Boundary Conditions for 3D Fluid-Structure Interaction Simulations of Compliant Vessels

The goal of this study was to investigate different outlet boundary conditions for a straight compliant tube, by the means of fluid-structure interaction simulations. In addition to investigating boundary conditions it was desirable to see how different parameters, like time step, grid refinement an...

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Main Author: Hansen, Merethe Sirevåg
Format: Others
Language:English
Published: Norges teknisk-naturvitenskapelige universitet, Institutt for konstruksjonsteknikk 2013
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:no:ntnu:diva-22739
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spelling ndltd-UPSALLA1-oai-DiVA.org-ntnu-227392013-09-29T04:31:23ZBoundary Conditions for 3D Fluid-Structure Interaction Simulations of Compliant VesselsengHansen, Merethe SirevågNorges teknisk-naturvitenskapelige universitet, Institutt for konstruksjonsteknikkInstitutt for konstruksjonsteknikk2013The goal of this study was to investigate different outlet boundary conditions for a straight compliant tube, by the means of fluid-structure interaction simulations. In addition to investigating boundary conditions it was desirable to see how different parameters, like time step, grid refinement and CFL-number would influence the results. Simulations were run with different time steps and grids. Changing these parameters had only minor influence on the results of the simulations, except for very small time steps, when the simulations would not converge. Four different boundary conditions were tested at the outlet: A reflection free boundary, an imposed reflection factor of 0.9, a two-element Windkessel model and a three-element Windkessel model. The reflection free model gave almost no reflections, while the simulation with a reflection factor of 0.9 gave the imposed amount of reflections at the outlet. For the reflection free case, comparing the results with simpler, analytical solutions gave poor accuracy, because the assumption of Poiseuille flow was invalid. Changing the velocity profile at the inlet from uniform to parabolic improved the accuracy. The two-element Windkessel model was not able to model a reflection free outlet. Reflections would occur even when the parameters were chosen to give a theoretically reflection free outlet. This was improved by using the three-element Windkessel model. When choosing parameters that would theoretically give zero reflections, the amount of reflections was very low. Student thesisinfo:eu-repo/semantics/bachelorThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:no:ntnu:diva-22739Local ntnudaim:9152application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Others
sources NDLTD
description The goal of this study was to investigate different outlet boundary conditions for a straight compliant tube, by the means of fluid-structure interaction simulations. In addition to investigating boundary conditions it was desirable to see how different parameters, like time step, grid refinement and CFL-number would influence the results. Simulations were run with different time steps and grids. Changing these parameters had only minor influence on the results of the simulations, except for very small time steps, when the simulations would not converge. Four different boundary conditions were tested at the outlet: A reflection free boundary, an imposed reflection factor of 0.9, a two-element Windkessel model and a three-element Windkessel model. The reflection free model gave almost no reflections, while the simulation with a reflection factor of 0.9 gave the imposed amount of reflections at the outlet. For the reflection free case, comparing the results with simpler, analytical solutions gave poor accuracy, because the assumption of Poiseuille flow was invalid. Changing the velocity profile at the inlet from uniform to parabolic improved the accuracy. The two-element Windkessel model was not able to model a reflection free outlet. Reflections would occur even when the parameters were chosen to give a theoretically reflection free outlet. This was improved by using the three-element Windkessel model. When choosing parameters that would theoretically give zero reflections, the amount of reflections was very low.
author Hansen, Merethe Sirevåg
spellingShingle Hansen, Merethe Sirevåg
Boundary Conditions for 3D Fluid-Structure Interaction Simulations of Compliant Vessels
author_facet Hansen, Merethe Sirevåg
author_sort Hansen, Merethe Sirevåg
title Boundary Conditions for 3D Fluid-Structure Interaction Simulations of Compliant Vessels
title_short Boundary Conditions for 3D Fluid-Structure Interaction Simulations of Compliant Vessels
title_full Boundary Conditions for 3D Fluid-Structure Interaction Simulations of Compliant Vessels
title_fullStr Boundary Conditions for 3D Fluid-Structure Interaction Simulations of Compliant Vessels
title_full_unstemmed Boundary Conditions for 3D Fluid-Structure Interaction Simulations of Compliant Vessels
title_sort boundary conditions for 3d fluid-structure interaction simulations of compliant vessels
publisher Norges teknisk-naturvitenskapelige universitet, Institutt for konstruksjonsteknikk
publishDate 2013
url http://urn.kb.se/resolve?urn=urn:nbn:no:ntnu:diva-22739
work_keys_str_mv AT hansenmerethesirevag boundaryconditionsfor3dfluidstructureinteractionsimulationsofcompliantvessels
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