Characterization of Water and Total Nitrogen Contributions from the Inflow Rivers to Lake: A Study of West Dongting Lake in China
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Water Sampling
2.3. Measurement and Data Collection
2.4. Methods
2.4.1. Water Contribution Rates from the Local River System and from the Yangtze River System to West Dongting Lake
2.4.2. TN Contribution Rates from the Local River System and from the Yangtze River System to West Dongting Lake
3. Results
3.1. Screening and Spatiotemporal Distribution Characteristics of the Tracer Ions
3.1.1. Screening the Tracer Ions
3.1.2. The Spatiotemporal Distribution Characteristics of Tracer Ions
3.2. TN Distribution Characteristics of West Dongting Lake and Its Inflow Rivers
3.3. Analysis of the Water and TN Contributions of the Inflow Rivers to West Dongting Lake Based on Conservative Ion Tracing
3.3.1. The Water Contribution Rates from Different Water Sources to West Dongting Lake
3.3.2. The TN Contribution Rates from Different Water Sources to West Dongting Lake
4. Discussion
4.1. Water Replenishment Model of the Inflow River to West Dongting Lake
4.2. The Influence of Inflow Water from the Three Outfalls on West Dongting Lake
4.3. The Influence of Inflow Water from the Local River System on West Dongting Lake
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Spatial Group | Sites | Basic Information |
---|---|---|
Local rivers | S1 | Located on the mainstream before the tributary flows into West Dongting Lake, representing the water quality of the Li River. |
S2 | Located in the Yuan River estuary, representing the water quality of the Yuan River. | |
West Dongting Lake | S3 | Located in the south outlet of West Dongting Lake. |
S4 | The central area of West Dongting Lake. | |
S5 | Located in the confluence of inflow from the Li River and the three outfalls of the Yangtze River. | |
Three outfalls | S6 | Located in the west branch of Songzi River, representing the water quality of the flow from the Songzi outfall of the Yangtze River. |
S7 | Located in the east branch of Songzi River, representing the water quality of the flow from the Songzi outfall of the Yangtze River. | |
S8 | Located in the Hudu River estuary, representing the water quality of the flow from the Taiping outfall of the Yangtze River. | |
S9 | Located in the Ouchi River estuary, representing the water quality of the flow from the Ouchi outfall of the Yangtze River. |
Ca2+ | Na+ | Mg2+ | F− | Cl− | ||
K+ | 0.692 ** | 0.714 ** | 0.577 ** | 0.443 * | −0.001 | 0.662 ** |
Ca2+ | 0.861 ** | 0.760 ** | 0.700 ** | −0.099 | 0.833 ** | |
Na+ | 0.645 ** | 0.876 ** | −0.235 | 0.982 ** | ||
Mg2+ | 0.398 * | −0.149 | 0.543 ** | |||
−0.214 | 0.923 ** | |||||
F− | −0.188 |
Time | Item | K+ | Ca2+ | Na+ | Mg2+ | Cl− | |
---|---|---|---|---|---|---|---|
December 2016 (the dry season) | Concentration in the Yangtze River system(mg·L−1) | 2.760 | 48.237 | 11.568 | 9.471 | 38.432 | 15.782 |
Concentration in the local river system (mg·L−1) | 2.060 | 34.671 | 3.497 | 6.509 | 21.797 | 5.303 | |
Concentration difference (mg·L−1) | 0.700 | 13.567 | 8.070 | 2.962 | 16.635 | 10.478 | |
Difference rate (%) | 25.36 | 28.12 | 69.77 | 31.28 | 43.28 | 66.39 | |
April 2017 (the normal season) | Concentration in the Yangtze River system (mg·L−1) | 3.397 | 59.232 | 17.109 | 15.386 | 44.655 | 22.469 |
Concentration in the local river system (mg·L−1) | 1.526 | 36.494 | 3.189 | 7.683 | 25.541 | 3.694 | |
Concentration difference (mg·L−1) | 1.871 | 22.738 | 13.920 | 7.703 | 19.114 | 18.776 | |
Difference rate (%) | 55.08 | 38.39 | 81.36 | 50.06 | 42.80 | 83.56 | |
August 2017 (the wet season) | Concentration in the Yangtze River system (mg·L−1) | 2.448 | 47.048 | 10.597 | 8.882 | 38.685 | 15.158 |
Concentration in the local river system (mg·L−1) | 1.675 | 30.633 | 2.636 | 5.394 | 19.289 | 3.748 | |
Concentration difference (mg·L−1) | 0.772 | 16.415 | 7.961 | 3.488 | 19.397 | 11.410 | |
Difference rate (%) | 31.55 | 34.89 | 75.13 | 39.27 | 50.14 | 75.27 |
Time | Source | Water Contribution Rate | TN Contribution Rate | ||
---|---|---|---|---|---|
Cl− | Na+ | Cl− | Na+ | ||
December 2016 (the dry season) | the Yangtze River system | 23.46 | 17.57 | 17.81 | 13.09 |
the local river system | 76.54 | 82.43 | 82.19 | 86.91 | |
estimated deviation | 14.89 | 16.57 | |||
April 2017 (the normal season) | the Yangtze River system | 7.55 | 2.04 | 5.77 | 1.54 |
the local river system | 92.45 | 97.96 | 94.23 | 98.46 | |
estimated deviation | 11.30 | 12.50 | |||
August 2017 (the wet season) | the Yangtze River system | 27.42 | 28.37 | 36.01 | 37.11 |
the local river system | 72.58 | 71.63 | 63.99 | 62.89 | |
estimated deviation | −14.88 | −14.50 |
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Li, Y.; Wang, L.; Tian, Z.; Li, H. Characterization of Water and Total Nitrogen Contributions from the Inflow Rivers to Lake: A Study of West Dongting Lake in China. Water 2022, 14, 3463. https://doi.org/10.3390/w14213463
Li Y, Wang L, Tian Z, Li H. Characterization of Water and Total Nitrogen Contributions from the Inflow Rivers to Lake: A Study of West Dongting Lake in China. Water. 2022; 14(21):3463. https://doi.org/10.3390/w14213463
Chicago/Turabian StyleLi, Yingjie, Lijing Wang, Zebin Tian, and Hong Li. 2022. "Characterization of Water and Total Nitrogen Contributions from the Inflow Rivers to Lake: A Study of West Dongting Lake in China" Water 14, no. 21: 3463. https://doi.org/10.3390/w14213463
APA StyleLi, Y., Wang, L., Tian, Z., & Li, H. (2022). Characterization of Water and Total Nitrogen Contributions from the Inflow Rivers to Lake: A Study of West Dongting Lake in China. Water, 14(21), 3463. https://doi.org/10.3390/w14213463