Matches in SemOpenAlex for { <https://semopenalex.org/work/W3177325470> ?p ?o ?g. }
- W3177325470 endingPage "103850" @default.
- W3177325470 startingPage "103850" @default.
- W3177325470 abstract "To support the environmental monitoring of nuclear sites, reactive transport models used to predict the migration of contaminants such as strontium-90 (90Sr) in soils, sediments and aquifers are developed, continuously tested and improved. This study aims at assessing the adequacy of the multi-site ion exchanger model (MSIE) based on a component additivity approach and coupled to the advection-dispersion equation (ADE) to simulate Sr transport in a clayey sandstone and a Bt soil horizon. We have also compared the performance of the modelling approach with simulation results obtained by considering a Kd approach (constant Kd). Transport experiments were performed in centimetre- and decimetre-scale columns in order to test the model sensitivities to the mineral abundance and the specificities of their reactive parameters. Non-reactive transport experiments with conservative tracers allowed us to determine the transport parameters, such as porosity and dispersivity. In this paper, we have compared the Sr transport simulation results with Sr experimental breakthrough curves acquired at various flow velocities. The simulations results show that the Kd approach can reproduce experimental data in the case of the clayey sandstone when a certain amount of uncertainty is accepted, whereas the additivity approach better fits the Sr reactive transport in both columns (especially the maximum value) without it being necessary to adjust the parameters. These results advocate for more complex retention models than Kd to better understand and improve the robustness of Sr transport predictions. The clay content, the relative abundance of illite and smectite, and the clay mineral specificity, are all sensitive parameters when it comes to defining the reactive system involved in Sr transport simulation. The results highlight the influence of illite in the spreading of the Sr breakthrough curve, especially through its low-capacity and high-selectivity site. This implies having access to a robust and extensive set of retention parameters acquired on reference minerals. In this study, the results obtained for the clayey sandstone confirm the robustness of our selected parameters when clay minerals have similar reactivity levels as the reference minerals. This set of parameters appears more limited in the case of the Bt soil containing weathered or evolved minerals. The choice of modelling approach is therefore crucial for accurately modelling and predicting Sr transport behaviour in porous media, as is the representativeness of the minerals in the database." @default.
- W3177325470 created "2021-07-05" @default.
- W3177325470 creator A5022116743 @default.
- W3177325470 creator A5036447447 @default.
- W3177325470 creator A5077524732 @default.
- W3177325470 creator A5086944589 @default.
- W3177325470 date "2021-10-01" @default.
- W3177325470 modified "2023-10-18" @default.
- W3177325470 title "Reactive transport of strontium in two laboratory-scale columns: Experiments and modelling" @default.
- W3177325470 cites W1564635597 @default.
- W3177325470 cites W1627972056 @default.
- W3177325470 cites W1966864162 @default.
- W3177325470 cites W1970883503 @default.
- W3177325470 cites W1972225831 @default.
- W3177325470 cites W1975432517 @default.
- W3177325470 cites W1976964014 @default.
- W3177325470 cites W1977513746 @default.
- W3177325470 cites W1977568907 @default.
- W3177325470 cites W1978527694 @default.
- W3177325470 cites W1994532964 @default.
- W3177325470 cites W2004537338 @default.
- W3177325470 cites W2008391619 @default.
- W3177325470 cites W2011837236 @default.
- W3177325470 cites W2015887186 @default.
- W3177325470 cites W2018943037 @default.
- W3177325470 cites W2020127376 @default.
- W3177325470 cites W2020667392 @default.
- W3177325470 cites W2025606817 @default.
- W3177325470 cites W2030509138 @default.
- W3177325470 cites W2039082735 @default.
- W3177325470 cites W2052860624 @default.
- W3177325470 cites W2060998519 @default.
- W3177325470 cites W2070742393 @default.
- W3177325470 cites W2074769503 @default.
- W3177325470 cites W2080098282 @default.
- W3177325470 cites W2080647260 @default.
- W3177325470 cites W2082178290 @default.
- W3177325470 cites W2083096747 @default.
- W3177325470 cites W2086176812 @default.
- W3177325470 cites W2090111852 @default.
- W3177325470 cites W2091196810 @default.
- W3177325470 cites W2091500103 @default.
- W3177325470 cites W2092414735 @default.
- W3177325470 cites W2097299754 @default.
- W3177325470 cites W2129870814 @default.
- W3177325470 cites W2145639849 @default.
- W3177325470 cites W2162506898 @default.
- W3177325470 cites W2243613622 @default.
- W3177325470 cites W2314942182 @default.
- W3177325470 cites W2316022882 @default.
- W3177325470 cites W2329343300 @default.
- W3177325470 cites W2333838282 @default.
- W3177325470 cites W2517807462 @default.
- W3177325470 cites W2571650731 @default.
- W3177325470 cites W2575836972 @default.
- W3177325470 cites W2767687910 @default.
- W3177325470 cites W2772633055 @default.
- W3177325470 cites W2792797908 @default.
- W3177325470 cites W2827567526 @default.
- W3177325470 cites W2899362000 @default.
- W3177325470 cites W2981333682 @default.
- W3177325470 cites W4238166626 @default.
- W3177325470 cites W85689325 @default.
- W3177325470 doi "https://doi.org/10.1016/j.jconhyd.2021.103850" @default.
- W3177325470 hasPubMedId "https://pubmed.ncbi.nlm.nih.gov/34217882" @default.
- W3177325470 hasPublicationYear "2021" @default.
- W3177325470 type Work @default.
- W3177325470 sameAs 3177325470 @default.
- W3177325470 citedByCount "2" @default.
- W3177325470 countsByYear W31773254702023 @default.
- W3177325470 crossrefType "journal-article" @default.
- W3177325470 hasAuthorship W3177325470A5022116743 @default.
- W3177325470 hasAuthorship W3177325470A5036447447 @default.
- W3177325470 hasAuthorship W3177325470A5077524732 @default.
- W3177325470 hasAuthorship W3177325470A5086944589 @default.
- W3177325470 hasBestOaLocation W31773254701 @default.
- W3177325470 hasConcept C121332964 @default.
- W3177325470 hasConcept C127313418 @default.
- W3177325470 hasConcept C159390177 @default.
- W3177325470 hasConcept C178790620 @default.
- W3177325470 hasConcept C185544564 @default.
- W3177325470 hasConcept C185592680 @default.
- W3177325470 hasConcept C187320778 @default.
- W3177325470 hasConcept C199289684 @default.
- W3177325470 hasConcept C2778863792 @default.
- W3177325470 hasConcept C39432304 @default.
- W3177325470 hasConcept C5072599 @default.
- W3177325470 hasConcept C518915863 @default.
- W3177325470 hasConcept C75622301 @default.
- W3177325470 hasConcept C76177295 @default.
- W3177325470 hasConcept C97355855 @default.
- W3177325470 hasConceptScore W3177325470C121332964 @default.
- W3177325470 hasConceptScore W3177325470C127313418 @default.
- W3177325470 hasConceptScore W3177325470C159390177 @default.
- W3177325470 hasConceptScore W3177325470C178790620 @default.
- W3177325470 hasConceptScore W3177325470C185544564 @default.
- W3177325470 hasConceptScore W3177325470C185592680 @default.
- W3177325470 hasConceptScore W3177325470C187320778 @default.