Experimental study on the infiltration and salinity variation of saline soil under simulated rainfall
Keywords:
Rainfall intensity, Slope gradient, Infiltration, Water content, Salinity, Saline soilAbstract
Soil salt drainage efficiency is of significant interest in quantifying soil remediation, related to external environment, soil properties, and amendment. This study mainly discusses the mechanism of slope gradients and rainfall intensities affecting water-salt transport in saline soils. Laboratory investigations were made to measure the key parameters including the wetting front, water content, and salinity in a flume of almost 1.2 m long under four slope gradients (0°, 5°, 10°, and 15°) and five rainfall intensities (10, 30, 50, 75, and 100 mm/h). The results show that the migration rate of water in soils increased with higher rainfall intensity and at lower slope gradients, in turn resulting in a substantial decrease in soil salinity. The rainfall intensity grew from 10 mm/h to 100 mm/h, and the water content growth rate and salinity decrease rate increased from 0.59%/min to 0.93%/min and 0.044%/min to 0.060%/min, respectively. The rainfall intensity has less influence on the time of salinity stabilization, which is approximately 420 to 480 min. Higher slope gradient and shorter distances from the slope top caused decrease in water-salt migration rate. The wetting front and water content showed a significant linear and exponential relationship with rainfall time respectively, while soil salinity as a function of rainfall time are piecewise functions. The results explicate the water-salt transport behavior of saline soils, and provide a scientific reference for soil remediation.
Keywords: rainfall intensity; slope gradient; infiltration; water content; salinity; saline soil
DOI: 10.25165/j.ijabe.20261901.8982
Citation: Li K S, Geng Y H, Liu C X. Experimental study on the infiltration and salinity variation of saline soil under simulated rainfall. Int J Agric & Biol Eng, 2026; 19(1): 143–152.
References
[1] Mao W B, Kang S Z, Wan Y S, Sun Y X, Li X H, Wang Y F. Yellow River sediment as a soil amendment for amelioration of saline land in the Yellow River Delta. Land Degradation & Development, 2016; 27: 1595–1602.
[2] Wang S J, Chen Q, Li Y, Zhuo Y Q, Xu L Z. Research on saline-alkali soil amelioration with FGD gypsum. Resources, Conservation and Recycling, 2017; 121: 82–92.
[3] Brinck E, Frost C. Evaluation of amendments used to prevent sodification of irrigated fields. Applied Geochemistry, 2009; 11(24): 2113–2122.
[4] Ganjegunte G K, Sheng Z, Clark J A. Soil salinity and sodicity appraisal by electromagnetic induction in soils irrigated to grow cotton. Land Degradation & Development, 2014; 25(3): 228–235.
[5] Li K S, Geng Y H, Li Q X, Liu C X. Characterization of the microstructural properties of saline-alkali soils in the Yellow River Delta, China. Communications in Soil Science and Plant Analysis, 2021; 52(13): 1527–1543.
[6] Kumar D, Singh B. The use of coal fly ash in sodic soil reclamation. Land Degradation & Development, 2003; 14(3): 285–299.
[7] Larney F J, Angers D A. The role of organic amendments in soil reclamation: A review. Canadian Journal of Soil Science, 2012; 92(1): 19–38.
[8] Ouni Y, Ghnaya T, Montemurro F, Abdelly C, Lakhdar A. The role of humic substances in mitigating the harmful effects of soil salinity and improve plant productivity. International Journal of Plant Production, 2014; 8(3): 353–374.
[9] Ezenwanne B C, Okoye C O, Jiang H, Gao L, Chen X, Wu Y, et al. Microbial strategies for soda saline-alkali soil remediation: The role of haloalkaliphilic bacteria. Microbiological Research, 2026; 304: 128410.
[10] Cucci G, Lacolla G, Mastro M A, Caranfa G. Leaching effect of rainfall on soil under four-year saline water irrigation. Soil and Water Research, 2016; 11(3): 181–189.
[11] Ju Z Q, Du Z L, Guo K, Liu X J. Irrigation with freezing saline water for 6 years alters salt ion distribution within soil aggregates. Journal of Soils and Sediments, 2019; 19(1): 97–105.
[12] Zhao Y G, Wang S J, Li Y, Zhuo Y Q, Liu J. Sustainable effects of gypsum from desulphurization of flue gas on the reclamation of sodic soil after 17 years. European Journal of Soil Science, 2019; 70(5): 1082–1097.
[13] Huang Y H, Chen X Y, Li F H, Zhang J, Lei T W, Li J, et al. Velocity of water flow along saturated loess slopes under erosion effects. Journal of Hydrology, 2018; 561: 304–311.
[14] Rahma A E, Warrington D N, Lei T W. Efficiency of wheat straw mulching in reducing soil and water losses from three typical soils of the Loess Plateau, China. International Soil and Water Conservation Research, 2019; 7(4): 335–345.
