Effects of biofilm structures on oxygen distribution and mass transport
- 1 May 1994
- journal article
- research article
- Published by Wiley in Biotechnology & Bioengineering
- Vol. 43 (11), 1131-1138
- https://doi.org/10.1002/bit.260431118
Abstract
Aerobic biofilms were found to have a complex structure consisting of microbial cell clusters (discrete aggregates of densely packed cells) and interstitial voids. The oxygen distribution was strongly correlated with these strutures. The voids facilitated oxygen transport from the bulk liquid through the biofilm, supplying approximately 50% of the total oxygen consumed by the cells. The mass transport rate from the bulk liquid is influenced by the biofilm structure; the observed exchange surface of the biofilm is twice that calculated for a simple planar geometry. The oxygen diffusion occurred in the direction normal to the cluster surfaces, the horizontal and vertical components of the oxygen gradients were of equal importance. Consequently, for calculations of mass transfer rates a three-dimensional model is necessary. These findings imply that to accurately describe biofilm activity, the relation between the arrangement of structural components and mass transfer must be undrstood. © 1994 John Wiley & Sons, Inc.Keywords
This publication has 27 references indexed in Scilit:
- Floods, channel change, and the hyporheic zoneWater Resources Research, 1999
- Effect of turbulence on nitrifying biofilms at non-limiting substrate conditionsWater Research, 1992
- Imaging of bacterial cells by fluorescence exclusion using scanning confocal laser microscopyJournal of Microbiological Methods, 1992
- Mechanism of persistent infection associated with peritoneal implantsJournal of Medical Microbiology, 1992
- Development and experimental evaluation of a steady‐state, multispecies biofilm modelBiotechnology & Bioengineering, 1992
- An evaluation of mathematical models of the transport of biologically reacting solutes in saturated soils and aquifersWater Resources Research, 1989
- A multispecies biofilm modelBiotechnology & Bioengineering, 1986
- Mass transfer mechanisms in a heterotrophic biofilmWater Research, 1985
- Microbial film development in a trickling filterMicrobial Ecology, 1975
- Diffusion and Nuclear Spin Relaxation in WaterPhysical Review B, 1958