Treatment of table olive washing water using trickling filters, constructed wetlands and electrooxidation
The production of table olives is a significant economic activity in Mediterranean countries. Table olive processing generates large volumes of rinsing water that are characterized by high organic matter and phenol contents. Due to these characteristics, a combination of more than one technology is...
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Published in: | Environmental science and pollution research international Vol. 24; no. 2; pp. 1085 - 1092 |
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Abstract | The production of table olives is a significant economic activity in Mediterranean countries. Table olive processing generates large volumes of rinsing water that are characterized by high organic matter and phenol contents. Due to these characteristics, a combination of more than one technology is imperative to ensure efficient treatment with low operational cost. Previously, biological filters were combined with electrooxidation to treat table olive washing water. Although this combination was successful in reducing pollutant loads, its cost could be further reduced. Constructed wetlands could be an eligible treatment method for integrated table olive washing water treatment as they have proved tolerant to high organic matter and phenol loads. Two pilot-scale horizontal subsurface constructed wetlands, one planted and one unplanted, were combined with a biological filter and electrooxidation over a boron-doped diamond anode to treat table olive washing water. In the biological filter inlet, chemical oxygen demand (COD) concentrations ranged from 5500 to 15,000 mg/L, while mean COD influent concentration in the constructed wetlands was 2800 mg/L. The wetlands proved to be an efficient intermediate treatment stage, since COD removal levels for the planted unit reached 99 % (mean 70 %), while the unplanted unit presented removal rates of around 65 %. Moreover, the concentration of phenols in the effluent was typically below 100 mg/L. The integrated trickling filter-constructed wetland-electrooxidation treatment system examined here could mineralize and decolorize table olive washing water and fully remove its phenolic content. |
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AbstractList | The production of table olives is a significant economic activity in Mediterranean countries. Table olive processing generates large volumes of rinsing water that are characterized by high organic matter and phenol contents. Due to these characteristics, a combination of more than one technology is imperative to ensure efficient treatment with low operational cost. Previously, biological filters were combined with electrooxidation to treat table olive washing water. Although this combination was successful in reducing pollutant loads, its cost could be further reduced. Constructed wetlands could be an eligible treatment method for integrated table olive washing water treatment as they have proved tolerant to high organic matter and phenol loads. Two pilot-scale horizontal subsurface constructed wetlands, one planted and one unplanted, were combined with a biological filter and electrooxidation over a boron-doped diamond anode to treat table olive washing water. In the biological filter inlet, chemical oxygen demand (COD) concentrations ranged from 5500 to 15,000 mg/L, while mean COD influent concentration in the constructed wetlands was 2800 mg/L. The wetlands proved to be an efficient intermediate treatment stage, since COD removal levels for the planted unit reached 99 % (mean 70 %), while the unplanted unit presented removal rates of around 65 %. Moreover, the concentration of phenols in the effluent was typically below 100 mg/L. The integrated trickling filter-constructed wetland-electrooxidation treatment system examined here could mineralize and decolorize table olive washing water and fully remove its phenolic content. The production of table olives is a significant economic activity in Mediterranean countries. Table olive processing generates large volumes of rinsing water that are characterized by high organic matter and phenol contents. Due to these characteristics, a combination of more than one technology is imperative to ensure efficient treatment with low operational cost. Previously, biological filters were combined with electrooxidation to treat table olive washing water. Although this combination was successful in reducing pollutant loads, its cost could be further reduced. Constructed wetlands could be an eligible treatment method for integrated table olive washing water treatment as they have proved tolerant to high organic matter and phenol loads. Two pilot-scale horizontal subsurface constructed wetlands, one planted and one unplanted, were combined with a biological filter and electrooxidation over a boron-doped diamond anode to treat table olive washing water. In the biological filter inlet, chemical oxygen demand (COD) concentrations ranged from 5500 to 15,000 mg/L, while mean COD influent concentration in the constructed wetlands was 2800 mg/L. The wetlands proved to be an efficient intermediate treatment stage, since COD removal levels for the planted unit reached 99 % (mean 70 %), while the unplanted unit presented removal rates of around 65 %. Moreover, the concentration of phenols in the effluent was typically below 100 mg/L. The integrated trickling filter-constructed wetland-electrooxidation treatment system examined here could mineralize and decolorize table olive washing water and fully remove its phenolic content. |
Author | Tatoulis, Triantafyllos Tekerlekopoulou, Athanasia G. Stefanakis, Alexandros Frontistis, Zacharias Akratos, Christos S. Vayenas, Dimitrios V. Mantzavinos, Dionissios |
Author_xml | – sequence: 1 givenname: Triantafyllos surname: Tatoulis fullname: Tatoulis, Triantafyllos organization: Department of Environmental & Natural Resources Management, University of Patras – sequence: 2 givenname: Alexandros surname: Stefanakis fullname: Stefanakis, Alexandros organization: Department of Environmental & Natural Resources Management, University of Patras – sequence: 3 givenname: Zacharias surname: Frontistis fullname: Frontistis, Zacharias organization: Department of Chemical Engineering, University of Patras – sequence: 4 givenname: Christos S. surname: Akratos fullname: Akratos, Christos S. email: cakratos@upatras.gr organization: Department of Environmental & Natural Resources Management, University of Patras – sequence: 5 givenname: Athanasia G. surname: Tekerlekopoulou fullname: Tekerlekopoulou, Athanasia G. organization: Department of Environmental & Natural Resources Management, University of Patras – sequence: 6 givenname: Dionissios surname: Mantzavinos fullname: Mantzavinos, Dionissios organization: Department of Chemical Engineering, University of Patras – sequence: 7 givenname: Dimitrios V. surname: Vayenas fullname: Vayenas, Dimitrios V. organization: Department of Chemical Engineering, University of Patras, Institute of Chemical Engineering and High Temperature Chemical Processes (FORTH/ ICE-HT) |
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Keywords | Electrooxidation Phenols Biological filter Hydraulic residence time Table olive washing water Constructed wetlands |
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SubjectTerms | Advances and trends in Advanced Oxidation processes Agriculture Aquatic Pollution Artificial wetlands Atmospheric Protection/Air Quality Control/Air Pollution Biofilters Biofiltration Biological Oxygen Demand Analysis Boron Chemical oxygen demand Construction costs Construction planning Decoloring Diamonds Earth and Environmental Science Economic conditions Ecotoxicology Environment Environmental Chemistry Environmental Health Environmental science Filters Filtration Horizontal loads Mediterranean Region Olea Olives Organic matter Phenolic compounds Phenols Phenols - chemistry Pollution control Pollution load Trickling filters Washing Waste Water Technology Water Management Water Pollutants, Chemical - chemistry Water Pollution Control Water purification Water Purification - methods Water treatment Wetlands |
Title | Treatment of table olive washing water using trickling filters, constructed wetlands and electrooxidation |
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