[15] Nearing M A, Yin S, Borrelli P, Polyakov V O. Rainfall erosivity: an historical review. Catena, 2017; 157: 357–362.
[16] Nearing M A, Jetten V, Baffaut C, Cerdan O, Couturier A, Hernandez M, et al. Modeling response of soil erosion and runoff to changes in precipitation and cover. Catena, 2005; 61(2-3): 131–154.
[17] Zhang G H, Liu B Y, Liu G B, He X W, Nearing M A. Detachment of undisturbed soil by shallow flow. Soil Science Society of America Journal, 2003; 67(3): 713–719.
[18] Liu H Q, Yang J H, Liu C X, Diao Y F, Ma D P, Li F H, et al. Flow velocity on cultivated soil slope with wheat straw incorporation. Journal of Hydrology, 2020; 584: 124667.
[19] Yang J H, Liu H Q, Zhang J P, Rahma A E, Lei T W. Lab simulation of soil erosion on cultivated soil slopes with wheat straw incorporation. Catena, 2022; 210: 105865.
[20] Giménez R, Govers G. Effects of freshly incorporated straw residue on rill erosion and hydraulics. Catena, 2008; 72(2): 214–223.
[21] Chen C, Lei T W, Ban Y Y. Influence of slope, flow rate, and thawed depth on soil detachment rate in partially thawed black soils. Journal of Hydrology, 2021; 603: 127009.
[22] Nouhou B A, Darboux F, James F, Josserand C, Lucas C. Pressure and shear stress caused by raindrop impact at the soil surface: Scaling laws depending on the water depth. Earth Surface Processes and Landforms, 2016; 41(9): 1199–1210.
[23] Yang J H, Liu H Q, Lei T W, Rahma A E, Liu C X, Zhang J P. Effect of straw-incorporation into farming soil layer on surface runoff under simulated rainfall. Catena, 2021; 199: 105082.
[24] Li K S, Li Q X, Liu C X. Effect of freezing temperature and water content on pore structure characteristics of coastal saline-alkali soil under frost heave. Journal of Soils and Sediments, 2022; 22(6): 1819–1827.
[25] Liu C X, Li K S, Ma D P. Construction and engineering application of salt-discharging model for local saline-alkali soil with compact structure in the Yellow River Delta. Applied and Environmental Soil Science, 2020; 2020: 1–8.
[26] Sun J N, Yang R Y, Li W X, Pan Y H, Zheng M Z, Zhang Z H. Effect of biochar amendment on water infiltration in a coastal saline soil. Journal of Soils and Sediments, 2018; 18: 3271–3279.
[27] Mao W B, Wan Y S, Sun Y X, Zheng Q K, Qv X L. Applying dredged sediment improves soil salinity environment and winter wheat production. Communications in Soil Science and Plant Analysis, 2018; 49: 1787–1794.
[28] Liao Y L, Pan T S, Deng Y Y, Yang M G, Yang G R, Yu X X, et al. Comparing of soil matrix infiltration and preferential flow across different land use types in karst landscapes: Implications for soil and water conservation. Catena, 2025; 256: 109127.
[29] Zeng T, Li Y Z, Ma L, Kong L X, Zhang J J, Abuduwaili J. Unveiling latent interaction mechanisms influencing the spatial pattern of soil salinity in arid oases: Insights from integrated modeling. Catena, 2025; 250: 108769.
[30] Zhuang X H, Wang W, Ma Y Y, Huang X F, Lei T W. Spatial distribution of sheet flow velocity along slope under simulated rainfall conditions. Geoderma, 2018; 321: 1–7.
[31] Zhang J, Wang S, Fu Z Y, Wang K, Chen H S. Characterizing rapid infiltration processes on complex hillslopes: Insights from soil moisture response to rainfall events. Journal of Hydrology, 2024; 644: 132110.
[32] Li X B, Kang Y H, Wan S Q, Chen X L, Liu S P, Xu J C. Response of a salt-sensitive plant to processes of soil reclamation in two saline–sodic, coastal soils using drip irrigation with saline water. Agricultural Water Management, 2016; 164: 223–234.
[33] Rahma A E, Lei T W, Shi X N, Dong Y Q, Zhou S M, Zhao J. Measuring flow velocity under straw mulch using the improved electrolyte tracer method. Journal of Hydrology, 2013; 495: 121–125.
[34] Li K S, Liu C X, Li Q X, Geng Y H. Fractal study on microscopic pore features of saline-alkali soil in Yellow River Delta. Journal of Shandong Agricultural University (Natural Science Edition), 2020; 51(5): 828–832, 880. (in Chinese)
[35] Yazdanpanah N, Mahmoodabadi M, Cerda A. The impact of organic amendments on soil hydrology, structure and microbial respiration in semiarid lands. Geoderma, 2016; 266: 58–65.
