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Electrochemical advanced oxidation processes using novel electrode materials for mineralization and biodegradability enhancement of nanofiltration concentrate of landfill leachates
- Source :
- Water Research, Water Research, IWA Publishing, 2019, 162, pp.446-455. ⟨10.1016/j.watres.2019.07.005⟩, Water Research, IWA Publishing/Elsevier, 2019, 162, pp.446-455. ⟨10.1016/j.watres.2019.07.005⟩
- Publication Year :
- 2019
- Publisher :
- HAL CCSD, 2019.
-
Abstract
- The objective of this study was to implement electrochemical advanced oxidation processes (EAOPs) for mineralization and biodegradability enhancement of nanofiltration (NF) concentrate from landfill leachate initially pre-treated in a membrane bioreactor (MBR). Raw carbon felt (CF) or Fe II Fe III layered double hydroxides-modified CF were used for comparing the efficiency of homogeneous and heterogeneous electro-Fenton (EF), respectively. The highest mineralization rate was obtained by heterogeneous EF: 96% removal of dissolved organic carbon (DOC) was achieved after 8 h of electrolysis at circumneutral initial pH (pH 0 = 7.9) and at 8.3 mA cm −2 . However, the most efficient treatment strategy appeared to be heterogeneous EF at 4.2 mA cm −2 combined with anodic oxidation using Ti 4 O 7 anode (energy consumption = 0.11 kWh g −1 of DOC removed). Respirometric analyses under similar conditions than in the real MBR emphasized the possibility to recirculate the NF retentate towards the MBR after partial mineralization by EAOPs in order to remove the residual biodegradable by-products and improve the global cost effectiveness of the process. Further analyses were also performed in order to better understand the fate of organic and inorganic species during the treatment, including acute toxicity tests (Microtox ® ), characterization of dissolved organic matter by three-dimensional fluorescence spectroscopy, evolution of inorganic ions (ClO 3 − , NH 4 + and NO 3 − ) and identification/quantification of degradation by-products such as carboxylic acids. The obtained results emphasized the interdependence between the MBR process and EAOPs in a combined treatment strategy. Improving the retention in the MBR of colloidal proteins would improve the effectiveness of EAOPs because such compounds were identified as the most refractory. Enhanced nitrification would be also required in the MBR because of the release of NH 4 + from mineralization of refractory organic nitrogen during EAOPs.
- Subjects :
- Environmental Engineering
Anodic oxidation
Cost effectiveness
0208 environmental biotechnology
02 engineering and technology
010501 environmental sciences
Membrane bioreactor
01 natural sciences
Ferric Compounds
Landfill leachate
Dissolved organic carbon
[CHIM]Chemical Sciences
Leachate
Waste Management and Disposal
Electrodes
0105 earth and related environmental sciences
Water Science and Technology
Civil and Structural Engineering
Chemistry
Ecological Modeling
Mineralization (soil science)
Hydrogen Peroxide
Biodegradation
Modified carbon felt
Pollution
6. Clean water
020801 environmental engineering
Biodegradability
Nitrification
Nanofiltration
Electro-fenton
Oxidation-Reduction
Water Pollutants, Chemical
Nuclear chemistry
Sub-stoichiometric titanium oxide
Subjects
Details
- Language :
- English
- ISSN :
- 00431354
- Database :
- OpenAIRE
- Journal :
- Water Research, Water Research, IWA Publishing, 2019, 162, pp.446-455. ⟨10.1016/j.watres.2019.07.005⟩, Water Research, IWA Publishing/Elsevier, 2019, 162, pp.446-455. ⟨10.1016/j.watres.2019.07.005⟩
- Accession number :
- edsair.doi.dedup.....39a4258a76ff7217f827bfaf69204269
- Full Text :
- https://doi.org/10.1016/j.watres.2019.07.005⟩