A multi-scale framework for modeling transport of microplastics during sand filtration: Bridging from pore to continuum

The fate and transport of microplastics (MPs) during deep bed filtration were investigated using combined laboratory experiments and numerical modeling. A series of column experiments were conducted within the designated ranges of six operating parameters (i.e., size of the MP and collector, seepage...

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Veröffentlicht in:Journal of hazardous materials 2023-02, Vol.443, p.130219-130219, Article 130219
Hauptverfasser: Lim, Seung Ji, Seo, Jangwon, Hwang, Myeongwon, Kim, Hee-Chang, Kim, Eun-Ju, Lee, Jaesang, Hong, Seok Won, Lee, Seunghak, Chung, Jaeshik
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Sprache:eng
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Zusammenfassung:The fate and transport of microplastics (MPs) during deep bed filtration were investigated using combined laboratory experiments and numerical modeling. A series of column experiments were conducted within the designated ranges of six operating parameters (i.e., size of the MP and collector, seepage velocity, porosity, temperature, and ionic strength). A variance-based sensitivity analysis, the Fourier amplitude sensitivity test, was conducted to determine the priority in affecting both the attachment coefficient at the pore scale, and the subsequent stabilized height of the breakthrough curve at the continuum scale, which follows non-monotonic trends with singularity in the size of MP (i.e., 1 µm). Finally, Damkohler numbers were introduced to analyze the dominant mechanisms (e.g., attachment, detachment, or straining) in the coupled hydro-chemical process. The robustness of conceptual frameworks bridges the gap between pore-scale interactions and the explicit MPs removal in the continuum scale, which could support decision-making in determining the priority of parameters to retain MPs during deep bed filtration. [Display omitted] •Both experimental and numerical models were established for deep bed filtration.•The priority of factors affecting katt and the subsequent BTCs were quantified.•Damkohler numbers were introduced to estimate the dominant mechanisms.•The method can be used as a design and operational criteria for sand filtration.
ISSN:0304-3894
1873-3336
DOI:10.1016/j.jhazmat.2022.130219