Thomas Zauner
University of Stuttgart
7 Papers
22 Citations
Thomas Zauner is an academic researcher from University of Stuttgart. The author has contributed to research in topics: Porous medium & Lattice Boltzmann methods. The author has an hindex of 4, co-authored 6 publications.
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Papers
Quantitative analysis of numerical estimates for the permeability of porous media from lattice-Boltzmann simulations
Ariel Narváez,Ariel Narváez,Thomas Zauner,Frank Raischel,Rudolf Hilfer,Rudolf Hilfer,Jens Harting,Jens Harting +7 more
TL;DR: It is shown that a significant difference of the calculated permeabilities can be found unless one uses a carefully selected set-up and a detailed discussion of possible simulation set-ups and quantitative studies of the influence of simulation parameters are presented.
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Quantitative analysis of numerical estimates for the permeability of porous media from lattice-Boltzmann simulations
Ariel Narváez,Ariel Narváez,Thomas Zauner,Frank Raischel,Rudolf Hilfer,Rudolf Hilfer,Jens Harting,Jens Harting +7 more
TL;DR: In this article, a detailed discussion of possible simulation setups and quantitative studies of the influence of simulation parameters are presented and compared to other numerical permeability measurements in the literature, showing that a significant difference of the calculated permeabilities can be found unless one uses a carefully selected setup.
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Particle-based Rendering for Porous Media
Sebastian Grottel,Guido Reina,Thomas Zauner,Rudolf Hilfer,Thomas Ertl +4 more
- 29 Nov 2010
TL;DR: The paper at hand investigates the advantages and drawbacks of both approaches by analyzing the performance of state-of-the-art rendering methods employing vertex-buffer objects, hardware-supported instancing, geometry shader, and GPU-based ray casting.
9
Numerical Modeling of Fluid Flow in Porous Media and in Driven Colloidal Suspensions
Jens Harting,Thomas Zauner,Rudolf Weeber,Rudolf Hilfer +3 more
- 01 Jan 2009
TL;DR: Brownian dynamics simulations of optical tweezer experiments where a large colloidal particle is dragged through a polymer solution and a colloidal crystal are focused on to improve the understanding of structuring effects, jamming behavior and defect formation in such colloidal systems.
Application of a force field algorithm for creating strongly correlated multiscale sphere packings
TL;DR: Results affirm that reliable, predictive calculations for multiscale porous microstructures depend on the availability of large realistic continuum models, and the algorithm presented herein can be used as a starting point.
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