@article{Song2026, 
author = {Wenli Song and Tianyuan Zheng and Chao Gao and Peihua Li and Yujie Hao},
title = {Mechanisms of PFAS Transport in Groundwater Driven by Seasonal Rainfall},
year = {2026},
journal = {Periodical of Ocean University of China},
volume = {56},
number = {8},
pages = {114-124},
keywords = {per- and polyfluoroalkyl substances, groundwater contamination, seasonal rainfall, numerical simulation, air-water interfacial adsorption, transport mechanisms},
url = {https://www.sciopen.com/article/10.16441/j.cnki.hdxb.20260001},
doi = {10.16441/j.cnki.hdxb.20260001},
abstract = {Current research on the transport of per- and polyfluoroalkyl substances (PFAS) in groundwater is often confined to steady-state assumptions or laboratory scales, which inadequately capture the nonlinear transport mechanisms driven by seasonal precipitation. To address this gap, this study developed a numerical model based on groundwater flow theory, incorporating adsorption at the air-water interface (AWI). Using perfluorooctanoic acid (PFOA) as a representative PFAS, we conducted a 30-year (1990—2020) dynamic simulation to quantitatively analyze the transport mechanisms under the influence of seasonal precipitation. The results indicate that the AWI in the vadose zone exerts a significant nonlinear retardation effect on PFOA. During dry periods, PFOA accumulates at the AWI; however, abrupt increases in water content during intense rainfall events compress the AWI area, triggering rapid desorption (time lag &lt; 7 d) and subsequent leaching of PFOA into the groundwater. In highly permeable aquifers, this process facilitates the formation of a PFOA plume characterized by low concentrations (&lt; 1 μg/L) but high discharge flux (&gt;0.5 g/(m2·d)). Under high hydraulic gradients (dh/dx&gt; 0.003), advection becomes the dominant transport mechanism, resulting in an elongated plume morphology (length-to-width ratio&gt; 3∶1). This study elucidates the nonlinear regulatory mechanisms of transient hydrological processes on the multi-interfacial behavior of PFAS.}
}