Abstract
The accuracy of viscosity predictions is a crucial aspect of polymer melt flow model-ing and essential for the design of coextrusion die systems. In the field of non-Newtonian fluidmodeling for coextrusion flows through rectangular ducts, significant progress has been madein understanding multilayer flow dynamics. Our fundamental research, employing numericaltechniques such as the shooting method, finite element method, and finite difference methodfor flow evaluation, has established a critical base for the field. Our current research advancesfluid dynamics by refining our existing numerical solver, specifically developed for multilayercoextrusion flows. We aim to enhance the solver’s performance by implementing more sophis-ticated calculations of shear rates that go beyond the traditional approach. The traditionalapproach often relies on average flow velocities and channel heights, which can underrepresentthe complexity of experimentally studied polymer multilayer flows. Our study systematicallycompares various definitions for characteristic shear rates to describe the local shear ratedependent viscosity behavior using, for instance, a local power law model. A thorough erroranalysis quantifies the accuracy of each model and its predictive limitations for industriallyrelevant material combinations and operating conditions. This includes CFD simulations andexperimental data comparisons, employing methods aligned with our fundamental research in this area. Furthermore, our work paves the way for integrating these advanced fluid dynamicsmodels into the evolving field of process digitalization, thereby contributing to the developmentof more efficient, digitally integrated manufacturing processes.
| Original language | German (Austria) |
|---|---|
| Title of host publication | 39th International Conference of the Polymer Processing Society |
| Publisher | Ediciones Uniandes |
| Chapter | Modeling and Simulation |
| Pages | 236-246 |
| Number of pages | 11 |
| ISBN (Electronic) | 978-958-798-779-9 |
| Publication status | Published - Dec 2024 |
Fields of science
- 102009 Computer simulation
- 205 Materials Engineering
- 205012 Polymer processing
- 205011 Polymer engineering
- 104019 Polymer sciences
- 104018 Polymer chemistry
- 502058 Digital transformation
JKU Focus areas
- Digital Transformation
- Sustainable Development: Responsible Technologies and Management
Research output
- 1 Article
-
Predicting the co-extrusion flow of non-Newtonian fluids through rectangular ducts – A hybrid modeling approach
Hammer, A., Roland, W., Marschik, C. & Steinbichler, G., Sept 2021, In: Journal of Non-Newtonian Fluid Mechanics. 295, 104618, 22 p., 104618.Research output: Contribution to journal › Article › peer-review
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