Fluid-structure interaction by a coupled lattice Boltzmann-finite element approach

In this thesis, a strategy to model the behavior of fluids and their interaction with deformable bodies is proposed. The fluid domain is modeled by using the lattice Boltzmann method, thus analyzing the fluid dynamics by a mesoscopic point of view. It has been proved that the solution provided by th...

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Main Author: De Rosis, Alessandro <1984>
Other Authors: Ubertini, Francesco
Format: Doctoral Thesis
Language:en
Published: Alma Mater Studiorum - Università di Bologna 2013
Subjects:
Online Access:http://amsdottorato.unibo.it/5934/
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spelling ndltd-unibo.it-oai-amsdottorato.cib.unibo.it-59342014-03-24T16:30:51Z Fluid-structure interaction by a coupled lattice Boltzmann-finite element approach De Rosis, Alessandro <1984> ICAR/08 Scienza delle costruzioni In this thesis, a strategy to model the behavior of fluids and their interaction with deformable bodies is proposed. The fluid domain is modeled by using the lattice Boltzmann method, thus analyzing the fluid dynamics by a mesoscopic point of view. It has been proved that the solution provided by this method is equivalent to solve the Navier-Stokes equations for an incompressible flow with a second-order accuracy. Slender elastic structures idealized through beam finite elements are used. Large displacements are accounted for by using the corotational formulation. Structural dynamics is computed by using the Time Discontinuous Galerkin method. Therefore, two different solution procedures are used, one for the fluid domain and the other for the structural part, respectively. These two solvers need to communicate and to transfer each other several information, i.e. stresses, velocities, displacements. In order to guarantee a continuous, effective, and mutual exchange of information, a coupling strategy, consisting of three different algorithms, has been developed and numerically tested. In particular, the effectiveness of the three algorithms is shown in terms of interface energy artificially produced by the approximate fulfilling of compatibility and equilibrium conditions at the fluid-structure interface. The proposed coupled approach is used in order to solve different fluid-structure interaction problems, i.e. cantilever beams immersed in a viscous fluid, the impact of the hull of the ship on the marine free-surface, blood flow in a deformable vessels, and even flapping wings simulating the take-off of a butterfly. The good results achieved in each application highlight the effectiveness of the proposed methodology and of the C++ developed software to successfully approach several two-dimensional fluid-structure interaction problems. Alma Mater Studiorum - Università di Bologna Ubertini, Francesco 2013-05-31 Doctoral Thesis PeerReviewed application/pdf en http://amsdottorato.unibo.it/5934/ info:eu-repo/semantics/openAccess
collection NDLTD
language en
format Doctoral Thesis
sources NDLTD
topic ICAR/08 Scienza delle costruzioni
spellingShingle ICAR/08 Scienza delle costruzioni
De Rosis, Alessandro <1984>
Fluid-structure interaction by a coupled lattice Boltzmann-finite element approach
description In this thesis, a strategy to model the behavior of fluids and their interaction with deformable bodies is proposed. The fluid domain is modeled by using the lattice Boltzmann method, thus analyzing the fluid dynamics by a mesoscopic point of view. It has been proved that the solution provided by this method is equivalent to solve the Navier-Stokes equations for an incompressible flow with a second-order accuracy. Slender elastic structures idealized through beam finite elements are used. Large displacements are accounted for by using the corotational formulation. Structural dynamics is computed by using the Time Discontinuous Galerkin method. Therefore, two different solution procedures are used, one for the fluid domain and the other for the structural part, respectively. These two solvers need to communicate and to transfer each other several information, i.e. stresses, velocities, displacements. In order to guarantee a continuous, effective, and mutual exchange of information, a coupling strategy, consisting of three different algorithms, has been developed and numerically tested. In particular, the effectiveness of the three algorithms is shown in terms of interface energy artificially produced by the approximate fulfilling of compatibility and equilibrium conditions at the fluid-structure interface. The proposed coupled approach is used in order to solve different fluid-structure interaction problems, i.e. cantilever beams immersed in a viscous fluid, the impact of the hull of the ship on the marine free-surface, blood flow in a deformable vessels, and even flapping wings simulating the take-off of a butterfly. The good results achieved in each application highlight the effectiveness of the proposed methodology and of the C++ developed software to successfully approach several two-dimensional fluid-structure interaction problems.
author2 Ubertini, Francesco
author_facet Ubertini, Francesco
De Rosis, Alessandro <1984>
author De Rosis, Alessandro <1984>
author_sort De Rosis, Alessandro <1984>
title Fluid-structure interaction by a coupled lattice Boltzmann-finite element approach
title_short Fluid-structure interaction by a coupled lattice Boltzmann-finite element approach
title_full Fluid-structure interaction by a coupled lattice Boltzmann-finite element approach
title_fullStr Fluid-structure interaction by a coupled lattice Boltzmann-finite element approach
title_full_unstemmed Fluid-structure interaction by a coupled lattice Boltzmann-finite element approach
title_sort fluid-structure interaction by a coupled lattice boltzmann-finite element approach
publisher Alma Mater Studiorum - Università di Bologna
publishDate 2013
url http://amsdottorato.unibo.it/5934/
work_keys_str_mv AT derosisalessandro1984 fluidstructureinteractionbyacoupledlatticeboltzmannfiniteelementapproach
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