| Literature DB >> 31616662 |
Bhupender Kumar1, Anjula Katoch1, Gandham S Prasad1,2, Anirban Roy Choudhury1.
Abstract
Mass transfer is one of the most important factors involved in viscous fermentation processes, like production of pullulan. Impellers play a crucial role in maintaining homogeneity and better mass transfer conditions during the fermentation process. The present study attempted to evaluate the efficiency of impellers with diverse configurations during pullulan fermentation. Initially, the mass transfer coefficients of 10 selected impellers were evaluated in an aqueous system. Among these, three impellers, namely, single helical ribbon, Rushton turbine, and Smith turbine impellers, were found to be more efficient and were further employed in the pullulan fermentation process. The results suggested that the single helical ribbon impeller was able to provide 24% higher pullulan production as compared to the Rushton turbine and Smith turbine impellers. The single helical ribbon was able to maintain the critical demand of dissolved oxygen in fermentation broth. Therefore, it may be commented that the single helical ribbon impeller configuration is suitable for higher production of pullulan during the fermentation process.Entities:
Keywords: Aureobasidium pullulans; exopolysaccharide; impeller; mass transfer; pullulan
Year: 2019 PMID: 31616662 PMCID: PMC6775188 DOI: 10.3389/fbioe.2019.00223
Source DB: PubMed Journal: Front Bioeng Biotechnol ISSN: 2296-4185
Specification of stirred tank reactor.
| Body of vessel (material) | Glass |
| Internal diameter of vessel | 25 cm |
| Vessel height | 47 cm |
| Vessel aspect ratio | 1.9:1 |
| Working volume | 3.3 L |
| Number of baffles | 4 |
| Baffle width | 1 cm |
| Sparger type | Ring |
| Impeller diameter, for all impellers (in cm) | 7.5 |
| Ratio of impeller diameter to tank diameter | 1:2 |
Figure 1Volumetric mass transfer coefficient (KLa) values for various impellers.
Figure 2Effect of aeration and agitation rate on volumetric mass transfer in aqueous system at (A) 0.5 vvm, (B) 1 vvm, and (C) 1.5 vvm aeration. The graph represents the effect of single helical ribbon (SHR), Rushton turbine (RT), and Smith turbine (SI) impellers on mass transfer at varying rates of aeration (0.5, 1, and 1.5 vvm) and agitation (200, 400, and 600 rpm). SI was found to be the most efficient impeller amongst others.
Figure 3Kinetics of fermentative production of pullulan by Aureobasidium pullulans RBF 4A3 with different impeller (A) biomass production, (B) pullulan production, and (C) Dissolved Oxygen (DO) profile. The above graphs represent the comparative effect of three impellers, viz, SHR, RT, and SI, on biomass, pullulan production, and DO profile during 48 h of fermentation process. It is evident from (A,B) that SHR supports the least biomass formation as compared to the other two impellers, hence supporting the highest pullulan production of about 55 g/L.
Fermentation kinetics of pullulan by Aureobasidium pullulans RBF 4A3 with different impeller.
| RT | 1.5 | 40.46 | 44.95 | 0.269 | 0.299 | 1.11 | 0.936 |
| SI | 1.9 | 43.69 | 43.63 | 0.291 | 0.29 | 0.998 | 0.908 |
| SHR | 1.4 | 37.56 | 55.82 | 0.246 | 0.372 | 1.512 | 1.162 |
EPS, exopolysaccharide; RT, Rushton turbine; SI, Smith turbine; SHR, single helical ribbon; BM, Biomass.