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  4. Numerical and experimental analysis of influence of granule microstructure on its compression breakage
 
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Numerical and experimental analysis of influence of granule microstructure on its compression breakage

Publikationstyp
Journal Article
Date Issued
2016-05-06
Sprache
English
Author(s)
Dosta, Maksym  
Dale, Steven  
Antonyuk, Sergiy  
Wassgren, Carl  
Heinrich, Stefan  
Litster, James D.  
Institut
Feststoffverfahrenstechnik und Partikeltechnologie V-3  
TORE-URI
http://hdl.handle.net/11420/5563
Journal
Powder technology  
Volume
299
Start Page
87
End Page
97
Citation
Powder Technology (299): 87-97 (2016-10-01)
Publisher DOI
10.1016/j.powtec.2016.05.005
Scopus ID
2-s2.0-84975045644
Publisher
Elsevier Science
This contribution analyses how the distribution of components within granules, i.e., the granule microstructure, relates to the breakage characteristics of the final product. Granules produced from glass ballotini with a PVP binder by different formation techniques were characterized using X-ray computer microtomography (XRμT) to obtain the particle, binder, and pore distributions within the granules. The deformation and breakage behavior of granules were then obtained using single granule uniaxial compression tests.To better understand the influence of the particle level interactions and granule microstructure influence on their deformation and breakage, discrete element method (DEM) simulations have been performed using the in-house-developed simulation framework MUSEN Dosta et al. (2013) The granules were generated in a DEM model as a set of primary particles connected with solid bridge bonds. The XRμT measurements were used to reproduce the granule size, shape, and internal microstructure of experimental produced granules. In this way, the force-displacement curves were obtained with DEM using realistic granule microstructures. The range of predicted granule strengths overlapped with the range of experimental measurements in most instances. The simulations were also used to demonstrate that granules with increase binder concentration toward the perimeter of the granule tend to have greater attrition resistance while increasing binder concentration at the core are more resistant to fragmentation. Development of this simulation tool will allow investigators to estimate the stability and predict optimal granule structure.
Subjects
Breakage
Compression
Discrete element method
Granules
Microtomography
Simulation
DDC Class
600: Technik
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