Damage Inflicted by Extreme Drought on Poyang Lake Delta Wetland and the Establishment of Countermeasures
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Data and Analysis
2.2.1. Hydrometeorological Data
2.2.2. Remote Sensing Data
2.3. Research Method
2.3.1. Statistical Modelling
2.3.2. Physical Model of Ganjiang River Rump
2.3.3. Field Monitoring
3. Results
3.1. Cause of Extreme Drought Events in Poyang Lake Delta
3.1.1. The Drought Regime in Poyang Lake Delta
3.1.2. Natural Factors Causing Extreme Drought
3.1.3. Human Activity Causing Extreme Drought
3.2. Damage Inflicted by Extreme Drought Event on Delta Wetlands
3.2.1. Human Society
3.2.2. Ecology and Environment
3.3. Countermeasures
4. Discussion
4.1. Impact of Hydraulic Controller Operation on Delta Wetland
4.2. Impact of Operation of Poyang Lake Hydraulic Controllers on Delta Wetland
5. Conclusions
- (1)
- The occurrence of the extreme drought event in the Poyang Lake Delta was due to the joint influence of climate change (the uneven temporal distribution of rainfall) and human activities (e.g., Three Gorges Reservoir). In the extreme-drought year, the rainfall in Poyang Lake Basin began to decrease significantly in July 2022, far below the historical levels for the same period, leading to a significant reduction in the discharge of the Ganjiang River into the Poyang Lake Delta, with the minimum discharge being only 314 m3/s. The discharge and water level of Poyang Lake delt were both significantly correlated to rainfall in the Poyang Lake basin, with correlation coefficients of 0.808 (p < 0.01) and 0.875 (p < 0.01), respectively. In addition, the water level of Poyang Lake Delta was significantly correlated with the discharge of Jiujiang station, with a correlation coefficient of 0.959 (p < 0.01), indicating that the impoundment of the Three Gorges Reservoir is also one of the important causes of extreme drought in the delta.
- (2)
- The extreme drought event reduced the water level and volume in the Poyang Lake Delta region, causing many adverse effects on navigation, water supply and the wetland ecological environment. Compared with the normal year (2017), the extreme drought in 2022 reduced the inundation area of the Poyang Lake Delta in the dry season by 45.75%. TN, TP and NH4+-N increased by 50.2%, 240% and 64.7%, respectively, resulting in significant water quality deterioration. The density and biomass of algae increased significantly by 87.2% and 557.9%, respectively, thus increasing the risk of cyanobacterial bloom. The density and biomass of benthos decreased significantly by 59.9% and 78.5%, respectively. The key to reducing the adverse effects of extreme drought on the delta wetland is to improve the water level of the river channel and increase the submerged area in the Poyang Lake Delta.
