Health Assessment of the Waterway from Chongqing to Yibin in the Upper Yangtze River, China
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Indicator System Construction for Waterway Health Assessment
- (1)
- Navigation
- (2)
- Flood discharge
- (3)
- Sediment transport
- (4)
- Water supply
- (5)
- Self-purification
- (6)
- Ecology
- (7)
- Recreation
2.3. Determination of Indicator Weight
2.4. Waterway Health Index
2.5. Sensitivity Analysis
2.6. Data Source and Preprocessing in 2016–2017 and 2018–2020
- (1)
- Reports about Yangtze River Channel regulation and construction, including Environmental Impact Report of the “13th Five-Year” Waterway Management and Construction Planning of the Yangtze River Trunk Line, Environmental Impact Report on Development Planning of Yangtze River Main Channel.
- (2)
- Statistics and Related Website. China Hydrological Yearbook, National Bureau of Statistics of China (accessed on 28 February 2022 http://www.stats.gov.cn/), Changjiang Waterway Bureau (accessed on 13 December 2021 http://www.cjhdj.com.cn), Changjiang Hydrology (accessed on 3 November 2020 http://www.cjh.com.cn), Changjiang Water Resources Commission of The Ministry of Water Resources (accessed on 6 September 2021 http://www.cjw.gov.cn), Changjiang Maritime Safety Administration (accessed on 8 March 2022 https://cj.msa.gov.cn), Chongqing Water Resources Bureau (accessed on 28 January 2020 http://slj.cq.gov.cn), Yibin Water Resources Bureau (accessed on 30 September 2021 http://ybsswj.yibin.gov.cn).
- (3)
- Extensive monitoring and sampling in the study area.
3. Results and Discussion
3.1. Indicator Assessment
3.2. Function Health Assessment
- (1)
- Navigation
- (2)
- Flood discharge
- (3)
- Sediment discharge
- (4)
- Water supply
- (5)
- Self-purification
- (6)
- Ecology
- (7)
- Recreation
3.3. Sensitivity Analysis
3.4. Health Comparison with Waterways in the Other Reaches of the Yangtze River
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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State Layer | No. | Function Layer | No. | Indicator Layer | Description and Calculation Method |
---|---|---|---|---|---|
The Waterway Health | B1 | Navigation | C1 | Navigable depth and width (m) | Navigable depth and width of the waterway [24] |
C2 | Rate of navigation aid facilities in service to the total (%) | (GB50139-2004) | |||
C3 | Annual accident occurrences | Accidents occurred within a year [20] | |||
B2 | Flood discharge | C4 | Maximum flood discharge capacity | The maximum flood level that the waterway can resist. (GB 50201-94) [26] | |
C5 | Proportion of flood control works meeting the criterion to the total (%) | [27] | |||
B3 | Sediment transport | C6 | The variation rate of water used for sediment transportation in a certain year relative to the average value (%) | Where represents water used for sediment transportation (108 m3); is average sediment discharge in a year(104); is average sediment concentration in the th month of the th year; indicates the number of years [28]. | |
C7 | The variation rate of the suspended sediment load in a certain year relative to the average value (%) | Where represents the rate of change of suspended sediment load, is the suspended sediment load in a certain year, is average sediment load over years [29]. | |||
B4 | Water supply | C8 | Rate of water resource utilization (%) | [30,31] | |
C9 | Rate of reaching water quality standard in function zones (%) | [32] | |||
C10 | Water quality comprehensive index | Where represents comprehensive water quality index; is pollutant index; is the concentration of pollutant; is the reference value of pollutant concentration [18]. | |||
B5 | Self-purification | C11 | Dissolved oxygen concentration(mg/L) | Dissolved oxygen concentration (mg/L) [33] | |
C12 | The variation rate of water used for self-purification in a certain year relative to the average value (%) | Average minimum monthly flow over the past decade (GB3839-83) | |||
B6 | Ecology | C13 | Degree of satisfaction of ecological water demand (%) | Where represents degree of satisfaction of ecological water demand(%), is the measured daily flow in evaluation year, is the average flow for several years [34]. | |
C14 | Fish integrity index | Where represents fish integrity index; is the number of biological species, is the proportion of number of species to the total fish species [35,36]. | |||
C15 | Survival of rare species | Investigation of rare species numbers and survival situation [37,38,39] | |||
B7 | Recreation | C16 | Landscape diversity index | Where represents landscape diversity index; is the number of landscape species, is the areal parentage of type landscape over the total area [40]. | |
