Spatiotemporal Dynamics and Topographic Controls of Soil Moisture on Dune Slopes in a Semi-Arid Sandy Region
Abstract
1. Introduction
2. Materials and Methods
2.1. Study Site
2.2. Experimental Design
2.3. Data Preparation and Analytical Approach
2.3.1. Seasonal Soil Moisture Characteristics
2.3.2. Rainfall Event Analysis
2.3.3. Estimation of Profile-Scale Soil Water Storage
3. Results
3.1. Spatiotemporal Variations in Soil Moisture Along the Hillslope
3.2. Hillslope-Scale Spatial Variability of Soil Moisture
3.3. Soil Moisture Response Characteristics Under Rainfall Events
3.4. Linkages Between Soil Moisture Response and Environmental Factors
3.5. Relationships Between Precipitation and Profile-Scale Soil Water Storage Changes
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Vereecken, H.; Amelung, W.; Bauke, S.L.; Bogena, H.; Brüggemann, N.; Montzka, C.; Vanderborght, J.; Bechtold, M.; Blöschl, G.; Carminati, A.; et al. Soil hydrology in the Earth system. Nat. Rev. Earth Environ. 2022, 3, 573–587. [Google Scholar] [CrossRef] [Scilit]
- Páez-Bimos, S.; Molina, A.; Calispa, M.; Delmelle, P.; Lahuatte, B.; Villacís, M.; Muñoz, T.; Vanacker, V. Soil–vegetation–water interactions controlling solute flow and chemical weathering in volcanic ash soils of the high Andes. Hydrol. Earth Syst. Sci. 2023, 27, 1507–1529. [Google Scholar] [CrossRef] [Scilit]
- Liu, J.; Engel, B.A.; Wang, Y.; Wu, Y.; Zhang, Z.; Zhang, M. Runoff Response to Soil Moisture and Micro-topographic Structure on the Plot Scale. Sci. Rep. 2019, 9, 2532. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Singh, N.K.; Emanuel, R.E.; McGlynn, B.L.; Miniat, C.F. Soil Moisture Responses to Rainfall: Implications for Runoff Generation. Water Resour. Res. 2021, 57, e2020WR028827. [Google Scholar] [CrossRef] [Scilit]
- Uber, M.; Vandervaere, J.P.; Zin, I.; Braud, I.; Heistermann, M.; Legoût, C.; Molinié, G.; Nord, G. How does initial soil moisture influence the hydrological response? A case study from southern France. Hydrol. Earth Syst. Sci. 2018, 22, 6127–6146. [Google Scholar] [CrossRef] [Scilit]
- Zhao, X.; Zhang, W.; Feng, Y.; Mo, Q.; Su, Y.; Njoroge, B.; Qu, C.; Gan, X.; Liu, X. Soil organic carbon primarily control the soil moisture characteristic during forest restoration in subtropical China. Front. Ecol. Evol. 2022, 10, 1003532. [Google Scholar] [CrossRef] [Scilit]
- Hao, Y.; Mao, J.; Bachmann, C.M.; Hoffman, F.M.; Koren, G.; Chen, H.; Tian, H.; Liu, J.; Tao, J.; Tang, J.; et al. Soil moisture controls over carbon sequestration and greenhouse gas emissions: A review. npj Clim. Atmos. Sci. 2025, 8, 16. [Google Scholar] [CrossRef] [Scilit]
- Zhang, J.; Feng, Y.; Maestre, F.T.; Berdugo, M.; Wang, J.; Coleine, C.; Sáez-Sandino, T.; García-Velázquez, L.; Singh, B.K.; Delgado-Baquerizo, M. Water availability creates global thresholds in multidimensional soil biodiversity and functions. Nat. Ecol. Evol. 2023, 7, 1002–1011. [Google Scholar] [CrossRef] [Scilit]
