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PMID: 28929325 Published · ppublish English Journal Article

Computational fluid dynamics (CFD) analysis of airlift bioreactor: effect of draft tube configurations on hydrodynamics, cell suspension, and shear rate.

Bioprocess and biosystems engineering ·Vol. 41 ·No. 1 ·2018-01-00 ·页码 31-45

Pawar SB

Abstract

The biomass productivity of microalgae cells mainly depends on the hydrodynamics of airlift bioreactor (ABR). Thus, the hydrodynamics of concentric tube ABR was initially studied using two-phase three-dimensional CFD simulations with the Eulerian-Lagrangian approach. The performance of ABR (17 L) was examined for different configurations of the draft tube using various drag models such as Grace, Ishii-Zuber, and Schiller-Naumann. The gas holdups in the riser and the downcomer were well predicted using E-L approach. This work was further extended to study the dispersion of microalgae cells in the ABR using three-phase CFD simulations. In this model (combined E-E and E-L), the solid phase (microalgae cells) was dispersed into the continuous liquid phase (water), while the gas phase (air bubbles) was modeled as a particle transport fluid. The effect of non-drag forces such as virtual mass and lift forces was also considered. Flow regimes were explained on the basis of the relative gas holdup distribution in the riser and the downcomer. The microalgae cells were found in suspension for the superficial gas velocities of 0.02-0.04 m s-1 experiencing an average shear of 23.52-44.56 s-1 which is far below the critical limit of cell damage.

Keywords
Airlift photobioreactor CFD modeling Discrete phase model Microalgae cultivation Three-phase flow
MeSH 主题词
Bioreactors Computer Simulation Hydrodynamics Microalgae/growth & development Models, Biological
作者与单位
共 1 位作者,点击展开单位 / ORCID
Pawar Sanjay B
Environmental Biotechnology and Genomics Division, DST Inspire Faculty, CSIR-National Environmental Engineering Research Institute (NEERI), Nagpur, 440020, India. [email protected].
Article Info
Journal
Bioprocess and biosystems engineering
Abbr.
Bioprocess Biosyst Eng
ISSN
1615-7605
Corresponding email
Published
2018-01-00
电子出版
2017-00-19
页码
31-45
Language
English
Country/Region
Germany
NLM ID
101088505
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