Variation and Driving Factors of Water Discharge and Sediment Load in Different Regions of the Jinsha River Basin in China in the Past 50 Years
Abstract
:1. Introduction
2. Study Area and Methods
2.1. Study Area
2.2. Data Series
2.3. Method
2.3.1. Mann–Kendall Method
(1) Trend Analysis
(2) Abrupt Change Analysis
2.3.2. Rank Sum Test
3. Result
3.1. Composition of Water and Sediment in the Jinsha River
3.2. Trend Change of Water Discharge and Sediment Load
3.3. Abrupt Change of Discharge and Sediment Load
3.4. Relationship between Water Discharge and Sediment Load
4. Analysis and Discussion
4.1. Main Driving Factors of Sediment Load
4.1.1. Precipitation
4.1.2. Human Activities
(1) Water and Soil Conservation
(2) Construction of Large Reservoirs
(3) Other Factors
4.2. Contributions of Water Discharge Change and Human Activities to Sediment Load
4.3. Macroeffect of Sediment Reduction in Watershed
4.3.1. Effect of Cascade Reservoirs on Sedimentation
4.3.2. Effect on Downstream Channel Erosion
4.3.3. Effect on Sediment into the Three Gorges Reservoir
5. Conclusions
- The evident different source of water and sediment in the Jinsha River Basin were caused by the difference in the underlying surface of each region and the uneven distribution of precipitation. The sediment load mainly came from the middle and lower reaches of the Jinsha River, whereas the water discharge mainly came from the Yalong River.
- The variation characteristics of the annual average water discharge and sediment load in each region of the Jinsha River Basin were evidently different. The water discharge had an increasing trend in the upstream region of the Zhimanda Station and a decreasing trend in the region between the Huatan and Pingshan Station, but no obvious trend change occurred in the other areas. The sediment load in the upstream region of the Shigu Station showed an increasing trend, that in the region between the Shigu and Panzhihua Station increased from 1998 to 2010 and then decreased from 2011 to 2015, and in the other regions, it showed a significant decreasing trend.
- Regarding the change of precipitation, the construction of large reservoirs and soil and water conservation projects, all they were the main driving factors of sediment load reduction in the Jinsha River Basin. The annual average sediment load reduction of the Jinsha River Basin was approximately 99.57 × 106 t/y from 1998 to 2015. The sediment load reduction values caused by water discharge change and human activities were 18.81 × 106 t/y and 80.76 × 106 t/y, which accounted for 18.9 % and 81.1 % of sediment load reduction, respectively.
- The construction of large reservoirs played a decisive role in sediment load reduction in the Jinsha River Basin. The intensity of sediment reduction load by human activities from 2011 to 2015 was approximately 1.7 times that from 1998 to 2010 mainly due to the operation of large reservoirs in the middle and lower reaches of the Jinsha River since 2011.
- Under the combined effect of sediment load reduction, sediment thinning and adjustment of water flow by reservoirs, the downstream channel of the Jinsha River exhibited a considerable channel erosion phenomenon. The reduction of sediment load from the Jinsha River Basin, which was the main source of sediment for the Yangtze River, resulted in a considerable reduction of sediment into the Three Gorges Reservoir, thereby affecting the operation of the Three Gorges Reservoir.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Station | River | Catchment Area (km2) | Time Series | Source of Data |