- O’Donnell, M.S.; Manier, D.J. Spatial Estimates of Soil Moisture for Understanding Ecological Potential and Risk: A Case Study for Arid and Semi-Arid Ecosystems. Land 2022, 11, 1856. [Google Scholar] [CrossRef] [Scilit]
- Vereecken, H.; Huisman, J.A.; Pachepsky, Y.; Montzka, C.; van der Kruk, J.; Bogena, H.; Weihermüller, L.; Herbst, M.; Martinez, G.; Vanderborght, J. On the spatio-temporal dynamics of soil moisture at the field scale. J. Hydrol. 2014, 516, 76–96. [Google Scholar] [CrossRef] [Scilit]
- Grayson, R.B.; Western, A.W.; Chiew, F.H.S.; Blöschl, G. Preferred states in spatial soil moisture patterns: Local and nonlocal controls. Water Resour. Res. 1997, 33, 2897–2908. [Google Scholar] [CrossRef] [Scilit]
- Luo, J.; Zheng, Z.; Li, T.; He, S. Spatial heterogeneity of microtopography and its influence on the flow convergence of slopes under different rainfall patterns. J. Hydrol. 2017, 545, 88–99. [Google Scholar] [CrossRef] [Scilit]
- Famiglietti, J.S.; Rudnicki, J.W.; Rodell, M. Variability in surface moisture content along a hillslope transect: Rattlesnake Hill, Texas. J. Hydrol. 1998, 210, 259–281. [Google Scholar] [CrossRef] [Scilit]
- Kaiser, K.E.; McGlynn, B.L. Nested Scales of Spatial and Temporal Variability of Soil Water Content Across a Semiarid Montane Catchment. Water Resour. Res. 2018, 54, 7960–7980. [Google Scholar] [CrossRef] [Scilit]
- Kim, S.; Sun, H.; Jung, S. Configuration of the relationship of soil moistures for vertical soil profiles on a steep hillslope using a vector time series model. J. Hydrol. 2011, 399, 353–363. [Google Scholar] [CrossRef] [Scilit]
- Ma, Y.; Wu, P.; Chen, Y.; Dong, Q.; Shao, T.; Zhao, G.; Liu, X.; Zhao, Z.; Guan, Z. Hydrological processes in the megadune slopes and their implications for the water source of lakes in the Badain Jaran Desert. J. Hydrol. 2024, 631, 130844. [Google Scholar] [CrossRef] [Scilit]
- Svoray, T.; Sela, S.; Chen, L.; Assouline, S. Lateral Flow and Contributing Area Control Vegetation Cover in a Semiarid Environment. Water Resour. Res. 2021, 57, e2021WR030998. [Google Scholar] [CrossRef] [Scilit]
- Canton, Y.; Rodríguez-Caballero, E.; Contreras, S.; Villagarcia, L.; Li, X.-Y.; Solé-Benet, A.; Domingo, F. Vertical and lateral soil moisture patterns on a Mediterranean karst hillslope. J. Hydrol. Hydromech. 2016, 64, 209–217. [Google Scholar] [CrossRef] [Scilit]
- Cao, R.; Jia, X.; Huang, L.; Zhu, Y.; Wu, L.; Shao, M. Deep soil water storage varies with vegetation type and rainfall amount in the Loess Plateau of China. Sci. Rep. 2018, 8, 12346. [Google Scholar] [CrossRef] [Scilit]
- Nousu, J.P.; Leppä, K.; Marttila, H.; Ala-aho, P.; Mazzotti, G.; Manninen, T.; Korkiakoski, M.; Aurela, M.; Lohila, A.; Launiainen, S. Multi-scale soil moisture data and process-based modeling reveal the importance of lateral groundwater flow in a subarctic catchment. Hydrol. Earth Syst. Sci. 2024, 28, 4643–4666. [Google Scholar] [CrossRef] [Scilit]
- Akhter, T.; Pokhrel, Y.; Felfelani, F.; Ducharne, A.; Lo, M.H.; Reinecke, R. Implications of Lateral Groundwater Flow Across Varying Spatial Resolutions in Global Land Surface Modeling. Water Resour. Res. 2025, 61, e2024WR038523. [Google Scholar] [CrossRef] [Scilit]
