Model of the anaerobic metabolism of the biological phosphorus removal process: Stoichiometry and pH influence
- 15 March 1994
- journal article
- research article
- Published by Wiley in Biotechnology & Bioengineering
- Vol. 43 (6) , 461-470
- https://doi.org/10.1002/bit.260430605
Abstract
In the anaerobic phase of a biological phosphorus removal process, acetate is taken up and converted to PHB utilizing both energy generated in the degradation of polyphosphate to phosphate, which is released, and energy generated in the conversion of glycogen to poly‐β‐hydroxy butyrate (PHB). The phosphate/acetate ratio cannot be considered a metabolic constant, because the energy requirement for the uptake of acetate is strongly influenced by the pH value. The observed phosphate/acetate ratio shows a variation of 0.25 to 0.75 P‐mol/C‐mol in a pH range of 5.5 to 8.5. It is shown that stored glycogen takes part in the metabolism to provide reduction equivalents and energy for the conversion of acetate to PHB. A structured metabolic model, based on glycogen as the source of the reduction equivalents in the anaerobic phase and the effect of the pH on the energy requirement of the uptake of acetate, is developed. The model explains the experimental results satisfactorily. © 1994 John Wiley & Sons, Inc.Keywords
This publication has 12 references indexed in Scilit:
- The applied microbiology of enhanced biological phosphate removal—accomplishments and needsWater Research, 1991
- Evaluation of Biochemical Models for Biological Excess Phosphorus RemovalWater Science & Technology, 1991
- Enhanced Biological Phosphorus Removal in Activated Sludge SystemsPublished by Springer Nature ,1990
- Biological mechanism of acetate uptake mediated by carbohydrate consumption in excess phosphorus removal systemsWater Research, 1988
- ATP production from polyphosphate in Acinetobacter strain 210AArchiv für Mikrobiologie, 1987
- EFFECT OF PHOSPHORUS ACCUMULATION ON ACETATE METABOLISM IN THE BIOLOGICAL PHOSPHORUS REMOVAL PROCESSPublished by Elsevier ,1987
- Biochemical model for enhanced biological phosphorus removalWater Research, 1986
- Exchange of Organics, Phosphate and Cations between Sludge and Water in Biological Phosphorus and Nitrogen Removal ProcessesWater Science & Technology, 1985
- Bacterial MetabolismPublished by Springer Nature ,1979
- The Role and Regulation of Energy Reserve Polymers in Micro-organismsPublished by Elsevier ,1973