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A one dimensional moving bed biofilm reactor model for nitrification of municipal wastewaters
Authors:Barry  Ugo  Choubert  Jean-Marc  Canler   Jean-Pierre  Pétrimaux  Olivier  Héduit  Alain  Lessard  Paul
Affiliation:1.IRSTEA, UR MALY, 5 rue de la Doua, BP 32108, 69616, Villeurbanne, France
;2.VINCI Environnement, 89 boulevard Franklin Roosevelt, 92506, Rueil Malmaison Cedex, France
;3.Irstea, UR HBAN, 1 rue Pierre-Gilles de Gennes, CS 10030, 92761, Antony Cedex, France
;4.Civil and Water Engineering Department, Faculty of Sciences and Engineering, Laval University, Québec, G1V 0A6, Canada
;
Abstract:

This work presents a one-dimensional model of a moving bed bioreactor (MBBR) process designed for the removal of nitrogen from raw wastewaters. A comprehensive experimental strategy was deployed at a semi-industrial pilot-scale plant fed with a municipal wastewater operated at 10–12 °C, and surface loading rates of 1–2 g filtered COD/m2 d and 0.4–0.55 g NH4-N/m2 d. Data were collected on influent/effluent composition, and on measurement of key variables or parameters (biofilm mass and maximal thickness, thickness of the limit liquid layer, maximal nitrification rate, oxygen mass transfer coefficient). Based on time-course variations in these variables, the MBBR model was calibrated at two time-scales and magnitudes of dynamic conditions, i.e., short-term (4 days) calibration under dynamic conditions and long-term (33 days) calibration, and for three types of carriers. A set of parameters suitable for the conditions was proposed, and the calibrated parameter set is able to simulate the time-course change of nitrogen forms in the effluent of the MBBR tanks, under the tested operated conditions. Parameters linked to diffusion had a strong influence on how robustly the model is able to accurately reproduce time-course changes in effluent quality. Then the model was used to optimize the operations of MBBR layout. It was shown that the main optimization track consists of the limitation of the aeration supply without changing the overall performance of the process. Further work would investigate the influence of the hydrodynamic conditions onto the thickness of the limit liquid layer and the “apparent” diffusion coefficient in the biofilm parameters.

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