A Backwards-Tracking Lagrangian-Eulerian Method for Viscoelastic Two-Fluid Flows

A new Lagrangian–Eulerian method for the simulation of viscoelastic free surface flow is proposed. The approach is developed from a method in which the constitutive equation for viscoelastic stress is solved at Lagrangian nodes, which are convected by the flow, and interpolated to the Eulerian grid...

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Main Authors: Simon Ingelsten, Andreas Mark, Roland Kádár, Fredrik Edelvik
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/11/1/439
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spelling doaj-73cc281c918d4a5eb5ef53efbe65bb982021-01-06T00:00:49ZengMDPI AGApplied Sciences2076-34172021-01-011143943910.3390/app11010439A Backwards-Tracking Lagrangian-Eulerian Method for Viscoelastic Two-Fluid FlowsSimon Ingelsten0Andreas Mark1Roland Kádár2Fredrik Edelvik3Fraunhofer-Chalmers Research Centre for Industrial Mathematics, 412 88 Gothenburg, SwedenFraunhofer-Chalmers Research Centre for Industrial Mathematics, 412 88 Gothenburg, SwedenDivision of Engineering Materials, Department of Industrial and Materials Science, Chalmers University of Technology, 412 96 Gothenburg, SwedenFraunhofer-Chalmers Research Centre for Industrial Mathematics, 412 88 Gothenburg, SwedenA new Lagrangian–Eulerian method for the simulation of viscoelastic free surface flow is proposed. The approach is developed from a method in which the constitutive equation for viscoelastic stress is solved at Lagrangian nodes, which are convected by the flow, and interpolated to the Eulerian grid with radial basis functions. In the new method, a backwards-tracking methodology is employed, allowing for fixed locations for the Lagrangian nodes to be chosen a priori. The proposed method is also extended to the simulation of viscoelastic free surface flow with the volume of fluid method. No unstructured interpolation or node redistribution is required with the new approach. Furthermore, the total amount of Lagrangian nodes is significantly reduced when compared to the original Lagrangian–Eulerian method. Consequently, the method is more computationally efficient and robust. No additional stabilization technique, such as both-sides diffusion or reformulation of the constitutive equation, is necessary. A validation is performed with the analytic solution for transient and steady planar Poiseuille flow, with excellent results. Furthermore, the proposed method agrees well with numerical data from the literature for the viscoelastic die swell flow of an Oldroyd-B model. The capabilities to simulate viscoelastic free surface flow are also demonstrated through the simulation of a jet buckling case.https://www.mdpi.com/2076-3417/11/1/439viscoelastic flowcomputational fluid dynamicsvolume of fluidimmersed boundary methods
collection DOAJ
language English
format Article
sources DOAJ
author Simon Ingelsten
Andreas Mark
Roland Kádár
Fredrik Edelvik
spellingShingle Simon Ingelsten
Andreas Mark
Roland Kádár
Fredrik Edelvik
A Backwards-Tracking Lagrangian-Eulerian Method for Viscoelastic Two-Fluid Flows
Applied Sciences
viscoelastic flow
computational fluid dynamics
volume of fluid
immersed boundary methods
author_facet Simon Ingelsten
Andreas Mark
Roland Kádár
Fredrik Edelvik
author_sort Simon Ingelsten
title A Backwards-Tracking Lagrangian-Eulerian Method for Viscoelastic Two-Fluid Flows
title_short A Backwards-Tracking Lagrangian-Eulerian Method for Viscoelastic Two-Fluid Flows
title_full A Backwards-Tracking Lagrangian-Eulerian Method for Viscoelastic Two-Fluid Flows
title_fullStr A Backwards-Tracking Lagrangian-Eulerian Method for Viscoelastic Two-Fluid Flows
title_full_unstemmed A Backwards-Tracking Lagrangian-Eulerian Method for Viscoelastic Two-Fluid Flows
title_sort backwards-tracking lagrangian-eulerian method for viscoelastic two-fluid flows
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2021-01-01
description A new Lagrangian–Eulerian method for the simulation of viscoelastic free surface flow is proposed. The approach is developed from a method in which the constitutive equation for viscoelastic stress is solved at Lagrangian nodes, which are convected by the flow, and interpolated to the Eulerian grid with radial basis functions. In the new method, a backwards-tracking methodology is employed, allowing for fixed locations for the Lagrangian nodes to be chosen a priori. The proposed method is also extended to the simulation of viscoelastic free surface flow with the volume of fluid method. No unstructured interpolation or node redistribution is required with the new approach. Furthermore, the total amount of Lagrangian nodes is significantly reduced when compared to the original Lagrangian–Eulerian method. Consequently, the method is more computationally efficient and robust. No additional stabilization technique, such as both-sides diffusion or reformulation of the constitutive equation, is necessary. A validation is performed with the analytic solution for transient and steady planar Poiseuille flow, with excellent results. Furthermore, the proposed method agrees well with numerical data from the literature for the viscoelastic die swell flow of an Oldroyd-B model. The capabilities to simulate viscoelastic free surface flow are also demonstrated through the simulation of a jet buckling case.
topic viscoelastic flow
computational fluid dynamics
volume of fluid
immersed boundary methods
url https://www.mdpi.com/2076-3417/11/1/439
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