---|---|---|---|---|
Zhimenda | Jinsha River | 133,704 | 1960–2015 | Hydrological Bureau of Qinghai province |
Shigu | Jinsha River | 214,184 | 1952–2015 | Hydrological Bureau of Changjiang Water resource commission |
Panzhihua | Jinsha River | 259177 | 1966–2015 | Hydrological Bureau of Changjiang Water resource commission |
Tongzilin | Yalong River | 128,363 | 1999–2015 | Hydrological Bureau of Sichuan province |
Xiaodeshi | Yalong River | 116,490 | 1963–1998 | Hydrological Bureau of Sichuan province |
Wantan | Yalong River | 11,100 | 1957–2005 | Hydrological Bureau of Sichuan province |
Huatan | Jinsha River | 425,949 | 1958–2014 | Hydrological Bureau of Changjiang Water resource commission |
Baihetan | Jinsha River | 430,308 | 2015 | Hydrological Bureau of Changjiang Water resource commission |
Pingshan | Jinsha River | 458,592 | 1956–2011 | Hydrological Bureau of Changjiang Water resource commission |
Xiangjiaba | Jinsha River | 458,800 | 2012–2015 | Hydrological Bureau of Changjiang Water resource commission |
Zhutuo | Yangtze River | 694,725 | 1954–2015 | Hydrological Bureau of Changjiang Water resource commission |
Beibei | Jialing River | 156,736 | 1939–2015 | Hydrological Bureau of Changjiang Water resource commission |
Wulong | Wu River | 83,035 | 1951–2015 | Hydrological Bureau of Changjiang Water resource commission |
Region | Region Area/km2 | Proportion of Region Area/% | Sediment Load | Water Discharge | Modulus of Sediment Load/(t/km2) | Modulus of Water Discharge/(103 m3/km2) | ||
---|---|---|---|---|---|---|---|---|
/106 t | /% | /109 m3 | /% | |||||
Upstream of the Zhimenda Station | 133,704 | 29.2 | 7.91 | 3.0 | 12.1 | 8.6 | 59 | 90 |
Between the Zhimenda and ShiguStation | 80,480 | 17.5 | 14.39 | 5.6 | 28.8 | 20.5 | 179 | 358 |
Between the Shigu and PanzhihuaStation | 44,993 | 9.8 | 26.05 | 10.1 | 13.6 | 9.7 | 579 | 302 |
Yalong River Basin | 128,363 | 28.0 | 44.97 | 17.4 | 58.1 | 41.4 | 350 | 453 |
Between the Panzhihua and Huatan Station (excluding Yalong River) | 38,409 | 8.4 | 94.55 | 36.5 | 10.0 | 7.1 | 2462 | 260 |
Between the Huatan and PingshanStation | 32,614 | 7.1 | 71.11 | 27.4 | 17.8 | 12.7 | 2180 | 546 |
The entire Jinsha River Basin | 458,563 | 100 | 258.98 | 100 | 140.4 | 100 | 565 | 306 |
Regions | Water Discharge | Sediment Load | Zα/2 | ||
---|---|---|---|---|---|
|Zc| | |Zc| | ||||
Upstream of Zhimenda | 2.112 | 0.084 | 1.087 | 0.066 | 1.96 |
Between the Zhimenda and Shigu Station | 0.393 | 0.014 | 2.802 | 0.246 | |
Between the Shigu and Panzhihua Station | 0.719 | 0.029 | 2.101 | −0.434 | |
Yalong River Basin | 0.686 | 0.049 | 3.547 | −0.669 | |
Between thePanzhihua and HuatanStation (excluding the Yalong River) | 0.293 | −0.001 | 1.455 | −0.679 | |
Between Huatan and Pingshan | 2.710 | −0.144 | 4.134 | −1.861 |
Region | Abrupt Change Point | Time/year | Sediment Load/106 t | Water Discharge/109 m3 | |
---|---|---|---|---|---|
Water | Sediment | ||||
Upstream region of the Zhimenda Station | — | — | 1966–2015 | 8.7 | 13.1 |
Between the Zhimenda and ShiguStation | — | 1998 | 1966–2015 | 16.52 | 28.7 |
1966–1997 | 13.13 | 28.4 | |||
1998–2015 | 22.56 | 29.2 | |||
Between the Shigu and PanzhihuaStations | — | 1998, 2011 | 1966–2015 | 21.80 | 14.7 |
1966–1997 | 24.85 | 13.6 | |||
1998–2010 | 29.11 | 18.1 | |||
2011–2015 | −16.69 | 11.7 | |||
Yalong River Basin | — | 1999 | 1966–2015 | 34.17 | 58.0 |
