Bioseparations and Downstream Processing
Particle image velocimetry (PIV) study of rotating cylindrical filters for animal cell perfusion processes
Article first published online: 18 OCT 2012
DOI: 10.1002/btpr.1618
Copyright © 2012 American Institute of Chemical Engineers (AIChE)
Additional Information
How to Cite
Figueredo-Cardero, A., Chico, E., Castilho, L. and de Andrade Medronho, R. (2012), Particle image velocimetry (PIV) study of rotating cylindrical filters for animal cell perfusion processes. Biotechnol Progress, 28: 1491–1498. doi: 10.1002/btpr.1618
Publication History
- Issue published online: 4 DEC 2012
- Article first published online: 18 OCT 2012
- Accepted manuscript online: 22 AUG 2012 09:09AM EST
- Manuscript Revised: 6 AUG 2012
- Manuscript Received: 5 APR 2012
Funded by
- CNPq
- Capes
- FAPERJ
- Abstract
- Article
- References
- Cited By
Keywords:
- rotating cylindrical filter (RCF);
- particle image velocimetry (PIV);
- animal cell perfusion culture;
- slip velocity;
- turbulence statistics
Abstract
In the present work, the main fluid flow features inside a rotating cylindrical filtration (RCF) system used as external cell retention device for animal cell perfusion processes were investigated using particle image velocimetry (PIV). The motivation behind this work was to provide experimental fluid dynamic data for such turbulent flow using a high-permeability filter, given the lack of information about this system in the literature. The results shown herein gave evidence that, at the boundary between the filter mesh and the fluid, a slip velocity condition in the tangential direction does exist, which had not been reported in the literature so far. In the RCF system tested, this accounted for a fluid velocity 10% lower than that of the filter tip, which could be important for the cake formation kinetics during filtration. Evidence confirming the existence of Taylor vortices under conditions of turbulent flow and high permeability, typical of animal cell perfusion RCF systems, was obtained. Second-order turbulence statistics were successfully calculated. The radial behavior of the second-order turbulent moments revealed that turbulence in this system is highly anisotropic, which is relevant for performing numerical simulations of this system. © 2012 American Institute of Chemical Engineers Biotechnol. Prog., 2012

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