An Assessment of Dam Operation Considering Flood and Low-Flow Control in the Han River Basin
Abstract
:1. Introduction
2. Methodologies
2.1. Frequency Matching
2.2. Evaluation Method of Dam Operation
3. Application and Discussion
3.1. Study Material
3.2. The Evaluation of Dam Operations for Flood and Low-Flow Control
3.3. Annual Evaluation of Dam Operation and Discussion
4. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Kim, J.Y.; Jo, H.S. A Study on the Operation Plan of Reservoir for Water Management. Water Future 2015, 48, 38–54. (in Korean). [Google Scholar]
- Mun, J.J.; Kang, S.W.; Lee, J.J. A Study of rainfall record on 2020 year flood. Water Future 2020, 53, 135–143. (In Korean) [Google Scholar]
- Jamieson, D.G.; Wilkinson, J.C. River Dee Research Program: 3. A short-term control strategy for multipurpose reservoir systems. Water Resour. Res. 1972, 8, 911–920. [Google Scholar] [CrossRef]
- Shultz, G.A.; Plate, E.J. Developing optimal operation rules for flood protection reservoir. J. Hydrol. 1976, 28, 245–265. [Google Scholar] [CrossRef]
- Sin, Y.N.; Maeng, S.J.; Go, I.H.; Lee, H.G. Development of reservoir operation model using simulation technique in flood season (I). J. Korea Water Resour. Assoc. 2000, 33, 745–755, In Korean. [Google Scholar]
- Kim, J.; Park, J.; Jang, S.; Kim, H.; Kang, H. Improving Reservoir Operation Criteria to Stabilize Water Supplies in a Multipurpose Dam: Focused on Nakdong River Basin in Korea. Water 2018, 10, 1236. [Google Scholar] [CrossRef] [Green Version]
- Nohara, D.; Hori, T. Integrated reservoir operation considering real-time hydrological prediction for adaptive water resources management. In Sustainable Water Resources Planning and Management Under Climate Change; Springer: Singapore, 2017. [Google Scholar]
- Akbari-Alashti, H.; Bozorg Haddad, O.; Fallah-Mehdipour, E.; Marino, M.A. Multi-reservoir real-time operation rules: A new genetic programming approach. In Proceedings of the Institution of Civil Engineers-Water Management; Thomas Telford Ltd.: London, UK, 2014; Volume 167, pp. 561–576. [Google Scholar]
- Wang, H.; Lei, X.; Yan, D.; Wang, X.; Wu, S.; Yin, Z.; Wan, W. An ecologically oriented operation strategy for a multi-reservoir system: A case study of the middle and lower Han River Basin, China. Engineering 2018, 4, 627–634. [Google Scholar] [CrossRef]
- Richter, B.D.; Thomas, G.A. Restoring environmental flows by modifying dam operations. Ecol. Soc. 2007, 12, 1–26. [Google Scholar] [CrossRef]
- Richter, B.D.; Baumgartner, J.V.; Powell, J.; Braun, D.P. A method for assessing hydrologic alteration within ecosystems. Conserv. Biol. 1996, 10, 1163–1174. [Google Scholar] [CrossRef] [Green Version]
- Magilligan, F.J.; Nislow, K.H. Changes in hydrologic regime by dams. Geomorphology 2005, 71, 61–78. [Google Scholar] [CrossRef]
- Haghighi, A.T.; Marttila, H.; Kløve, B. Development of a new index to assess river regime impacts after dam construction. Glob. Planet. Chang. 2014, 122, 186–196. [Google Scholar] [CrossRef]
- Wang, Y.; Rhoads, B.L.; Wang, D. Assessment of the flow regime alterations in the middle reach of the Yangtze River associated with dam construction: Potential ecological implications. Hydrol. Process. 2016, 30, 3949–3966. [Google Scholar] [CrossRef]
- Poff, N.L.; Allan, J.D. Functional organization of stream fish assemblages in relation to hydrological variability. Ecology 1995, 76, 606–627. [Google Scholar] [CrossRef]
- Pardo, I.; Campbell, I.C.; Brittain, J.E. Influence of dam operation on mayfly assemblage structure and life histories in two south-eastern Australian streams. Regul. Rivers Res. Manag. Int. J. Devoted River Res. Manag. 1998, 14, 285–295. [Google Scholar] [CrossRef]
- Poff, N.L.; Olden, J.D.; Merritt, D.M.; Pepin, D.M. Homogenization of regional river dynamics by dams and global biodiversity implications. Proc. Natl. Acad. Sci. USA 2007, 104, 5732–5737. [Google Scholar] [CrossRef] [Green Version]
- Gierszewski, P.J.; Habel, M.; Szmańda, J.; Luc, M. Evaluating effects of dam operation on flow regimes and riverbed adaptation to those changes. Sci. Total Environ. 2020, 710, 136202. [Google Scholar] [CrossRef]
- Zhang, P.; Yang, Z.; Cai, L.; Qiao, Y.; Chen, X.; Chang, J. Effects of upstream and downstream dam operation on the spawning habitat suitability of Coreius guichenoti in the middle reach of the Jinsha River. Ecol. Eng. 2018, 120, 198–208. [Google Scholar] [CrossRef]
