Self-inhibition can limit biologically enhanced TCE dissolution from a TCE DNAPL
Autor: | Dirk Springael, Erik Smolders, Pieter Jan Haest, Piet Seuntjens |
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Rok vydání: | 2012 |
Předmět: |
Environmental Engineering
Health Toxicology and Mutagenesis Vinyl chloride Dense non-aqueous phase liquid chemistry.chemical_compound Mass transfer Reductive dechlorination Environmental Chemistry Effluent Dissolution Biology Dehalococcoides biology Bacteria Chemistry Public Health Environmental and Occupational Health General Medicine General Chemistry Biodegradation biology.organism_classification Pollution Trichloroethylene Biodegradation Environmental Models Chemical Environmental chemistry Water Microbiology Water Pollutants Chemical |
Zdroj: | Chemosphere |
ISSN: | 1879-1298 0045-6535 |
Popis: | Biodegradation of trichloroethene (TCE) near a Dense Non Aqueous Phase Liquid (DNAPL) can enhance the dissolution rate of the DNAPL by increasing the concentration gradient at the DNAPL-water interface. Two-dimensional flow-through sand boxes containing a ICE DNAPL and inoculated with a TCE dechlorinating consortium were set up to measure this bio-enhanced dissolution under anaerobic conditions. The total mass of TCE and daughter products in the effluent of the biotic boxes was 3-6 fold larger than in the effluent of the abiotic box. However, the mass of daughter products only accounted for 19-55% of the total mass of chlorinated compounds in the effluent, suggesting that bio-enhanced dissolution factors were maximally 1.3-2.2. The enhanced dissolution most likely primarily resulted from variable DNAPL distribution rather than biodegradation. Specific dechlorination rates previously determined in a stirred liquid medium were used in a reactive transport model to identify the rate limiting factors. The model adequately simulated the overall TCE degradation when predicted resident microbial numbers approached observed values and indicated an enhancement factor for TCE dissolution of 1.01. The model shows that dechlorination of TCE in the 20 box was limited due to the short residence time and the self-inhibition of the TCE degradation. A parameter sensitivity analysis predicts that the bio-enhanced dissolution factor for this TCE source zone can only exceed a value of 2 if the TCE self-inhibition is drastically reduced (when a TCE tolerant dehalogenating community is present) or if the DNAPL is located in a low-permeable layer with a small Darcy velocity. (C) 2012 Elsevier Ltd. All rights reserved. |
Databáze: | OpenAIRE |
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