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