A novel application of a submerged nanofiltration membrane bioreactor (NF MBR) for wastewater treatment
Desalination 146 (2002) 413-420
Authors
Abstract
Nanofiltration (NF) membrane technology has made rapid progress and then extended its application fields. It has obtained in particular the good results in the removal of organic and inorganic matters or microbes in the water and wastewater. To investigate the applicability and characteristics of NF membrane, the membrane bioreactor (MBR) using the cellulose acetate NF membrane was performed to treat synthetic wastewater. A hollow-fiber-type cellulose acetate membrane was chosen to get enough water productivity regardless of its biodegradability. As a result of the experiments, enough water productivity was obtained for 60 days without fatal fouling and membrane cleaning. This raised the applicability of cellulose acetate membrane to the MBR system. Electrolytes were not accumulated in the bioreactor, as its rejection was also low. This enabled the NF MBR to be operated under a low suction pressure and prevented from inhibition against microorganisms, whose activity might be deteriorated by high salt concentration. Nitrification and denitrification happened simultaneously and this might be achieved by the module configuration. The phosphorus was not removed with the loose NF membrane. According to AFM investigation, the cellulose acetate membrane after 71 days has larger voids because of the biodegradation.
Conclusion
To investigate the applicability and characteristics of NF membranes, a membrane bioreactor using a cellulose acetate NF membrane was used to treat synthetic wastewater. A hollowfiber-type cellulose acetate membrane was chosen because of its large surface area, which can get enough water productivity regardless of its biodegradability. As a result of the experi-ments, enough water productivity was obtained for 60 days without fouling and membrane cleaning. This raised the applicability of cellulose acetate membrane to the MBR system. The water productivity increased after 20 days operation. It might be caused by the decrease of electroviscous effect and decreased osmotic pressure, etc. Electrolytes are not accumulated in the bioreactor, as the rejection of it is also low. This enabled the NF MBR to be operated under lowsuction pressure and prevented inhibitions to microorganisms growth and activity due to high salt concentration. The TOC of effluent is about 2.5 mg/L. Nitrification and denitrification occurred simultaneously and might be caused by the module configuration. The phosphorus was not removed with the loose NF membrane. As a result of AFM investigation, the cellulose acetate membrane after 71 days had large voids due to the biodegradation. On the basis of this study, we will use cellulose acetate membranes for domestic wastewater treatment by developing a proper module configuration and/or by intermittently dosing chlorine to the membrane module to control the membrane biodegradation.
Tags
Activated sludge, Hollow-fiber membrane, Membrane bioreactor, Nanofiltration, Wastewater treatment
Source: http://www.desline.com/articoli/4550.pdf