- Mulatu, C.A.; Crosato, A.; Langendoen, E.J.; Moges, M.M.; McClain, M.E. Long-term effects of dam operations for water supply to irrigation on downstream river reaches. The case of the Ribb River, Ethiopia. Int. J. River Basin Manag. 2020, 1–15. [Google Scholar] [CrossRef]
- Yaghmaei, H.; Sadeghi, S.H.; Moradi, H.; Gholamalifard, M. Effect of Dam operation on monthly and annual trends of flow discharge in the Qom Rood Watershed, Iran. J. Hydrol. 2018, 557, 254–264. [Google Scholar] [CrossRef]
- Mailhot, A.; Talbot, G.; Ricard, S.; Turcotte, R.; Guinard, K. Assessing the potential impacts of dam operation on daily flow at ungauged river reaches. J. Hydrol. Reg. Stud. 2018, 18, 156–167. [Google Scholar] [CrossRef]
- Ministry of Environment. The Regulations of Connected Operation for Dam and Weir; Public Notification Number ME 1348; Ministry of Environment: Sejong, Korea, 2019. (In Korean)
- Zhu, Y.; Luo, Y. Precipitation calibration based on the frequency-matching method. Weather Forecast. 2015, 30, 1109–1124. [Google Scholar] [CrossRef]
- Li, J.; Du, J.; Chen, C.J. Applications of “Frequency Matching” Method to Ensemble Precipitation Forecasts. Meteor. Mon. 2015, 41, 674–684. [Google Scholar]
- Yang, C.; Yuan, H.; Su, X. Bias correction of ensemble precipitation forecasts in the improvement of summer streamflow prediction skill. J. Hydrol. 2020, 588, 124955. [Google Scholar] [CrossRef]
- Ro, Y.; Yoo, C. Applicability evaluation of probability matching method for parameter estimation of radar rain rate equation. J. Korean Soc. Civ. Eng. 2014, 34, 1765–1777. (In Korean) [Google Scholar] [CrossRef] [Green Version]
- Hawkins, R.H.; Ward, T.J.; Woodward, D.E.; Van Mullem, J.A. Curve Number Hydrology: State of the Practice; American Society of Civil Engineers: Reston, VA, USA, 2008; ISBN 978-0-7844-1004-2. [Google Scholar]
- Ministry of Land. Infrastructure and Transport, The Standard for Dam Design; Public Notification Number MOLIT 2019-1656; Ministry of Land: Sejong, Korea, 2019. (In Korean)
- K-Water Corporation. My Water. Available online: https://www.water.or.kr (accessed on 5 December 2020).
- Ministry of Environment. Water Resources Management Information System. Available online: http://www.wamis.go.kr (accessed on 2 January 2021).
- Ministry of Land, Infrastructure and Transport. The Investigative Report of Drought in 2015; Government Publications Registration Number 11-1613000-001330-14; Ministry of Land, Infrastructure and Transport: Sejong, Korea, 2016. (In Korean)
- Hoengseong and Wonju Office; K-Water Corporation. Available online: https://www.kwater.or.kr (accessed on 4 December 2020).
Truncation Level of Inflow | Inflow Rate of Dam (m3/s) | ||
---|---|---|---|
Soyanggang | Chungju | Hoengseong | |
Food (20 yr return period) | 250.7 | 594.0 | 19.5 |
Median | 20.0 | 49.7 | 1.3 |
Low-flow (20 yr return period) | 2.0 | 9.0 | 0.2 |
Historical median for Oct. 2014 to Jun. 2015 | 8.2 | 32.1 | 0.7 |
Dam Operation | Reduction or Increasing Rate (%) | ||
---|---|---|---|
Soyanggang | Chungju | Hoengseong | |
Flood reduction | 72.6 | 53.3 | 15.9 |
Runoff increasing | 65.7 | 77.6 | 97.4 |
Dam Operation | Reduction or Increasing Rate (%) | |||
---|---|---|---|---|
Soyanggang | Chungju | Hoengseong | ||
Flood reduction | average rate | 67.7 | 35.0 | 33.4 |
Std. deviation | 14.0 | 8.6 | 29.9 | |
Runoff increasing | average rate | 79.4 | 60.6 | 94.7 |
Std. deviation | 26.7 | 43.9 | 5.0 |
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Kwak, J. An Assessment of Dam Operation Considering Flood and Low-Flow Control in the Han River Basin. Water 2021, 13, 733. https://doi.org/10.3390/w13050733
Kwak J. An Assessment of Dam Operation Considering Flood and Low-Flow Control in the Han River Basin. Water. 2021; 13(5):733. https://doi.org/10.3390/w13050733
Chicago/Turabian StyleKwak, Jaewon. 2021. "An Assessment of Dam Operation Considering Flood and Low-Flow Control in the Han River Basin" Water 13, no. 5: 733. https://doi.org/10.3390/w13050733
APA StyleKwak, J. (2021). An Assessment of Dam Operation Considering Flood and Low-Flow Control in the Han River Basin. Water, 13(5), 733. https://doi.org/10.3390/w13050733