TY - JOUR
T1 - Modeling 3D-CSIA data
T2 - Carbon, chlorine, and hydrogen isotope fractionation during reductive dechlorination of TCE to ethene
AU - Van Breukelen, Boris M.
AU - Thouement, Heloïse A.A.
AU - Stack, Philip E.
AU - Vanderford, Mindy
AU - Philp, Paul
AU - Kuder, Tomasz
PY - 2017
Y1 - 2017
N2 - Reactive transport modeling of multi-element, compound-specific isotope analysis (CSIA) data has great potential to quantify sequential microbial reductive dechlorination (SRD) and alternative pathways such as oxidation, in support of remediation of chlorinated solvents in groundwater. As a key step towards this goal, a model was developed that simulates simultaneous carbon, chlorine, and hydrogen isotope fractionation during SRD of trichloroethene, via cis-1,2-dichloroethene (and trans-DCE as minor pathway), and vinyl chloride to ethene, following Monod kinetics. A simple correction term for individual isotope/isotopologue rates avoided multi-element isotopologue modeling. The model was successfully validated with data from a mixed culture Dehalococcoides microcosm. Simulation of Cl-CSIA required incorporation of secondary kinetic isotope effects (SKIEs). Assuming a limited degree of intramolecular heterogeneity of δ37Cl in TCE decreased the magnitudes of SKIEs required at the non-reacting Cl positions, without compromising the goodness of model fit, whereas a good fit of a model involving intramolecular CCl bond competition required an unlikely degree of intramolecular heterogeneity. Simulation of H-CSIA required SKIEs in H atoms originally present in the reacting compounds, especially for TCE, together with imprints of strongly depleted δ2H during protonation in the products. Scenario modeling illustrates the potential of H-CSIA for source apportionment.
AB - Reactive transport modeling of multi-element, compound-specific isotope analysis (CSIA) data has great potential to quantify sequential microbial reductive dechlorination (SRD) and alternative pathways such as oxidation, in support of remediation of chlorinated solvents in groundwater. As a key step towards this goal, a model was developed that simulates simultaneous carbon, chlorine, and hydrogen isotope fractionation during SRD of trichloroethene, via cis-1,2-dichloroethene (and trans-DCE as minor pathway), and vinyl chloride to ethene, following Monod kinetics. A simple correction term for individual isotope/isotopologue rates avoided multi-element isotopologue modeling. The model was successfully validated with data from a mixed culture Dehalococcoides microcosm. Simulation of Cl-CSIA required incorporation of secondary kinetic isotope effects (SKIEs). Assuming a limited degree of intramolecular heterogeneity of δ37Cl in TCE decreased the magnitudes of SKIEs required at the non-reacting Cl positions, without compromising the goodness of model fit, whereas a good fit of a model involving intramolecular CCl bond competition required an unlikely degree of intramolecular heterogeneity. Simulation of H-CSIA required SKIEs in H atoms originally present in the reacting compounds, especially for TCE, together with imprints of strongly depleted δ2H during protonation in the products. Scenario modeling illustrates the potential of H-CSIA for source apportionment.
KW - Chlorinated ethenes
KW - Contaminated sites
KW - Natural attenuation
KW - Reactive transport modeling
KW - Reductive dechlorination
KW - Stable isotopes
UR - http://www.scopus.com/inward/record.url?scp=85026448514&partnerID=8YFLogxK
UR - http://resolver.tudelft.nl/uuid:f1ba127b-c41e-43fb-a6e2-d2786ed63ffd
U2 - 10.1016/j.jconhyd.2017.07.003
DO - 10.1016/j.jconhyd.2017.07.003
M3 - Article
AN - SCOPUS:85026448514
SN - 0169-7722
VL - 204
SP - 79
EP - 89
JO - Journal of Contaminant Hydrology
JF - Journal of Contaminant Hydrology
ER -