The combined effects of carbon/nitrogen ratio, suspended biomass, hydraulic retention time and dissolved oxygen on nutrient removal in a laboratory-scale anaerobic–anoxic–oxic activated sludge biofilm reactor
| dc.contributor.author | Manu, D.S. | |
| dc.contributor.author | Thalla, A.K. | |
| dc.date.accessioned | 2026-02-05T09:31:46Z | |
| dc.date.issued | 2018 | |
| dc.description.abstract | The current trend in sustainable development deals mainly with environmental management. There is a need for economically affordable, advanced treatment methods for the proper treatment and management of domestic wastewater containing excess nutrients (such as nitrogen and phosphorus) which can cause eutrophication. The reduction of the excess nutrient content of wastewater by appropriate technology is of much concern to the environmentalist. In the current study, a novel integrated anaerobic–anoxic–oxic activated sludge biofilm (A2O-AS-biofilm) reactor was designed and operated to improve the biological nutrient removal by varying reactor operating conditions such as carbon to nitrogen (C/N) ratio, suspended biomass, hydraulic retention time (HRT) and dissolved oxygen (DO). Based on various trials, it was seen that the A2O-AS-biofilm reactor achieved good removal efficiencies with regard to chemical oxygen demand (95.5%), total phosphorus (93.1%), ammonia nitrogen concentration (NH<inf>4</inf>þ-N) (98%) and total nitrogen (80%) when the reactor was maintained at C/N ratio of 4, suspended biomass of 3 to 3.5 g/L, HRT of 10 h, and DO of 1.5 to 2.5 mg/L. Scanning electron microscopy (SEM) of suspended and attached biofilm showed a dense structure of coccus and bacillus bacteria with the diameter ranging from 0.3 to 1.2 ?m. The Fourier transform infrared (FTIR) spectroscopy results indicated phosphorylated macromolecules and carbohydrates mix or bind with extracellular proteins in exopolysaccharides. © IWA Publishing 2018. | |
| dc.identifier.citation | Water Science and Technology, 2018, 77, 1, pp. 248-259 | |
| dc.identifier.issn | 2731223 | |
| dc.identifier.uri | https://doi.org/10.2166/wst.2017.537 | |
| dc.identifier.uri | https://idr.nitk.ac.in/handle/123456789/25367 | |
| dc.publisher | IWA Publishing | |
| dc.subject | Ammonia | |
| dc.subject | Bacteriology | |
| dc.subject | Biochemical oxygen demand | |
| dc.subject | Biofilms | |
| dc.subject | Biomass | |
| dc.subject | Bioreactors | |
| dc.subject | Carbon | |
| dc.subject | Dissolved oxygen | |
| dc.subject | Environmental management | |
| dc.subject | Eutrophication | |
| dc.subject | Fourier transform infrared spectroscopy | |
| dc.subject | Nitrogen | |
| dc.subject | Nitrogen removal | |
| dc.subject | Nutrients | |
| dc.subject | Phosphorus | |
| dc.subject | Proteins | |
| dc.subject | Sustainable development | |
| dc.subject | Wastewater treatment | |
| dc.subject | 'current | |
| dc.subject | Activated sludge | |
| dc.subject | Activated sludge biofilm | |
| dc.subject | Anaerobics | |
| dc.subject | Biofilm reactor | |
| dc.subject | Carbon/nitrogen | |
| dc.subject | Fourier transform infrared | |
| dc.subject | Hydraulic retention | |
| dc.subject | Retention time | |
| dc.subject | Suspended biomass | |
| dc.subject | Scanning electron microscopy | |
| dc.subject | ammonia | |
| dc.subject | carbon | |
| dc.subject | dissolved oxygen | |
| dc.subject | nitrogen | |
| dc.subject | oxygen | |
| dc.subject | phosphorus | |
| dc.subject | activated sludge | |
| dc.subject | anoxic conditions | |
| dc.subject | appropriate technology | |
| dc.subject | bacterium | |
| dc.subject | biofilm | |
| dc.subject | biomass | |
| dc.subject | bioreactor | |
| dc.subject | chemical oxygen demand | |
| dc.subject | FTIR spectroscopy | |
| dc.subject | laboratory method | |
| dc.subject | microbial activity | |
| dc.subject | oxic conditions | |
| dc.subject | pollutant removal | |
| dc.subject | polysaccharide | |
| dc.subject | sustainable development | |
| dc.subject | wastewater | |
| dc.subject | wastewater treatment | |
| dc.subject | Article | |
| dc.subject | Bacillus | |
| dc.subject | carbon nitrogen ratio | |
| dc.subject | coccus (bacterium) | |
| dc.subject | controlled study | |
| dc.subject | infrared spectroscopy | |
| dc.subject | macromolecule | |
| dc.subject | nitrogen concentration | |
| dc.subject | nonhuman | |
| dc.subject | nutrient content | |
| dc.subject | retention time | |
| dc.subject | scanning electron microscopy | |
| dc.subject | suspended particulate matter | |
| dc.subject | waste component removal | |
| dc.subject | anaerobic growth | |
| dc.subject | biochemical oxygen demand | |
| dc.subject | chemistry | |
| dc.subject | growth, development and aging | |
| dc.subject | hydrodynamics | |
| dc.subject | microbiology | |
| dc.subject | procedures | |
| dc.subject | sewage | |
| dc.subject | waste water | |
| dc.subject | Coccus (scale) | |
| dc.subject | Anaerobiosis | |
| dc.subject | Biological Oxygen Demand Analysis | |
| dc.subject | Hydrodynamics | |
| dc.subject | Oxygen | |
| dc.subject | Sewage | |
| dc.subject | Waste Disposal, Fluid | |
| dc.subject | Waste Water | |
| dc.title | The combined effects of carbon/nitrogen ratio, suspended biomass, hydraulic retention time and dissolved oxygen on nutrient removal in a laboratory-scale anaerobic–anoxic–oxic activated sludge biofilm reactor |
