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  4. DEM informed surrogate modelling for PBM in fluidized beds
 
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DEM informed surrogate modelling for PBM in fluidized beds

Citation Link: https://doi.org/10.15480/882.15266
Type
Experimental Data
Simulation Data
Text
Date Issued
2025-10-21
Author(s)
Stöckl, Gero  
Feststoffverfahrenstechnik und Partikeltechnologie V-3  
Researcher
Stöckl, Gero  
Feststoffverfahrenstechnik und Partikeltechnologie V-3  
Stefan Bellinghausen  
Siemens AG  
Heinrich, Stefan  
Feststoffverfahrenstechnik und Partikeltechnologie V-3  
Data Curator
Stöckl, Gero  
Feststoffverfahrenstechnik und Partikeltechnologie V-3  
Data Collector
Stöckl, Gero  
Feststoffverfahrenstechnik und Partikeltechnologie V-3  
Contact
Stöckl, Gero  
Feststoffverfahrenstechnik und Partikeltechnologie V-3  
Heinrich, Stefan  
Language
English
DOI
https://doi.org/10.15480/882.15266
TORE-URI
https://hdl.handle.net/11420/55888
Abstract
A novel methodology combining theoretical and experimental techniques for analyzing agglomerate growth in fluidized bed granulators has been developed. The approach integrates (i) population balance modeling (PBM) of agglomerate growth, (ii) hydrodynamic modeling of gas–solid flow using CFD-DEM, (iii) surrogate modeling of particle flow behavior and agglomerate formation, (iv) the use of material properties as a collision success criterion and (v) experimental studies of agglomeration in a pilot scale fluidized bed. A simplified CFD-DEM model of the gas–solid flow was first developed, followed by a PBM for agglomeration. Fluidized bed agglomeration experiments with the common food ingredient maltodextrin revealed that agglomerate growth was influenced by the moisture-dependent glass transition of the material. The experimental data is used to calibrate and validate the PBM, demonstrating its high accuracy in predicting agglomerate growth dynamics.
Subjects
Population balance modelling
PBM
Computational Fluid Dynamics
CFD
Discrete Element Method
DEM
Experiment
Fluidized bed
Agglomeration
DDC Class
620.1: Engineering Mechanics and Materials Science
660.6: Biotechnology
Funding(s)
Training in Upscaling particle Systems: Advancing Industry across Length-scales  
Funding Organisations
Horizon Europe  
More Funding Information
This project has received funding from the European Union’s Horizon 2020 research and innovation programme under the Marie Skłodowska Curie grant agreement No 955661.
License
https://creativecommons.org/publicdomain/mark/1.0/
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