Organic matter capture by a high-rate inoculum-chemostat and MBBR system

Author:

Abbasi Hadi1,Élysée Charles1,Labelle Marc-André12,Laflamme Edith34,Gadbois Alain3,Laporte Antoine5,Dold Peter L.6,Comeau Yves1

Affiliation:

1. Department of Civil, Geological and Mining Engineering, Polytechnique Montreal, 2900, Edouard-Montpetit Boulevard, Montreal, QC, Canada H3T 1J4

2. WSP, Suite 525, 2525 Boulevard Daniel-Johnson, Laval, QC, Canada H7T 1S9

3. Veolia Water Technologies Canada Inc., 4105, Sartelon Street, Saint-Laurent, QC, Canada H4S 2B3

4. Department Assainissement/Environnement, Cegep Saint-Laurent, 625, Sainte-Croix Avenue, Montreal, QC, Canada H4 L 3X7

5. City of Repentigny, 435 Iberville Boulevard, Repentigny, QC, Canada J6A 2B6

6. EnviroSim, McMaster Innovation Park, 114A - 175 Longwood Road South, Hamilton, ON, Canada L8P 0A1

Abstract

The main objective of this study was to develop an innovative process to maximize the bio-transformation of colloidal and soluble biodegradable matter (CSB) into particulate matter (XB) for energy recovery via methane production. Two configurations were studied: (1) high-rate moving bed bioreactor (HR-MBBR) and (2) inoculum-chemostat (IC) system consisting of a very HR-MBBR inoculating a continuous flow stirred-tank reactor. The effect of hydraulic retention time (HRT), specific organic loading rate (SOLR), and dissolved oxygen (DO) level were determined using real wastewater at pilot scale. Results showed that in the HR-MBBR process, a very high CSB bio-transformation efficiency (90%) was obtained in a wide range of SOLRs (2.0 to 5.5 g CSB m−2 d−1) corresponding to an optimum HRT of 36 minutes. The IC process reached a maximum CSB bio-transformation efficiency of 77%, at SOLRs ranging from 22 to 30 g CSB m−2 d−1 at an HRT of 3.7 hours. The DO concentration in the HR-MBBR influenced the CSB bio-transformation ratio, while the HRT and the SOLR were the dominant factors influencing this ratio in the IC process. Based on these results, the IC process could be an interesting alternative to high-rate systems towards obtaining energy positive/efficient from water resource recovery facilities.

Publisher

IWA Publishing

Subject

Water Science and Technology

Reference35 articles.

1. Tracking particle size distributions in a moving bed biofilm membrane reactor for treatment of municipal wastewater;Åhl;Water Science and Technology,2006

2. Upgrading of a small wastewater treatment plant in a cold climate region using a moving bed biofilm reactor (MBBR) system;Andreottola;Water Science and Technology,2000

3. Upgrading of a small overloaded activated sludge plant using a MBBR system;Andreottola;Journal of Environmental Science and Health Part A-Toxic/Hazardous Substances & Environmental Engineering,2003

4. Influence of high organic loading rates on COD removal and sludge production in moving bed biofilm reactor;Aygun;Environmental Engineering Science,2008

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