C17 | Normalized difference vegetation index | Where represents normalized difference vegetation index; is the intercalibrated data in near-infrared bands; is the intercalibrated data in red bands [41]. |
n | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 |
---|---|---|---|---|---|---|---|---|
RI | 0.00 | 0.00 | 0.58 | 0.90 | 1.12 | 1.24 | 1.32 | 1.41 |
Index Layer | Unit | Excellent (5) | Good (4) | Fair (3) | Poor (2) | Bad (1) | Threshold Based on |
---|---|---|---|---|---|---|---|
C1 | m/m | ≥4/100 | ≥3.5/80 | ≥2.6/50 | ≥1.8/30 | <1.8/30 | National standards (GB50139-2004) |
C2 | % | ≥95 | ≥85 | ≥75 | ≥60 | <60 | National standards (GB50139-2004) |
C3 | ≤30 | ≤80 | ≤160 | ≤250 | >250 | Maritime Bureau statistics | |
C4 | Once in a thousand years flood | Once-in-a-century flood | Flood once in 50 years | Flood once in 20 years | Flood once in 10 years | National standards (GB 50201-94) | |
C5 | % | ≥95 | ≥80 | ≥65 | ≥60 | <60 | Literature [60] |
C6 | % | ≤10 | ≤25 | ≤40 | ≤60 | >60 | Literature [61] |
C7 | % | ≤20 | ≤35 | ≤50 | ≤70 | >70 | Literature [20] |
C8 | % | ≤10 | ≤20 | ≤30 | ≤40 | >40 | Literature [12] |
C9 | % | ≥95 | ≥80 | ≥60 | ≥40 | <40 | Literature [62] |
C10 | ≤0.5 | ≤1 | ≤1.5 | ≤2 | >2 | National standards (GB 3838-2002) | |
C11 | mg/L | ≥7.5 | ≥6 | ≥5 | ≥3 | ≥2 | National standards (GB 3838-2002) |
C12 | % | ≤5 | ≤15 | ≤30 | ≤50 | >50 | Historical hydrological data |
C13 | % | ≥65 | ≥45 | ≥35 | ≥15 | <15 | Literature [63] |
C14 | 58–60 | 48–52 | 40–44 | 28–34 | 12–22 | Literature [35,36] | |
C15 | Better | Good | Ordinary | Bad | Poor | Literature [37] | |
C16 | ≥1.8 | ≥1.2 | ≥0.7 | ≥0.3 | <0.3 | Literature [12] | |
C17 | ≥0.8 | ≥0.6 | ≥0.4 | ≥0.2 | <0.2 | Literature [64] |
Level | Excellent | Good | Fair | Poor | Bad |
---|---|---|---|---|---|
WHIc | 1 () | 0.86 () | 0.68 () | 0.43 () | 0 () |
Indicator | 2016–2017 | 2018–2020 | Index | 2016–2017 | 2018–2020 |
---|---|---|---|---|---|
C1 | 3 | 3 | C10 | 4 | 5 |
C2 | 5 | 5 | C11 | 5 | 5 |
C3 | 4 | 5 | C12 | 5 | 5 |
C4 | 2 | 3 | C13 | 3 | 3 |
C5 | 3 | 4 | C14 | 3 | 3 |
C6 | 4 | 1 | C15 | 3 | 4 |
C7 | 2 | 3 | C16 | 3 | 4 |
C8 | 4 | 4 | C17 | 4 | 4 |
C9 | 3 | 4 |
Function | Weight Increase 20% | Weight Decrease 20% | ||||||
---|---|---|---|---|---|---|---|---|
2016–2017 | Grade | 2018–2020 | Grade | 2016–2017 | Grade | 2018–2020 | Grade | |
B1 | 0.6948 | Fair | 0.7091 | Fair | 0.6879 | Fair | 0.7015 | Fair |
B2 | 0.6746 | Fair | 0.6920 | Fair | 0.7082 | Fair | 0.7187 | Fair |
B3 | 0.6920 | Fair | 0.6956 | Fair | 0.6908 | Fair | 0.7150 | Fair |
B4 | 0.6913 | Fair | 0.7123 | Fair | 0.6914 | Fair | 0.6984 | Fair |
B5 | 0.7004 | Fair | 0.7140 | Fair | 0.6823 | Fair | 0.6966 | Fair |
B6 | 0.6911 | Fair | 0.7054 | Fair | 0.6916 | Fair | 0.7052 | Fair |
B7 | 0.6918 | Fair | 0.7057 | Fair | 0.6909 | Fair | 0.7049 | Fair |
Function | The Upper Reaches | The Middle Reaches | The Middle-Lower Reaches | The Lower Reaches | |||
---|---|---|---|---|---|---|---|
Form Chongqing to Yibin | Jingjiang [21] | From Wuhan to Anqing [22] | From Nanjing to Liuhekou [23] | ||||
2016–2017 | 2018–2020 | 2011 | 2014 | 2015 (Predicted) | 2018 | 2016 | |
Navigation | Fair | Fair | Fair | Fair | Good | Good | Excellent |
Flood discharge | Poor | Poor | Fair | Good | Good | Good | Good |
Sediment transport | Fair | Poor | Poor | Fair | Good | Fair | Fair |
Water supply | Fair | Good | Fair | Fair | Good | Fair | Fair |
Self-purification | Excellent | Excellent | Fair | Good | Excellent | Excellent | Excellent |
Ecology | Fair | Fair | Fair | Poor | Fair | Poor | Bad |
Recreation | Fair | Fair | Poor | Poor | Fair | Good | Excellent |
System | Fair | Fair | Fair | Fair | Good | Fair | Fair |
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Li, P.; Xue, J.; Xia, W.; Li, T. Health Assessment of the Waterway from Chongqing to Yibin in the Upper Yangtze River, China. Water 2022, 14, 3007. https://doi.org/10.3390/w14193007
Li P, Xue J, Xia W, Li T. Health Assessment of the Waterway from Chongqing to Yibin in the Upper Yangtze River, China. Water. 2022; 14(19):3007. https://doi.org/10.3390/w14193007
Chicago/Turabian StyleLi, Pinjian, Jing Xue, Wei Xia, and Tianhong Li. 2022. "Health Assessment of the Waterway from Chongqing to Yibin in the Upper Yangtze River, China" Water 14, no. 19: 3007. https://doi.org/10.3390/w14193007
APA StyleLi, P., Xue, J., Xia, W., & Li, T. (2022). Health Assessment of the Waterway from Chongqing to Yibin in the Upper Yangtze River, China. Water, 14(19), 3007. https://doi.org/10.3390/w14193007