Application of a pressure based CFD code with mass transfer model based on the Rayleigh equation for the numerical simulation of the cavitating flow around a hydrofoil with circular leading edge

The most common method for simulating cavitating flows is using the governing flow equations in a form with a variable density and treats both phases as incompressible in combination with a transport equation for the vapour volume fraction. This approach is commonly referred to as volume of fluid m...

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Main Authors: Deimel Christian, Günther Markus, Skoda Romuald
Format: Article
Language:English
Published: EDP Sciences 2014-03-01
Series:EPJ Web of Conferences
Online Access:http://dx.doi.org/10.1051/epjconf/20146702018
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spelling doaj-aec91317808b4632ae6b0e5f97ed68832021-08-02T03:40:53ZengEDP SciencesEPJ Web of Conferences2100-014X2014-03-01670201810.1051/epjconf/20146702018epjconf_efm-13_02018Application of a pressure based CFD code with mass transfer model based on the Rayleigh equation for the numerical simulation of the cavitating flow around a hydrofoil with circular leading edgeDeimel Christian0Günther Markus1Skoda Romuald2Ruhr-Universität Bochum, Chair of Hydraulic Fluid MachineryRuhr-Universität Bochum, Chair of Hydraulic Fluid MachineryRuhr-Universität Bochum, Chair of Hydraulic Fluid Machinery The most common method for simulating cavitating flows is using the governing flow equations in a form with a variable density and treats both phases as incompressible in combination with a transport equation for the vapour volume fraction. This approach is commonly referred to as volume of fluid method (VoF). To determine the transition of the liquid phase to vapour and vice versa, a relation for the mass transfer is needed. Several models exist, based on slightly differing physical assumptions, for example derivation from the dynamics of single bubbles or large bubble clusters. In our simulation, we use the model of Sauer and Schnerr which is based on the Rayleigh equation. One common problem of all mass transfer models is the use of model constants which often need to be tuned with regard to the examined problem. Furthermore, these models often overpredict the turbulent dynamic viscosity in the two-phase region which counteracts the development of transient shedding behaviour and is compensated by the modification proposed by Reboud. In the presented study, we vary the parameters of the Sauer-Schnerr model with Reboud modification that we implemented into an OpenFOAM solver to match numerical to experimental data. http://dx.doi.org/10.1051/epjconf/20146702018
collection DOAJ
language English
format Article
sources DOAJ
author Deimel Christian
Günther Markus
Skoda Romuald
spellingShingle Deimel Christian
Günther Markus
Skoda Romuald
Application of a pressure based CFD code with mass transfer model based on the Rayleigh equation for the numerical simulation of the cavitating flow around a hydrofoil with circular leading edge
EPJ Web of Conferences
author_facet Deimel Christian
Günther Markus
Skoda Romuald
author_sort Deimel Christian
title Application of a pressure based CFD code with mass transfer model based on the Rayleigh equation for the numerical simulation of the cavitating flow around a hydrofoil with circular leading edge
title_short Application of a pressure based CFD code with mass transfer model based on the Rayleigh equation for the numerical simulation of the cavitating flow around a hydrofoil with circular leading edge
title_full Application of a pressure based CFD code with mass transfer model based on the Rayleigh equation for the numerical simulation of the cavitating flow around a hydrofoil with circular leading edge
title_fullStr Application of a pressure based CFD code with mass transfer model based on the Rayleigh equation for the numerical simulation of the cavitating flow around a hydrofoil with circular leading edge
title_full_unstemmed Application of a pressure based CFD code with mass transfer model based on the Rayleigh equation for the numerical simulation of the cavitating flow around a hydrofoil with circular leading edge
title_sort application of a pressure based cfd code with mass transfer model based on the rayleigh equation for the numerical simulation of the cavitating flow around a hydrofoil with circular leading edge
publisher EDP Sciences
series EPJ Web of Conferences
issn 2100-014X
publishDate 2014-03-01
description The most common method for simulating cavitating flows is using the governing flow equations in a form with a variable density and treats both phases as incompressible in combination with a transport equation for the vapour volume fraction. This approach is commonly referred to as volume of fluid method (VoF). To determine the transition of the liquid phase to vapour and vice versa, a relation for the mass transfer is needed. Several models exist, based on slightly differing physical assumptions, for example derivation from the dynamics of single bubbles or large bubble clusters. In our simulation, we use the model of Sauer and Schnerr which is based on the Rayleigh equation. One common problem of all mass transfer models is the use of model constants which often need to be tuned with regard to the examined problem. Furthermore, these models often overpredict the turbulent dynamic viscosity in the two-phase region which counteracts the development of transient shedding behaviour and is compensated by the modification proposed by Reboud. In the presented study, we vary the parameters of the Sauer-Schnerr model with Reboud modification that we implemented into an OpenFOAM solver to match numerical to experimental data.
url http://dx.doi.org/10.1051/epjconf/20146702018
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AT gunthermarkus applicationofapressurebasedcfdcodewithmasstransfermodelbasedontherayleighequationforthenumericalsimulationofthecavitatingflowaroundahydrofoilwithcircularleadingedge
AT skodaromuald applicationofapressurebasedcfdcodewithmasstransfermodelbasedontherayleighequationforthenumericalsimulationofthecavitatingflowaroundahydrofoilwithcircularleadingedge
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