Applying a Holistic Approach to Environmental Flow Assessment in the Yen River Basin
Abstract
:1. Introduction
2. Materials and Methods
2.1. Research Area
2.2. Methodology
3. Results
3.1. River Segments and Objectives
3.2. Conceptual Model
Flow Component | Objective | Categories | Reach | Hydraulic Criteria |
---|---|---|---|---|
Dry season baseflows | Maintain sufficient width of adequate depth at riffles and pool | Hydrology | 1, 2 | The flow is in range from the smallest monthly flow to the average of 3 smallest months flow |
Ensure the essential habitat for the fish and other instream fauna | Biology | All | ||
Maintain instream vegetation | Biology | All | ||
Support riparian vegetation | Connectivity | 1, 2 | ||
Purge invasive, introduced species from aquatic and riparian communities | Biology | All | ||
Provide drinking water for terrestrial animals | Connectivity | All | ||
Dry season pulses | Provide for the wetting of instream features, including benches and bars | Hydrology | 1, 2 | The flow has the water level at bar level |
Contribute to scouring of fine sediment | Geomorphology | 3, 4, 5 | ||
Prevent water quality issues | Water quality | 3, 4, 5 | ||
Support fish spawning | Biology | All | ||
Limit saline intrusions | Water quality | 3, 4, 5 | ||
Flood season baseflows | Provide larger habitats for aquatic species | Biology | All | The flow occurs at onset of flood season |
Restore normal water quality | Water quality | All | ||
Preventing the migration and colonization of riparian vegetation into the channel | Connectivity | All | ||
Flood season pulses | Determine the size of stream bed substrates | Geomorphology | All | The flow has a velocity that can mobilize d50 of the bed material |
Allowing for better connectivity between habitats | Connectivity | All | ||
Flush away waste products and pollutants | Water quality | All | ||
Bankfull flows | Prevent riparian vegetation from encroaching into the channel | Connectivity | All | The flood discharge occurs once every 1.5 2 years |
Support the production of food for aquatic species | Connectivity | All | ||
Maintaining the shape and form of the channel | Geomorphology | All | ||
Overbank flows | provide lateral connectivity | Connectivity | All | The flood discharge has P = 1 50% |
Deposit sediments onto the floodplain | Geomorphology | 1, 2 | ||
Trigger a new phase in the life cycle | Biology | All | ||
Provide water | Hydrology | 1, 2 |
3.3. Hydrological and Hydraulic Model
3.4. Environmental Flow Assessment
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Appendix A
References
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ID | Data | Source | Example |
---|---|---|---|
1 | Hydrometeorological and salinity data | Hydrometeorological stations | Figure A1 |
2 | Operation data | Reservoir owners | Figure A2 |
3 | River cross-section | Field survey to collect | Figure A3 |
4 | Bed material | Field survey to sample bed material | Figure A4 |
5 | Ecological information | Collect from both documents and questionnaires | Figure A5 |
6 | Water use information | Collect from both documents and questionnaires |
ID | Name | River | Description | Representative Site |
---|---|---|---|---|
1 | Reach 1 | Yen | Upstream to Song Muc reservoir | Song Muc reservoir |
2 | Reach 2 | Thi Long | Upstream to Yen My reservoir | Yen My reservoir |
3 | Reach 3 | Yen | Song Muc reservoir to junction | Chuoi station |
4 | Reach 4 | Thi Long | Yen My reservoir to junction | |
5 | Reach 5 | Yen | Junction to the sea | Ngoc Tra station |
ID | Mode | Variable | Location | Nash Index | |
---|---|---|---|---|---|
Calibration | Validation | ||||
1 | Hydrology | Discharge | Song Muc reservoir | 0.72 | 0.71 |
2 | Hydraulic | Water level | Ngoc Tra station | 0.98 | 0.98 |
3 | Hydraulic | Salinity | Ngoc Tra station | --- | --- |
Flow Component | Dry Season Baseflow | Dry Season Pulse | Flood Season Baseflow | Flood Season Pulse | Bankfull | Overbank Flow | |
---|---|---|---|---|---|---|---|
Flow rate (m3/s) | Reach 1 | 4.03 | 8.92 | 14.5 | 21.7 | 133 | 158 |
Reach 2 | 3.19 | 6.83 | 10.6 | 17.3 | 95 | 113 | |
Reach 3 | 4.16 | 17.6 | 26.2 | 39.5 | 187 | 213 | |
Reach 4 | 5.45 | 11.7 | 18.1 | 31.3 | 113 | 129 | |
Reach 5 | 15.3 | 54.5 | 117 | 192 | 1057 | 1205 | |
Frequency (per year) | Continuous | 4 | Continuous | 2 | 0.67 | 0.5 | |
Duration (days) | Dry season | 1 | Flood season | 2 | 3 | 3 |
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Tong, T.P.; Hoang, S.T.; Bui, D.Q.; Ha, N.T.; Nguyen, L.H.; Nguyen, L.M.; Tran, C.K. Applying a Holistic Approach to Environmental Flow Assessment in the Yen River Basin. Water 2024, 16, 1174. https://doi.org/10.3390/w16081174
Tong TP, Hoang ST, Bui DQ, Ha NT, Nguyen LH, Nguyen LM, Tran CK. Applying a Holistic Approach to Environmental Flow Assessment in the Yen River Basin. Water. 2024; 16(8):1174. https://doi.org/10.3390/w16081174
Chicago/Turabian StyleTong, Tuan Phuc, Son Thanh Hoang, Dung Quang Bui, Ngoc Trong Ha, Linh Ha Nguyen, Lan Minh Nguyen, and Chau Kim Tran. 2024. "Applying a Holistic Approach to Environmental Flow Assessment in the Yen River Basin" Water 16, no. 8: 1174. https://doi.org/10.3390/w16081174
APA StyleTong, T. P., Hoang, S. T., Bui, D. Q., Ha, N. T., Nguyen, L. H., Nguyen, L. M., & Tran, C. K. (2024). Applying a Holistic Approach to Environmental Flow Assessment in the Yen River Basin. Water, 16(8), 1174. https://doi.org/10.3390/w16081174