Abstract
Predicting the macroscopic properties of thin fiber-based porous materials from their microscopic morphology remains challenging because of the structural heterogeneity of these materials. In this study, computational fluid dynamics simulations were performed to compute volume air flow based on tomographic image data of uncompressed and compressed paper sheets. To reduce computational demands, a pore network model was employed, allowing volume air flow to be approximated with less computational effort. To improve prediction accuracy, geometric descriptors of the pore space, such as porosity, surface area, median pore radius, and geodesic tortuosity, were combined with predictions of the pore network model. This integrated approach significantly improves the predictive power of the pore network model and indicates which aspects of the pore space morphology are not accurately represented within the pore network model. In particular, we illustrate that a high correlation among descriptors does not necessarily imply redundancy in a combined prediction.
| Originalsprache | englisch |
|---|---|
| Aufsatznummer | 15 |
| Fachzeitschrift | Transport in Porous Media |
| Jahrgang | 153 |
| Ausgabenummer | 2 |
| DOIs | |
| Publikationsstatus | Veröffentlicht - Feb. 2026 |
ASJC Scopus subject areas
- Katalyse
- Allgemeine chemische Verfahrenstechnik
Fields of Expertise
- Advanced Materials Science
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Porous microstructure of fibrous sheets in two transport regimes
Serebrennikova, A. (Beitragende/r), Gräfensteiner, P. (Beitragende/r), Neumann, M. (Beitragende/r), Schmidt, V. (Beitragende/r), Rodriguez, A. (Beitragende/r), Leitl, P. (Beitragende/r), Napetschnig, W. (Beitragende/r), Baikova, E. (Beitragende/r) & Zojer, K. (Redner/in)
20 März 2025Aktivität: Vortrag oder Präsentation › Vortrag bei Konferenz oder Fachtagung › Science to science
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