Implementation of temporal moments to elucidate the reactive transport of metformin and erythromycin in the saturated porous media

被引:1
作者
Ashraf M. [1 ]
Guleria A. [2 ]
Ahammad S.Z. [3 ]
Chakma S. [2 ]
机构
[1] School of Interdisciplinary Research, Indian Institute of Technology, Delhi
[2] Department of Civil Engineering, Indian Institute of Technology, Delhi
[3] Department of Biochemical Engineering and Biotechnology, Indian Institute of Technology, Delhi
关键词
Erythromycin; Metformin; Numerical modeling; Porous media; Temporal moments;
D O I
10.1007/s11356-024-34357-9
中图分类号
学科分类号
摘要
This study investigates the fate and transport dynamics of metformin (MTN) and erythromycin (ETM), both classified as pharmaceutical and personal care products (PPCPs), in a saturated sandy soil column using temporal moment analysis (TMA). The key flow and transport parameters, including Darcy velocity, longitudinal dispersivity, adsorption, and degradation coefficients, were analyzed. The results reveal that MTN, a highly mobile contaminant, is eliminated from the column in approximately 40 days, while ETM shows significant adsorption due to its hydrophobic and adsorptive nature. Darcy velocity significantly affects PPCP transport; a one-order magnitude change alters contaminant mass recovery at the column outlet by 88% for MTN and 39-fold for ETM. Longitudinal dispersivity has minimal impact on the transport of PPCPs. However adsorption primarily governs the fate of PPCPs with high adsorption coefficients (Kd), and degradation rates control the fate of low-sorbing PPCPs. A one-order magnitude change in Kd results in a 55% change in the zeroth temporal moment (ZTM) of MTN and a 30-fold change in the case of ETM. Additionally, a one-order magnitude change in the degradation coefficient leads to a 60% variation in MTN’s ZTM and a 5% variation in ETM’s ZTM. Thus, TMA is a valuable tool for understanding PPCP dynamics in subsurface environments, providing critical insights for managing their increasing concentrations. © The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature 2024.
引用
收藏
页码:47801 / 47817
页数:16
相关论文
共 83 条
[1]  
Ahmed M., Chin Y.H., Guo X., Zhao X.M., Microwave assisted digestion followed by ICP-MS for determination of trace metals in atmospheric and lake ecosystem, J Environ Sci, 55, pp. 1-10, (2017)
[2]  
Ahmed M., Zainab Q.U.A., Qamar S., Analysis of one-dimensional advection–diffusion model with variable coefficients describing solute transport in a porous medium, Transp Porous Media, 118, pp. 327-344, (2017)
[3]  
Akyol N.H., Carroll K.C., Ciftci Cortuk E., Gunduz O.C., Sahin N., Comparison of sorption and solute transport behaviour of several herbicides in an alkaline agricultural soil, Int J Environ Anal Chem, 103, 19, pp. 7357-7375, (2023)
[4]  
Ali A.M., Ronning H.T., Alarif W., Kallenborn R., Al-Lihaibi S.S., Occurrence of pharmaceuticals and personal care products in effluent-dominated Saudi Arabian coastal waters of the Red Sea, Chemosphere, 175, pp. 505-513, (2017)
[5]  
Archer E., Petrie B., Kasprzyk-Hordern B., Wolfaardt G.M., The fate of pharmaceuticals and personal care products (PPCPs), endocrine disrupting contaminants (EDCs), metabolites and illicit drugs in a WWTW and environmental waters, Chemosphere, 174, pp. 437-446, (2017)
[6]  
Ashraf M., Ahammad S.Z., Chakma S., Advancements in the dominion of fate and transport of pharmaceuticals and personal care products in the environment—a bibliometric study, Environ Sci Pollut Res, 30, 23, pp. 64313-64341, (2023)
[7]  
Bailey R.T., Jeong J., Park S., Green C.H., Simulating salinity transport in high-desert landscapes using APEX-MODFLOW-Salt, J Hydrol, 610, (2022)
[8]  
Banzhaf S., Hebig K.H., Use of column experiments to investigate the fate of organic micropollutants–a review, Hydrol Earth Syst Sci, 20, 9, pp. 3719-3737, (2016)
[9]  
Barry D.A., Sposito G., Analytical solution of a convection-dispersion model with time-dependent transport coefficients, Water Resour Res, 25, 12, pp. 2407-2416, (1989)
[10]  
Benker E., Davis G.B., Barry D.A., Estimating the retardation coefficient of trichloroethene for a sand aquifer low in sediment organic carbon—a comparison of methods, J Contam Hydrol, 30, 1-2, pp. 157-178, (1998)