[36] Geng Y H, Liu C X, Li K S, Li Q X. Analysis of relationship between soil structure characteristics and permeability of silty saline-alkali soil in the Yellow River Delta. Water Saving Irrigation, 2020; 2: 27–31, 36. (in Chinese)
[37] Li K S, Geng Y H, Li Q X, Liu C X. Comprehensive microstructural characterization of saline-alkali soils in the Yellow River Delta, China. Soil Science and Plant Nutrition, 2021; 67(3): 301–311.
[38] Zhang J, Lei T W, Yin Z, Hu Y Q, Yan X S. Effects of time step length and positioning location on ring-measured infiltration rate. Catena, 2017; 157: 344–356.
[39] Rahma A E, Wang W, Tang Z J, Lei T W, Warrington D N, Zhao J. Straw mulch can induce greater soil losses from loess slopes than no mulch under extreme rainfall conditions. Agricultural and Forest Meteorology, 2017; 232: 141–151.
[40] Ban Y Y, Lei T W, Liu Z Q, Chen C. Comparison of rill flow velocity over frozen and thawed slopes with electrolyte tracer method. Journal of Hydrology, 2016; 534: 630–637.
[41] Huang Y H, Wang W, Lei T W, Li F H, Li J. Saturation effect on the distribution of rill detachment rate. European Journal of Soil Science, 2021; 72(5): 2076–2087.
[42] Wang Y, Yang X, Zhang Y Z, Liu J L. Experimental study on the salt migration behavior of coarse-grained saline soils subgrade under strong evaporation environment. Advances in Civil Engineering Materials, 2025; 14(1): 54–72.
[43] Zhao Q Q, Bai J H, Gao Y C, Zhao H X, Huang Y J, Zhang W, et al. Effects of freshwater inputs on soil quality in the Yellow River Delta, China. Ecological Indicators, 2019; 98: 619–626.
[44] Drake J A, Cavagnaro T R, Cunningham S C, Jackson W R, Patti A F. Does biochar improve establishment of tree seedlings in saline sodic soils? Land Degradation & Development, 2016; 27(1): 52–59.
[45] Fei Y H, She D L, Gao L, Xin P. Micro-CT assessment on the soil structure and hydraulic characteristics of saline/sodic soils subjected to short-term amendment. Soil & Tillage Research, 2019; 193: 59–70.
[46] Chi C M, Zhao C W, Sun X J, Wang Z C. Reclamation of saline-sodic soil properties and improvement of rice (Oriza sativa L.) growth and yield using desulfurized gypsum in the west of Songnen Plain, northeast China. Geoderma, 2012; 187–188: 24–30.
[47] Shaygan M, Reading L P, Baumgartl T. Effect of physical amendments on salt leaching characteristics for reclamation. Geoderma, 2017; 292: 96–110.
[48] Shaygan M, Reading L P, Arnold S, Baumgartl T. Modeling the effect of soil physical amendments on reclamation and revegetation success of a saline-sodic soil in a semi-arid environment. Arid Land Research and Management, 2018; 32(4): 379–406.
[49] Xie W J, Chen Q F, Wu L F, Yang H J, Xu J K, Zhang Y P. Coastal saline soil aggregate formation and salt distribution are affected by straw and nitrogen application: A 4-year field study. Soil & Tillage Research, 2020; 198: 104535.
[50] Xie W J, Wu L F, Wang J S, Zhang Y P, Ouyang Z. Effect of salinity on the transformation of wheat straw and microbial communities in a saline soil. Communications in Soil Science and Plant Analysis, 2017; 48(12): 1455–1461.
[51] Fang H Y, Sun L Y, Tang Z H. Effects of rainfall and slope on runoff, soil erosion and rill development: an experimental study using two loess soils. Hydrological Processes, 2015; 29(11): 2649–2658.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2026 International Journal of Agricultural and Biological Engineering

This work is licensed under a Creative Commons Attribution 4.0 International License.
IJABE is an international peer reviewed, open access journal, adopting Creative Commons Copyright Notices as follows.
Authors who publish with this journal agree to the following terms:
- Authors retain copyright and grant the journal right of first publication with the work simultaneously licensed under a Creative Commons Attribution License that allows others to share the work with an acknowledgement of the work's authorship and initial publication in this journal.
- Authors are able to enter into separate, additional contractual arrangements for the non-exclusive distribution of the journal's published version of the work (e.g., post it to an institutional repository or publish it in a book), with an acknowledgement of its initial publication in this journal.
- Authors are permitted and encouraged to post their work online (e.g., in institutional repositories or on their website) prior to and during the submission process, as it can lead to productive exchanges, as well as earlier and greater citation of published work (See The Effect of Open Access).