1966–1998 | 44.97 | 57.5 | |||
1999–2015 | 12.56 | 59.0 | |||
Between the Panzhihua and HuatanStation (excluding Yalong River) | — | 2003 | 1966–2015 | 84.24 | 10.1 |
1966–2002 | 93.95 | 11.0 | |||
2003–2015 | 56.60 | 7.2 | |||
Between the Huatan and Pingshan station | — | 2001, 2013 | 1966–2015 | 54.03 | 17.0 |
1966–2000 | 72.58 | 18.1 | |||
2001–2012 | 30.83 | 14.5 | |||
2013–2015 | −68.59 | 13.0 |
Period | Large | Medium | Small | Total | ||||
---|---|---|---|---|---|---|---|---|
Number | Capacity/109m3 | Number | Capacity/109m3 | Number | Capacity/109m3 | Number | Capacity/109m3 | |
1966–1990 | 2 | 0.707 | 22 | 0.365 | 1201 | 0.685 | 1225 | 1.757 |
1991–2005 | 6 | 7.826 | 21 | 0.425 | 336 | 0.211 | 363 | 8.462 |
2006–2015 | 14 | 34.36 | 39 | 1.036 | 166 | 0.172 | 219 | 35.568 |
1966–2015 | 22 | 42.893 | 82 | 1.826 | 1703 | 1.068 | 1807 | 45.787 |
Variation of Sediment Load/(106 t/y) | 1998–2015 | 1998–2010 | 2011–2015 | ||||||
---|---|---|---|---|---|---|---|---|---|
Sum | Sum | Sum | |||||||
Upstream region of the Zhimenda Station | +3.68 | 0 | +3.68 | +1.69 | 0 | +1.69 | +8.89 | 0 | +8.89 |
Between the Zhimenda and Shigu Station | +0.90 | +8.52 | +9.42 | +2.57 | +9.74 | +12.31 | −3.88 | +5.83 | +1.95 |
Between the Shigu and Panzhihua Station | +11.09 | −20.74 | −9.65 | +17.70 | −13.44 | +4.26 | −6.08 | −39.72 | −45.80 |
Between the Panzhihua and Huatan Station (including the Yalong River) | −13.80 | −44.82 | −58.62 | −5.03 | −50.15 | −55.18 | −36.75 | −30.96 | −67.71 |
Between the Huatan and Pingshan Station | −20.68 | −23.72 | −44.40 | −17.75 | −14.36 | −32.11 | −28.29 | −48.06 | −76.35 |
Sum | −18.81 | −80.76 | −99.57 | −0.82 | −68.21 | −69.03 | −66.11 | −112.91 | −179.02 |
Contribution/% | 18.9 | 81.1 | 100 | 1.2 | 98.8 | 100 | 36.9 | 63.1 | 100 |
Period | Annual Average Sediment Load /106 t/y | ||||
---|---|---|---|---|---|
Jinsha River (Pingshan Station) | Yangtze River (Zhutuo Station) | Jialing River (Beibei Station) | Wu River (Wulong Station) | Total into the Three Gorges Reservoir (Zhutuo+Beibei+Wulong) | |
Feasibility Study Stage (1961–1970) | 251 | 336 | 179 | 29 | 544 |
2003–2012 | 141.63 | 167.86 | 29.15 | 5.7 | 202.71 |
2013 | 2.03 | 68.3 | 57.6 | 0.94 | 126.84 |
2014 | 2.21 | 34.6 | 14.5 | 6.34 | 55.44 |
2015 | 0.6 | 21.2 | 9.54 | 1.28 | 32.02 |
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Liu, S.-W.; Zhang, X.-F.; Xu, Q.-X.; Liu, D.-C.; Yuan, J.; Wang, M.-L. Variation and Driving Factors of Water Discharge and Sediment Load in Different Regions of the Jinsha River Basin in China in the Past 50 Years. Water 2019, 11, 1109. https://doi.org/10.3390/w11051109
Liu S-W, Zhang X-F, Xu Q-X, Liu D-C, Yuan J, Wang M-L. Variation and Driving Factors of Water Discharge and Sediment Load in Different Regions of the Jinsha River Basin in China in the Past 50 Years. Water. 2019; 11(5):1109. https://doi.org/10.3390/w11051109
Chicago/Turabian StyleLiu, Shang-Wu, Xiao-Feng Zhang, Quan-Xi Xu, De-Chun Liu, Jing Yuan, and Miao-Lin Wang. 2019. "Variation and Driving Factors of Water Discharge and Sediment Load in Different Regions of the Jinsha River Basin in China in the Past 50 Years" Water 11, no. 5: 1109. https://doi.org/10.3390/w11051109
APA StyleLiu, S. -W., Zhang, X. -F., Xu, Q. -X., Liu, D. -C., Yuan, J., & Wang, M. -L. (2019). Variation and Driving Factors of Water Discharge and Sediment Load in Different Regions of the Jinsha River Basin in China in the Past 50 Years. Water, 11(5), 1109. https://doi.org/10.3390/w11051109