Formatted Title
Cost Benefit Analysis of Chlorinated Ethene Bioaugmentation in Groundwater
Background/Objectives
Background/Objectives. The purpose of the in situ bioremediation (ISB) system was to evaluate biodegradation of chlorinated ethenes in groundwater via biostimulation in combination with bioaugmentation. The groundwater has displayed elevated concentrations (> 1 milligram per liter) of total chlorinated volatile organic compounds (cVOCs) including: tetrachloroethene (PCE), trichloroethene (TCE), cis-1,2-dichloroethene (cis-1,2-DCE), and 1,1-dichloroethene. Background concentrations of total organic carbon are low, less than 3 milligrams per liter (mg/L) and dissolved oxygen ranges from anaerobic to aerobic conditions. This project evaluated the cost benefit of bioaugmentation.
Approach/Activities
Approach/Activities. A series of injections was performed in three separate locations showing elevated cVOC concentrations. A major benefit of the injection system was to optimize and repurpose various site wells. The injection amendments included: biostimulation with a quick release carbon substrate and an emulsified oil substrate to sustain the microbial population for an extended time period and support reductive dechlorination, and bioaugmentation with Dehalococcoides microbial consortium to promote complete reductive dechlorination of the chlorinated ethenes. A buffer was also injected to mitigate pH reduction in groundwater. A monitoring program was developed to evaluate effectiveness of the treatment system including field parameters, cVOCs, geochemical parameters, and key microbial populations and genes.
Results/Lessons Learned
Results/Lessons Learned: Less than 4 months after injecting the carbon substrates and Dehalococcoides, a one to three order of magnitude increase in total organic carbon (TOC) was observed in the impacted groundwater corresponding to a decrease in oxidation reduction potential (ORP) to as low as -354 millivolts. The carbon substrate impacted areas showed ORP less than -243 mV. Competing electron acceptors, oxygen, nitrate and sulfate were reduced to less than 1.3 mg/L, 0.7 mg/L and non-detect (<10 mg/L), respectively, demonstrating that conditions were now appropriate for reductive dechlorination. TCE was decreased by more than 85% in two of the areas and more than 65% in the third area. In addition to the TCE reduction, significant reductions in cis-1,2-DCE and vinyl chloride (VC) were observed in one area. However, in two other areas, there was a major increase in cis-1,2-DCE and VC. The pH of the groundwater ranged from 5.8 to 6.5 and may need further buffering to provide amenable conditions for Dehalococcoides.
This presentation will discuss the varying hydrogeologic, microbiological, nutrient, and geochemical conditions of site groundwater over time and how these challenges were addressed to maximize biodegradation of chlorinated ethenes in groundwater. This presentation will also review the cost benefits of bioaugmentation in combination with biostimulation versus biostimulation alone.