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Main Authors: Rempfer, Georg, Zhu, Chengkai, Stam, Bart, Nesenberend, Mae, Panja, Debabrata, de Graaf, Joost
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2509.01327
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author Rempfer, Georg
Zhu, Chengkai
Stam, Bart
Nesenberend, Mae
Panja, Debabrata
de Graaf, Joost
author_facet Rempfer, Georg
Zhu, Chengkai
Stam, Bart
Nesenberend, Mae
Panja, Debabrata
de Graaf, Joost
contents Understanding the flow of complex media is relevant for a wide range of research fields and industrial applications. Several numerical approaches exist by which approximate solutions can be determined for the Stokes equations that describe microhydrodynamic flows at the continuum level. However, achieving efficiency and accuracy for an incompressible fluid remains challenging. Here, we present an algorithm for solving the Stokes equations for an Oldroyd-B fluid using Fourier transforms. We gain efficiency by leveraging the 'Fastest Fourier Transform in the West' (FFTW). We validate our approach for the well-characterized four-roll mill, which exhibits nearly singular points of stress at the extensional points of the flow. We capture this divergence and showcase the potential of our method. Future work will concentrate on active systems, the introduction of moving boundaries, and application to microfluidic devices.
format Preprint
id arxiv_https___arxiv_org_abs_2509_01327
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Projection-Based Solver for Viscoelastic Stokes Flow using FFTs
Rempfer, Georg
Zhu, Chengkai
Stam, Bart
Nesenberend, Mae
Panja, Debabrata
de Graaf, Joost
Fluid Dynamics
Understanding the flow of complex media is relevant for a wide range of research fields and industrial applications. Several numerical approaches exist by which approximate solutions can be determined for the Stokes equations that describe microhydrodynamic flows at the continuum level. However, achieving efficiency and accuracy for an incompressible fluid remains challenging. Here, we present an algorithm for solving the Stokes equations for an Oldroyd-B fluid using Fourier transforms. We gain efficiency by leveraging the 'Fastest Fourier Transform in the West' (FFTW). We validate our approach for the well-characterized four-roll mill, which exhibits nearly singular points of stress at the extensional points of the flow. We capture this divergence and showcase the potential of our method. Future work will concentrate on active systems, the introduction of moving boundaries, and application to microfluidic devices.
title Projection-Based Solver for Viscoelastic Stokes Flow using FFTs
topic Fluid Dynamics
url https://arxiv.org/abs/2509.01327