- (3)
- The regulation and control of the proposed hydraulic controllers can effectively raise the water level, ensure the flow of each branch, increase the water area and reduce the damage inflicted by extreme drought on the delta wetland. Before the construction of the controllers, the water level of the Poyang Lake Delta under extreme drought conditions was 9.1 ± 0.7 m, and only the main branch flowed, while the other branches were cutoff. The operation of the controllers can raise the water level of the delta to 14.2 ± 1.8 m, adjust the diversion ratio of the main, north, middle and south branches to 50%, 4%, 24% and 22%, respectively, and increase the water area of the delta by 56%.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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River Name | Station | Longitude | Latitude | Data |
---|---|---|---|---|
Ganjiang River | Waizhou | 115.84 | 28.64 | Discharge and Water level |
Main branch | Changyi | 116.03 | 29.00 | Water level |
North branch | Jiangbu | 116.03 | 28.83 | Water level |
Middle branch | Louqian | 116.07 | 28.80 | Water level |
Poyang Lake | Xingzi | 116.05 | 29.45 | Water level |
South branch | Chucha | 116.09 | 28.77 | Water level |
Yangtze River | Jiujiang | 116.02 | 29.75 | Discharge and Water level |
Case | Case 1 | Case 2 |
---|---|---|
Discharge of Waizhou (m3/s) | 452 | 500 |
Name | Station | Distance to Waizhou (km) |
---|---|---|
Main branch | X1 | 0 |
X2 | 1.01 | |
X3 | 4.19 | |
X4 | 6.38 | |
X5 | 8.46 | |
X6 | 12.85 | |
X7 | 16.34 | |
X8 | 24.04 | |
X9 | 28.43 | |
X10 | 31.4 | |
X11 | 36.14 | |
X12 | 42.18 | |
X13 | 46.39 | |
X14 | 50.23 | |
X15 | 54.79 | |
X16 | 58.82 | |
South branch | N1 | 12.57 |
N2 | 17.17 | |
N3 | 20.28 | |
N4 | 23.43 | |
N5 | 28.96 | |
N6 | 36.61 | |
N7 | 44.43 | |
Middle branch | Z1 | 17.06 |
Z2 | 20.15 | |
Z3 | 24.21 | |
Z4 | 28.65 | |
Z5 | 30.32 | |
Z6 | 31.07 | |
Z7 | 37.64 | |
Z8 | 41.11 | |
Z9 | 44.57 | |
North branch | B1 | 31.64 |
B2 | 36.28 | |
B3 | 40.64 | |
B4 | 41.7 | |
B5 | 45.15 | |
B6 | 49.35 | |
B7 | 53.43 | |
B8 | 56.81 | |
B9 | 60.77 |
Sampling Time | TN (mg/L) | TP (mg/L) | NH4+-N (mg/L) |
---|---|---|---|
2017.12 | 2.53 | 0.05 | 0.51 |
2023.02 | 3.80 | 0.17 | 0.84 |
Sampling Time | Algae | Benthos | ||||
---|---|---|---|---|---|---|
Number of Species | Density (Cells/cm2) | Biomass (mg/cm2) | Number of Species | Density (ind/m2) | Biomass (g/cm2) | |
2017.12 | 50 | 1.49 × 104 | 0.0076 | 11 | 132.31 | 283.7 |
2023.02 | 41 | 2.79 × 104 | 0.05 | 19 | 53.11 | 60.87 |
Water Level (m) | Water Area (km2) | Increase Ratio |
---|---|---|
10 | 38.63 | 0 |
15 | 58.67 | 52% |
15.5 | 60.27 | 56% |
16 | 61.87 | 60% |
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Xia, Y.; Liu, Y.; Wang, Z.; Huang, Z.; You, W.; Wu, Q.; Zhou, S.; Zou, J. Damage Inflicted by Extreme Drought on Poyang Lake Delta Wetland and the Establishment of Countermeasures. Water 2024, 16, 2292. https://doi.org/10.3390/w16162292
Xia Y, Liu Y, Wang Z, Huang Z, You W, Wu Q, Zhou S, Zou J. Damage Inflicted by Extreme Drought on Poyang Lake Delta Wetland and the Establishment of Countermeasures. Water. 2024; 16(16):2292. https://doi.org/10.3390/w16162292
Chicago/Turabian StyleXia, Yang, Yue Liu, Zhichao Wang, Zhiwen Huang, Wensun You, Qiuqin Wu, Sufen Zhou, and Jun Zou. 2024. "Damage Inflicted by Extreme Drought on Poyang Lake Delta Wetland and the Establishment of Countermeasures" Water 16, no. 16: 2292. https://doi.org/10.3390/w16162292
APA StyleXia, Y., Liu, Y., Wang, Z., Huang, Z., You, W., Wu, Q., Zhou, S., & Zou, J. (2024). Damage Inflicted by Extreme Drought on Poyang Lake Delta Wetland and the Establishment of Countermeasures. Water, 16(16), 2292. https://doi.org/10.3390/w16162292