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20182021
most citedFalling balls in a viscous fluid with contact: Comparing numerical simulations with experimental data

27 citations · 45 across the 6 of their papers we have counts for

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Showing physics.flu-dynShow all

5 papers · 1 filter

physics.flu-dyn202112 cited

Steady azimuthal flow field induced by a rotating sphere near a rigid disk or inside a gap between two coaxially positioned rigid disks

Abdallah Daddi-Moussa-Ider, Alexander R. Sprenger, Thomas Richter +2

Geometric confinements play an important role in many physical and biological processes and significantly affect the rheology and behavior of colloidal suspensions at low Reynolds…

physics.flu-dyn2021

Using a deep neural network to predict the motion of under-resolved triangular rigid bodies in an incompressible flow

Henry von Wahl, Thomas Richter

We consider non-spherical rigid body particles in an incompressible fluid in the regime where the particles are too large to assume that they are simply transported with the fluid…

physics.flu-dyn202027 cited

Falling balls in a viscous fluid with contact: Comparing numerical simulations with experimental data

Henry von Wahl, Thomas Richter, Stefan Frei +1

We evaluate a number of different finite element approaches for fluid-structure (contact) interaction problems against data from physical experiments. For this we take the data fro…

physics.flu-dyn2020

A finite element / neural network framework for modeling suspensions of non-spherical particles. Concepts and medical applications

Martyna Minakowska, Thomas Richter, Sebastian Sager

An accurate prediction of the translational and rotational motion of particles suspended in a fluid is only possible if a complete set of correlations for the force coefficients of…

physics.flu-dyn2020

Settling of spherical particles in the transitional regime

Thomas Hagemeier, Dominique Thévenin, Thomas Richter

The settling process and wall impact of large spherical particles in a stagnant, highly viscous fluid has been observed by means of high-speed shadow imaging. The particles include…