Colloid Removal in Fluidized‐Bed Biofilm Reactor
- 1 March 1990
- journal article
- Published by American Society of Civil Engineers (ASCE) in Journal of Environmental Engineering
- Vol. 116 (2) , 314-329
- https://doi.org/10.1061/(asce)0733-9372(1990)116:2(314)
Abstract
A methanogenic fluidized‐bed biofilm reactor was successfully operated for the removal of 1‐μm organic colloids. The removal efficiency of total suspended solids was 72–76%, and the total chemical oxygen demand removal was 91–93%. Since some of the effluent suspended solids were biomass, the actual removal efficiency of the original organic particles was approximately 90%. Mechanistic filtration theory was modified to include bed fluidization, biofilm attachment to the collector surface, and effluent recycle. Independent filtration experiments showed that biofilm accumulation increased the cohesion coefficient from zero to 0.04. The predictions using a measured cohesion efficiency of 0.04 agreed with the findings from the methanogenic system: Removal of input suspended solids was 90% at 31% bed expansion; the recycle of effluent was an important determinant of the ability of the fluidized‐bed system effectively to filter the particle material; and, for the organic loading conditions of this study, the rem...Keywords
This publication has 7 references indexed in Scilit:
- Colloid Filtration in Fluidized BedsJournal of Environmental Engineering, 1990
- Particles, Pretreatment, and Performance in Water FiltrationJournal of Environmental Engineering, 1985
- Performance of Expanded‐Bed Methanogenic ReactorJournal of Environmental Engineering, 1985
- Role of Surface Active Media in Anaerobic FiltersJournal of the Environmental Engineering Division, 1982
- Adsorption of hydrolyzable metal ions at the oxide—water interface. III. A thermodynamic model of adsorptionJournal of Colloid and Interface Science, 1972
- Water and waste water filtration. Concepts and applicationsEnvironmental Science & Technology, 1971
- Viscous flow in multiparticle systems: Slow motion of fluids relative to beds of spherical particlesAIChE Journal, 1958