- Tenreiro, T.R.; Jeřábek, J.; Gómez, J.A.; Zumr, D.; Martínez, G.; García-Vila, M.; Fereres, E. Simulating water lateral inflow and its contribution to spatial variations of rainfed wheat yields. Eur. J. Agron. 2022, 137, 126515. [Google Scholar] [CrossRef] [Scilit]
- Nan, W.; Ta, F.; Meng, X.; Dong, Z.; Xiao, N. Effects of age and density of Pinus sylvestris var. mongolica on soil moisture in the semiarid Mu Us Dunefield, northern China. For. Ecol. Manag. 2020, 473, 118313. [Google Scholar] [CrossRef] [Scilit]
- Wang, L.; Ma, A.; Zhang, H.; Zhang, J.; Dong, Q.; Fu, G. Effects of Long-Term Vegetation Restoration on Distribution of Deep Soil Moisture in Semi-arid Northwest of China. J. Soil Sci. Plant Nutr. 2020, 20, 2123–2132. [Google Scholar] [CrossRef] [Scilit]
- Zheng, C.; Lu, Y.; Liu, X.; Šimůnek, J.; Zeng, Y.; Shi, C.; Li, H. In-Situ Monitoring and Characteristic Analysis of Freezing-Thawing Cycles in a Deep Vadose Zone. Water 2020, 12, 1261. [Google Scholar] [CrossRef] [Scilit]
- Zheng, C.; Šimůnek, J.; Zhao, Y.; Lu, Y.; Liu, X.; Shi, C.; Li, H.; Yu, L.; Zeng, Y.; Su, Z. Development of the Hydrus-1D freezing module and its application in simulating the coupled movement of water, vapor, and heat. J. Hydrol. 2021, 598, 126250. [Google Scholar] [CrossRef] [Scilit]
- Dunkerley, D. Intra-event intermittency of rainfall: An analysis of the metrics of rain and no-rain periods. Hydrol. Process. 2015, 29, 3294–3305. [Google Scholar] [CrossRef] [Scilit]
- Brasil, J.B.; Guerreiro, M.S.; Andrade, E.M.d.; de Queiroz Palácio, H.A.; Medeiros, P.H.A.; Ribeiro Filho, J.C. Minimum Rainfall Inter-Event Time to Separate Rainfall Events in a Low Latitude Semi-Arid Environment. Sustainability 2022, 14, 1721. [Google Scholar] [CrossRef] [Scilit]
- da Silva-Dias, R.; Raposo-Díaz, X.; García-Tomillo, A.; López-Vicente, M. Response time of soil moisture to rain in a vineyard with permanent cover. Geoderma 2024, 444, 116866. [Google Scholar] [CrossRef] [Scilit]
- Zhang, Q.; Fan, J.; Zhao, X. Effect of shrubland-to-grassland conversion on soil water storage and infiltration capacity in Loess Plateau region of China. Catena 2025, 249, 108720. [Google Scholar] [CrossRef] [Scilit]
- Zhou, J.; Fu, B.; Gao, G.; Lü, N.; Lü, Y.; Wang, S. Temporal stability of surface soil moisture of different vegetation types in the Loess Plateau of China. Catena 2015, 128, 1–15. [Google Scholar] [CrossRef] [Scilit]
- Gao, L.; Peng, X.; Biswas, A. Temporal instability of soil moisture at a hillslope scale under subtropical hydroclimatic conditions. Catena 2020, 187, 104362. [Google Scholar] [CrossRef] [Scilit]
- Dymond, S.F.; Wagenbrenner, J.W.; Keppeler, E.T.; Bladon, K.D. Dynamic Hillslope Soil Moisture in a Mediterranean Montane Watershed. Water Resour. Res. 2021, 57, e2020WR029170. [Google Scholar] [CrossRef] [Scilit]
