITMATI, Campus Sur, ES-15782 Santiago De Compostela, Spain
Fac Matemat, Inst Matemat, Campus Sur, ES-15782 Santiago De Compostela, SpainUniv Santiago de Compostela, Fac Matemat, Dept Matemat Aplicada, ES-15782 Santiago De Compostela, Spain
机构:
Univ A Coruna, Dept Appl Math, Grp Numer Methods Engn, La Coruna 15071, SpainUniv A Coruna, Dept Appl Math, Grp Numer Methods Engn, La Coruna 15071, Spain
Ramirez, Luis
Nogueira, Xesus
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Univ A Coruna, Dept Appl Math, Grp Numer Methods Engn, La Coruna 15071, SpainUniv A Coruna, Dept Appl Math, Grp Numer Methods Engn, La Coruna 15071, Spain
Nogueira, Xesus
Khelladi, Sofiane
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Arts & Metiers ParisTech, Lab Dynam Fluides, F-75013 Paris, FranceUniv A Coruna, Dept Appl Math, Grp Numer Methods Engn, La Coruna 15071, Spain
Khelladi, Sofiane
Chassaing, Jean-Camille
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Univ Paris 06, Sorbonne Univ, CNRS, UMR7190,DAlembert Inst, F-75005 Paris, FranceUniv A Coruna, Dept Appl Math, Grp Numer Methods Engn, La Coruna 15071, Spain
Chassaing, Jean-Camille
Colominas, Ignasi
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Univ A Coruna, Dept Appl Math, Grp Numer Methods Engn, La Coruna 15071, SpainUniv A Coruna, Dept Appl Math, Grp Numer Methods Engn, La Coruna 15071, Spain