Correlation Analysis of Wetland Pattern Changes and Groundwater in Kaifeng Downstream of the Yellow River, China
Abstract
:1. Introduction
2. Study Area
3. Research Data and Methods
3.1. Research Data
3.2. Method
3.2.1. Remote Sensing Interpretation
3.2.2. Mann–Kendall Test
3.2.3. Absolute Principal Component Score-Multiple Linear Regression Model
4. Results and Discussion
4.1. Spatial and Temporal Variations in the Wetland Area in the Lower Yellow River
4.2. Wetland Hydrological Conditions
4.2.1. Variation in Discharge Characteristics of Yellow River Flow
4.2.2. The Variation Law of Rainfall and Produced Quantity
4.2.3. Characteristics of Groundwater Flow Field and Its Influencing Factors
4.3. Drivers of Wetland Landscape Change
4.3.1. Correlation Analysis of the Yellow River on Wetland Formation Conditions
4.3.2. Correlation Analysis of the Groundwater Flow Field on Wetland Patterns
4.4. APCS-MLR Analysis
5. Conclusions
- (1)
- With natural wetland as its major wetland type, the study area saw an increase in the total wetland area from 2000–2021. For natural wetlands, the total area of rivers increased while that of flooding wetlands decreased. For artificial wetlands, the total area increased.
- (2)
- The erosion of the riverway in the region made flooding increasingly less likely. The main riverway, even worse, was a typical wandering stream with significant oscillations, directly impacting the area of river water and flooding wetlands. The degraded areas of artificial wetlands were mainly distributed at the northern embankment of the Yellow River, where the groundwater burial depth decreased significantly. In contrast, at the southern embankment, for the sake of the irrigation canal diverted from the Yellow River, new artificial wetlands had formed, adding to the artificial wetland area.
- (3)
- Three influencing factors of wetland area along the Yellow River were identified in the study area, namely human factors, Yellow River runoff, and meteorological factors. According to the APCSMLR model, the influence of meteorological conditions on wetland area was small. The area of ditches and ponds was mainly affected by human factors, the area of river water surface was affected by human factors and the runoff of the Yellow River, and flooding wetlands was greatly affected by unknown sources.
- (4)
- The reduction of groundwater exploitation and an adequate supply of diverted Yellow River water were conducive to the development of wetlands in the back river depressions outside the Yellow River embankment.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Wetland Types | Type Declarations | Remote Sensing Image Interpretation Signs | |
---|---|---|---|
Natural wetlands | River | The water surface between the natural or artificially excavated river water level shoreline (excluding the reservoir water surface). | |
Flooding wetlands | Tidal flats between naturally formed or artificially excavated river flood level shorelines. | ||
Artificial wetlands | Ponds and ditches | Artificial excavation of water storage area. | |
Reservoirs | An area of natural formation or artificial excavation in which the surface is permanently covered by water. |
2000 | 2021 | |||||
---|---|---|---|---|---|---|
Non-Wetland | River | Flooding Wetlands | Reservoirs | Ponds and Ditches | Total | |
Non-wetland | 657.15 | 19.59 | 10.06 | 5.34 | 0 | 692.14 |
river | 0 | 19.51 | 4.69 | 0 | 0 | 24.20 |
Flooding wetlands | 0 | 22.40 | 16.10 | 0 | 0 | 38.50 |
Ponds and ditches | 2.30 | 0 | 0 | 13.11 | 0 | 15.41 |
Reservoirs | 0.11 | 0 | 0 | 0 | 4.98 | 5.09 |
Total | 659.56 | 61.50 | 30.85 | 18.45 | 4.98 | 775.34 |
Indicator | Component 1 | Component 2 | Component 3 |
---|---|---|---|
Pond and ditches | 0.94 | 0.10 | −0.17 |
River | 0.22 | 0.83 | 0.17 |
Flooding wetlands | −0.01 | 0.89 | −0.25 |
Yellow River water level | −0.14 | 0.73 | 0.10 |
Rainfall | −0.07 | 0.03 | 0.76 |
Groundwater burial depth (Jinglonggong) | 0.87 | −0.03 | −0.07 |
Groundwater burial depth (Chenqiao) | 0.90 | −0.01 | −0.25 |
Quantity of groundwater withdrawal | 0.65 | 0.10 | −0.17 |
Characteristic value | 3.90 | 3.07 | 1.31 |
Contribution % | 30.86 | 30.78 | 18.65 |
Cumulative contribution % | 30.86 | 61.64 | 80.29 |
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Cui, X.; Guo, L.; Zhang, X.; Meng, S.; Lei, S.; Cao, W.; Li, X. Correlation Analysis of Wetland Pattern Changes and Groundwater in Kaifeng Downstream of the Yellow River, China. Water 2025, 17, 1374. https://doi.org/10.3390/w17091374
Cui X, Guo L, Zhang X, Meng S, Lei S, Cao W, Li X. Correlation Analysis of Wetland Pattern Changes and Groundwater in Kaifeng Downstream of the Yellow River, China. Water. 2025; 17(9):1374. https://doi.org/10.3390/w17091374
Chicago/Turabian StyleCui, Xiangxiang, Lin Guo, Xueqing Zhang, Suhua Meng, Shan Lei, Wengeng Cao, and Xiangzhi Li. 2025. "Correlation Analysis of Wetland Pattern Changes and Groundwater in Kaifeng Downstream of the Yellow River, China" Water 17, no. 9: 1374. https://doi.org/10.3390/w17091374
APA StyleCui, X., Guo, L., Zhang, X., Meng, S., Lei, S., Cao, W., & Li, X. (2025). Correlation Analysis of Wetland Pattern Changes and Groundwater in Kaifeng Downstream of the Yellow River, China. Water, 17(9), 1374. https://doi.org/10.3390/w17091374