- Vereecken, H.; Kamai, T.; Harter, T.; Kasteel, R.; Hopmans, J.; Vanderborght, J. Explaining soil moisture variability as a function of mean soil moisture: A stochastic unsaturated flow perspective. Geophys. Res. Lett. 2007, 34, L22402. [Google Scholar] [CrossRef] [Scilit]
- Zhang, J.; Duan, L.; Liu, T.; Chen, Z.; Wang, Y.; Li, M.; Zhou, Y. Experimental analysis of soil moisture response to rainfall in a typical grassland hillslope under different vegetation treatments. Environ. Res. 2022, 213, 113608. [Google Scholar] [CrossRef] [Scilit]
- Yang, M.Y.; Zhang, Y.Y.; Pan, X.Y. Improving the Horton infiltration equation by considering soil moisture variation. J. Hydrol. 2020, 586, 124864. [Google Scholar] [CrossRef] [Scilit]
- Liu, H.; Lei, T.W.; Zhao, J.; Yuan, C.P.; Fan, Y.T.; Qu, L.Q. Effects of rainfall intensity and antecedent soil water content on soil infiltrability under rainfall conditions using the run off-on-out method. J. Hydrol. 2011, 396, 24–32. [Google Scholar] [CrossRef] [Scilit]
- He, Z.; Zhao, W.; Liu, H.; Chang, X. The response of soil moisture to rainfall event size in subalpine grassland and meadows in a semi-arid mountain range: A case study in northwestern China’s Qilian Mountains. J. Hydrol. 2012, 420–421, 183–190. [Google Scholar] [CrossRef] [Scilit]
- Zhu, Q.; Nie, X.; Zhou, X.; Liao, K.; Li, H. Soil moisture response to rainfall at different topographic positions along a mixed land-use hillslope. Catena 2014, 119, 61–70. [Google Scholar] [CrossRef] [Scilit]
- McCord, J.T.; Stephens, D.B.; Wilson, J.L. Hysteresis and state-dependent anisotropy in modeling unsaturated hillslope hydrologic processes. Water Resour. Res. 1991, 27, 1501–1518. [Google Scholar] [CrossRef] [Scilit]
- McCord, J.T.; Stephens, D.B. Lateral moisture flow beneath a sandy hillslope without an apparent impeding layer. Hydrol. Process. 1987, 1, 225–238. [Google Scholar] [CrossRef] [Scilit]












| Position | Particle Size Distribution (%) | Bulk Density (g/cm3) | ||
|---|---|---|---|---|
| <0.002 mm | 0.002~0.02 mm | >0.02 mm | ||
| WW-up | 0 | 0.16 | 99.84 | 1.56 |
| WW-middle | 0 | 0.35 | 99.65 | 1.54 |
| WW-foot | 0 | 0.17 | 99.83 | 1.55 |
| LW-up | 0 | 0.03 | 99.97 | 1.58 |
| LW-middle | 0 | 0.31 | 99.69 | 1.58 |
| LW-foot | 0 | 0.05 | 99.95 | 1.6 |
| Rainfall Event | Date | Amount (mm) | Duration (min) | 10 min Intensity (mm) | ||
|---|---|---|---|---|---|---|
| Max | Min | Average | ||||
| Event 1 | 2 July 2022 | 45.2 | 900 | 7.2 | 0.2 | 0.5 |
| Event 2 | 11 July 2022 | 58.6 | 550 | 2.4 | 0.2 | 1.07 |
| Event 3 | 10 November 2022 | 38.4 | 1430 | 5.6 | 0.2 | 0.027 |
| Depth (cm) | Min (% vol) | Max (% vol) | Average (% vol) | SD | CV (%) | Min (% vol) | Max (% vol) | Average (% vol) | SD | CV (%) |
|---|---|---|---|---|---|---|---|---|---|---|
| WW-up | LW-up | |||||||||
| 10 | 1.45 | 11.64 | 4.63 | 2.42 | 52.38 | 2.65 | 10.56 | 4.35 | 1.25 | 28.61 |
| 20 | 1.02 | 12.05 | 4.48 | 2.36 | 52.63 | 2.61 | 10.42 | 4.79 | 1.61 | 33.66 |
| 50 | 2.05 | 12.84 | 4.57 | 2.07 | 45.38 | 2.61 | 11.00 | 4.85 | 1.33 | 27.47 |
| 100 | 2.31 | 12.05 | 4.35 | 1.82 | 41.76 | 2.61 | 8.78 | 4.05 | 0.96 | 23.66 |
