Affiliation:
1. School of Earth Science and Engineering, Hohai University, Nanjing 210098, China
2. China Water Investment Co., LTD., Beijing 100053, China
Abstract
Clay is widely encountered in nature and directly influences seepage behaviors, exerting a crucial impact on engineering applications. Under low hydraulic gradients, seepage behaviors have been observed to deviate from Darcy’s law, displaying a non-linear trend. However, the impacts of clay content on non-linear seepage behavior and its pore-scale mechanisms to date remain unclear. In this study, constant-head seepage experiments were conducted in sand–clay porous media under various hydraulic gradients. Low-field nuclear magnetic resonance (LF-NMR) technology was utilized to monitor the bound-water and free-water contents of sand–clay porous media under different seepage states. The results show a threshold hydraulic gradient (i0) below which there is no flow, and a critical hydraulic gradient (icr) below which the relationship between the hydraulic gradient (i) and seepage velocity (v) is non-linear. Both hydraulic gradients increased with clay content. Moreover, the transformation between bound water and free water was observed during the seepage-state evolution (no flow to pre-Darcy or pre-Darcy to Darcy). As the hydraulic gradient reached the i0, the pore water pressure gradually overcame the adsorption force of the bound-water film, reducing the thickness of the bound-water film, and causing non-linear seepage behavior. When i0 < i < icr, the enlarging hydraulic gradient triggers the thinning of bound water and enhances the fluidity of pore water. Moreover, the increasing clay content augments the bound-water content required for the seepage state’s change.
Funder
National Key Research and Development Program of China
key research project of Shandong Provincial Water Diversion Project Operation and Maintenance Center
Postgraduate Research and Practice Innovation Program of Jiangsu Province
Reference48 articles.
1. Pre-Darcy Flow in Porous Media;Dejam;Water Resour. Res.,2017
2. Analysis of Pre-Darcy flow for different liquids and gases;Farmani;J. Pet. Sci. Eng.,2018
3. Productivity Index for Darcy and pre-/post-Darcy Flow (Analytical Approach);Bloshanskaya;J. Porous Media,2015
4. Elsanoose, A., Abobaker, E., Khan, F., Rahman, M.A., Aborig, A., and Butt, S.D. (2022). Characterization of a Non-Darcy Flow and Development of New Correlation of NON-Darcy Coefficient. Energies, 15.
5. Elsanoose, A., Abobaker, E., Khan, F., Rahman, M.A., Aborig, A., and Butt, S.D. (2022). Estimating of Non-Darcy Flow Coefficient in Artificial Porous Media. Energies, 15.