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Vibro-fluidization of cohesive particles.

Authors :
Li, Shuo
Zhang, Huili
Baeyens, Jan
Yang, Miao
Li, Zehao
Deng, Yimin
Source :
Powder Technology. Jan2024, Vol. 432, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

The paper assesses the behavior of cohesive Geldart C-type particles, when fluidized by air with the aid of vibration. Together with their poor flowability and irregular hopper discharge, bubbling fluidization is very difficult to achieve due to the possible particle agglomeration and gas channeling. When trying to fluidize cohesive particles, the gas drag force cannot break the inter-particle bonds. Despite all these handling and operation problems, ultrafine particles of micron- or nanosize are increasingly applied in industrial processes. To disrupt the stable gas channels and cracks, a mechanical vibration is one of the easier and preferred methods to improve the fluidity of the cohesive particles. In the present study, several 2 to 40 μm particles were used. A comparison with Geldart A-type particles was also made. Experimental results were used to validate a more fundamental approach based upon the balance of forces acting on the particles. This resulted in a new delineation of the Geldart C/A boundary where the critical transition particle size for particles of given absolute density, ρ p , Hamaker constant, H , and inter-particle distance, z 0 , decreases with an increasing vibration intensity, I , according to d crit 2 ρ p = 8.03 H z 0 2 1 + I g. Mechanical vibration is a non-intrusive method to improve the fluidity of the cohesive particles and a new Geldart C/A boundary was modified for an increasing vibration intensity. [Display omitted] • Assesses the behavior of cohesive Geldart C-type particles, when fluidized by air with the aid of vibration. • Despite handling and operation problems, ultrafine particles are increasingly applied in industrial processes. • Mechanical vibration is a non-intrusive method to improve the fluidity of the cohesive particles. • Several 2 to 40 μm particles were examined and compared with Geldart A-type particles. • Experimental results and a balance of forces provided a new Geldart C/A boundary for an increasing vibration intensity [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00325910
Volume :
432
Database :
Academic Search Index
Journal :
Powder Technology
Publication Type :
Academic Journal
Accession number :
173974135
Full Text :
https://doi.org/10.1016/j.powtec.2023.119107