Impacts of River Engineering on Multi-Decadal Water Discharge of the Mega-Changjiang River
Abstract
:1. Introduction
2. Data and Methods
2.1. Data Collection
2.2. Methods
3. Results
3.1. Decadal Characteristics of Changjiang Water Discharge
3.2. Pattern of Seasonal Water Discharge Variability
3.3. Trends in Monthly Water Discharge Variability
3.4. Abrupt Changes in Water Discharges
4. Discussion
4.1. Influence of Precipitation
4.2. Influence of the Dams
4.3. Influence of Water Withdrawal
4.4. Sustainability in the Future
5. Conclusions
- During the period of 1954–2014, there was a minor decrease in decadal water discharge in the upper Changjiang catchment and unremarkable variation in the middle and lower Changjiang catchments. The mean discharge ratio of the flood season to the dry season decreased by 0.8, 0.5, and 0.4 from the 1960s to 2010s in the upper, middle, and lower Changjiang catchments, respectively, indicating that the seasonality of the mega-Changjiang discharge was decreasing. This resulted in a dramatic discharge decrease in October and remarkable increases from January to March.
- Precipitation dominated the annual discharge from the Changjiang River to the sea, which was also responsible for the intra-annual fluctuations in water discharge.
- As reservoir projects were put into operation, discharges decreased significantly in the flood season (especially in October) and increased in the dry season (especially from January to March). With water withdrawals and consumption becoming increasingly intensive, these two actions accounted for approximately 22% of the annual mean runoff of the Changjiang River in 2017. We therefore estimated that in 2028, the severe issue of saltwater intrusion will occur in the Changjiang Estuary, when the monthly mean discharge at Datong is less than the threshold of 11,000 m3/s. To make things worse, the capacity of SNWDP will reach 1600 m3/s in 2030, so the situation will be exacerbated.
Supplementary Materials
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Gauging Station | Time Span | Frequency | |
---|---|---|---|
Discharge | Yichang | Jan. 1954–Dec. 2014 | Yearly |
Hankou | Jan. 1954–Dec. 2014 | Yearly | |
Datong | Jan. 1954–Dec. 2014 | Yearly | |
Yichang | Jan. 1956–Dec. 2014 | Monthly | |
Hankou | Jan. 1956–Dec. 2014 | Monthly | |
Datong | Jan. 1956–Dec. 2014 | Monthly | |
Water usage | Basin-wide | 2002–2017 | Yearly |
Yichang | Hankou | Datong | N | |
---|---|---|---|---|
Annual | −3.34 | −0.37 | −0.16 | 61 |
January | 8.91 | 10.45 | 9.68 | 59 |
February | 9.96 | 9.09 | 7.60 | 59 |
March | 7.92 | 6.33 | 6.01 | 59 |
April | 3.94 | 1.31 | 0.17 | 59 |
May | −0.35 | −3.04 | −2.96 | 59 |
June | −1.02 | 0.25 | 0.27 | 59 |
July | −0.90 | 0.00 | 0.60 | 59 |
August | −3.31 | −0.07 | 0.85 | 59 |
September | −2.66 | −1.74 | −0.13 | 59 |
October | −7.08 | −5.44 | −3.41 | 59 |
November | −3.43 | −2.32 | −1.41 | 59 |
December | 0.12 | 2.30 | 3.00 | 59 |
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Ma, B.; Pang, W.; Lou, Y.; Mei, X.; Wang, J.; Gu, J.; Dai, Z. Impacts of River Engineering on Multi-Decadal Water Discharge of the Mega-Changjiang River. Sustainability 2020, 12, 8060. https://doi.org/10.3390/su12198060
Ma B, Pang W, Lou Y, Mei X, Wang J, Gu J, Dai Z. Impacts of River Engineering on Multi-Decadal Water Discharge of the Mega-Changjiang River. Sustainability. 2020; 12(19):8060. https://doi.org/10.3390/su12198060
Chicago/Turabian StyleMa, Binbin, Wenhong Pang, Yaying Lou, Xuefei Mei, Jie Wang, Jinghua Gu, and Zhijun Dai. 2020. "Impacts of River Engineering on Multi-Decadal Water Discharge of the Mega-Changjiang River" Sustainability 12, no. 19: 8060. https://doi.org/10.3390/su12198060
APA StyleMa, B., Pang, W., Lou, Y., Mei, X., Wang, J., Gu, J., & Dai, Z. (2020). Impacts of River Engineering on Multi-Decadal Water Discharge of the Mega-Changjiang River. Sustainability, 12(19), 8060. https://doi.org/10.3390/su12198060