| 150 | 1.69 | 10.75 | 4.57 | 2.47 | 54.02 | 2.62 | 7.99 | 3.47 | 0.81 | 23.20 |
| WW-middle | LW-middle | |||||||||
| 10 | 1.63 | 14.64 | 5.71 | 3.24 | 56.78 | 2.61 | 11.95 | 4.76 | 1.72 | 36.1 |
| 20 | 2.26 | 10.41 | 4.47 | 2 | 44.8 | 2.62 | 10.09 | 5.21 | 1.46 | 27.94 |
| 50 | 2.6 | 11.17 | 5.23 | 2.15 | 41.11 | 2.6 | 12.28 | 6.04 | 1.94 | 32.16 |
| 100 | 2.46 | 11.35 | 5.17 | 2.44 | 47.18 | 2.61 | 12.32 | 4.67 | 1.44 | 30.92 |
| 150 | 2.25 | 8.89 | 3.8 | 1.58 | 41.55 | 2.6 | 8.62 | 3.72 | 1.29 | 34.64 |
| WW-foot | LW-foot | |||||||||
| 10 | 2.28 | 14.39 | 6.52 | 3.18 | 48.79 | 2.64 | 12.28 | 5.62 | 2.52 | 44.8 |
| 20 | 1.88 | 9.83 | 4.31 | 1.61 | 37.39 | 2.46 | 6.62 | 3.37 | 0.68 | 20.09 |
| 50 | 1.04 | 8.1 | 3.6 | 1.61 | 44.75 | 2.6 | 10.59 | 4.11 | 1.17 | 28.5 |
| 100 | 3.37 | 13.1 | 6.84 | 1.9 | 27.84 | 3.02 | 9.95 | 5.03 | 1.25 | 24.85 |
| 150 | 4.61 | 10.37 | 6.44 | 1.3 | 20.15 | 4.19 | 9.47 | 6.01 | 1.41 | 23.39 |
| Location | Depth (cm) | n | P | imax | imean | θinit |
|---|---|---|---|---|---|---|
| WW-up | 10 | 45 | 0.576 ** | 0.460 ** | 0.099 | −0.127 |
| 20 | 45 | 0.808 ** | 0.380 * | 0.373 | −0.302 | |
| 50 | 45 | 0.870 ** | 0.095 | 0.204 | −0.403 | |
| WW-middle | 10 | 45 | 0.704 ** | 0.424 * | 0.394 * | −0.277 |
| 20 | 45 | 0.849 | 0.345 | 0.12 | −0.515 | |
| 50 | 45 | 0.757 * | 0.533 | 0.907 ** | −0.665 | |
| WW-foot | 10 | 45 | 0.577 ** | 0.471 ** | 0.138 | −0.568 ** |
| 20 | 45 | 0.755 ** | −0.128 | 0.284 | 0.131 | |
| 50 | 45 | 0.778 | 0.024 | 0.282 | −0.708 | |
| LW-up | 10 | 45 | 0.556 ** | −0.163 | 0.18 | 0.122 |
| 20 | 45 | 0.742 ** | 0.16 | 0.307 | −0.249 | |
| 50 | 45 | 0.871 ** | 0.307 | 0.292 | −0.555 * | |
| LW-middle | 10 | 45 | 0.546 ** | 0.181 | 0.571 ** | −0.079 |
| 20 | 45 | 0.711 ** | −0.398 | −0.115 | −0.237 | |
| 50 | 45 | 0.743 ** | −0.109 | 0.403 | −0.444 | |
| LW-foot | 10 | 45 | 0.660 ** | 0.622 ** | 0.377 * | −0.475 ** |
| 20 | 45 | 0.933 ** | 0.065 | 0.204 | −0.185 | |
| 50 | 45 | 0.833 | −0.207 | 0.042 | −0.311 |
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Gao, W.; Zhang, X.; Jin, Z.; Liu, X.; Shi, C. Spatiotemporal Dynamics and Topographic Controls of Soil Moisture on Dune Slopes in a Semi-Arid Sandy Region. Agronomy 2026, 16, 692. https://doi.org/10.3390/agronomy16070692
Gao W, Zhang X, Jin Z, Liu X, Shi C. Spatiotemporal Dynamics and Topographic Controls of Soil Moisture on Dune Slopes in a Semi-Arid Sandy Region. Agronomy. 2026; 16(7):692. https://doi.org/10.3390/agronomy16070692
Chicago/Turabian StyleGao, Wande, Xingwang Zhang, Zhongqiang Jin, Xiuhua Liu, and Changchun Shi. 2026. "Spatiotemporal Dynamics and Topographic Controls of Soil Moisture on Dune Slopes in a Semi-Arid Sandy Region" Agronomy 16, no. 7: 692. https://doi.org/10.3390/agronomy16070692
APA StyleGao, W., Zhang, X., Jin, Z., Liu, X., & Shi, C. (2026). Spatiotemporal Dynamics and Topographic Controls of Soil Moisture on Dune Slopes in a Semi-Arid Sandy Region. Agronomy, 16(7), 692. https://doi.org/10.3390/agronomy16070692

