Case Studies
Apr 5, 2018

Combined Effect of Danjiangkou Reservoir and Cascade Reservoirs on Hydrologic Regime Downstream

Publication: Journal of Hydrologic Engineering
Volume 23, Issue 6

Abstract

The construction of dams has significant effects on hydrologic regimes downstream. The combined effect of the Danjiangkou Reservoir and the downstream cascade reservoirs on the changes in the hydrologic regime at Huangzhuang station were investigated using the indicators of hydrologic alteration (IHA) and the range of variability approach (RVA) in the middle-lower Hanjiang River. The single operation of the Danjiangkou Reservoir had effects with an overall alteration degree of 40.6%, in which the number of reversals, and flows in March and September were highly altered. The combined operation of Wangfuzhou Reservoir changed the flows in March and August and the extreme minima from high or moderate alteration to low alteration and increased the alteration of the extreme maxima, pulse behavior, and rise rate, with an overall alteration degree of 46.7%. Furthermore, with the combined operation of Cuijiaying Reservoir, the overall alteration degree increased to 63.5%, and 56.2% of the indicators were of high alteration. These changes are mainly caused by the reservoir regulations, which have profound effects on the river aquatic environment and biological habitats.

Get full access to this article

View all available purchase options and get full access to this article.

Acknowledgments

This work was supported by the National Natural Science Foundation of China (Grant Nos. 41571202 and 41671512). The authors thank two anonymous reviewers and the associate editor for valuable comments and feedback on a previous version of the paper.

References

Alrajoula, M. T., Zayed, I. S. A., Elagib, N. A., and Hamdi, M. R. (2016). “Hydrological, socio-economic and reservoir alterations of Er Roseires Dam in Sudan.” Sci. Total Environ., 566–567, 938–948.
Bradford, A., Noor, R., and Whiteley, H. (2007). “Ecological flow assessment for Hanlon Creek, Ontario: Use of synthesized flows with range of variability approach.” Can. Water Resour. J., 32(2), 111–128.
Bureau of Hydrology and Water Resources of Hubei Province. (2016). “Hubei river water situation report.” ⟨http://sw.hubeiwater.gov.cn/⟩ (Jul. 27, 2016).
Chen, J., et al. (2016). “Changes in monthly flows in the Yangtze River, China—With special reference to the Three Gorges Dam.” J. Hydrol., 536, 293–301.
Chen, Y. B., Liao, W. G., Peng, Q. D., Chen, D. Q., and Gao, Y. (2009). “A summary of hydrology and hydrodynamics conditions of four Chinese carps’ spawning.” J. Hydroecol., 2(2), 130–133 (in Chinese).
Chen, Y. Q. D., Yang, T., Xu, C. Y., Zhang, Q., Chen, X., and Hao, Z. C. (2010). “Hydrologic alteration along the Middle and Upper East River (Dongjiang) basin, South China: A visually enhanced mining on the results of RVA method.” Stochastic Environ. Res. Risk Assess., 24(1), 9–18.
China Meteorological Data Sharing Service System. (2016). “China surface climate data set (V3.0).” ⟨http://data.cma.cn/⟩ (Jul. 1, 2016).
Du, Y., Wang, X., and Cai, S. (2005). “Effect and countermeasure of the Middle Route Project of South to North Water Transfer on ecology and environment in the middle and lower reaches of Hanjiang River.” S&T Soc., 20(6), 477–482 (in Chinese).
Extence, C. A., Balbi, D. M., and Chadd, R. P. (1999). “River flow indexing using British benthic macroinvertebrates: A framework for setting hydroecological objectives.” Regul. River, 15(6), 545–574.
Fu, K. D., He, D. M., and Lu, X. X. (2008). “Sedimentation in the Manwan Reservoir in the Upper Mekong and its downstream impacts.” Quatern. Int., 186(1), 91–99.
Guo, W. X., Xia, Z. Q., and Wang, Q. (2008). “Effects of Danjiangkou Reservoir on hydrological regimes in the middle and lower reaches of Hanjiang River.” J. Hohai Univ., 36(6), 733–737 (in Chinese).
Hamed, K. H., and Rao, A. R. (1998). “A modified Mann-Kendall trend test for autocorrelated data.” J. Hydrol., 204(1–4), 182–196.
He, X., Dai, K., Li, A., and Chen, H. (2015). “Occurrence and assessment of perfluorinated compounds in fish from the Danjiangkou reservoir and Hanjiang river in China.” Food Chem., 174, 180–187.
Hu, W. W., Wang, G. X., Deng, W., and Li, S. N. (2008). “The influence of dams on ecohydrological conditions in the Huaihe River basin, China.” Ecol. Eng., 33(3–4), 233–241.
ICLOD CIGB. (2011). “World register of dams.” ⟨http://www.icold-cigb.org/GB/world_register/general_synthesis.asp⟩ (Apr. 7, 2017).
Isaak, D. J., Wollrab, S., Horan, D., and Chandler, G. (2012). “Climate change effects on stream and river temperatures across the northwest U.S. from 1980-2009 and implications for salmonid fishes.” Clim. Change, 113(2), 499–524.
Li, S., Gu, S., Liu, W., Han, H., and Zhang, Q. (2008). “Water quality in relation to land use and land cover in the upper Han River Basin, China.” Catena, 75(2), 216–222.
Li, W., et al. (2015). “Estimating the relationship between dam water level and surface water area for the Danjiangkou Reservoir using Landsat remote sensing images.” Remote Sens. Lett., 7(2), 121–130.
Li, X., et al. (2006). “Current status of spawning grounds of fish with pelagic eggs in the middle reaches of Hanjiang River.” J. Dalian Fisheries Univ., 21(2), 105–111 (in Chinese).
Li, Y., Chang, J., Tu, H., and Wang, X. (2016). “Impact of the Sanmenxia and Xiaolangdi Reservoirs operation on the hydrologic regime of the lower Yellow River.” J. Hydrol. Eng., 06015015.
Liao, Z., Chen, Z., and He, G. (1997). “Comprehensive impact of Wangfuzhou Project on near-dam river stretch.” Yangtze River, 28(12), 37–39 (in Chinese).
Lu, G., et al. (2012). “Impacts of Danjiangkou Reservoir on sediment regime of the Hanjiang River.” Hydrol. Res., 43(1–2), 64–72.
Magilligan, F. J., Nislow, K. H., Kynard, B. E., and Hackman, A. M. (2016). “Immediate changes in stream channel geomorphology, aquatic habitat, and fish assemblages following dam removal in a small upland catchment.” Geomorphology, 252, 158–170.
Mohseni, O., Stefan, H. G., and Erickson, T. R. (1998). “A nonlinear regression model for weekly stream temperatures.” Water Resour. Res., 34(10), 2685–2692.
Nature Conservancy. (2009). “Indicators of hydrological alteration version 7.1 user’s manual.” ⟨http://www.conservationgateway.org/ConservationPractices/Freshwater/EnvironmentalFlows/MethodsandTools/IndicatorsofHydrologicAlteration/Pages/IHA-Software-Download.aspx⟩ (Oct. 25, 2016).
New, T., and Xie, Z. (2008). “Impacts of large dams on riparian vegetation: Applying global experience to the case of China’s Three Gorges Dam.” Biodivers. Conserv., 17(13), 3149–3163.
Olden, J. D., and Poff, N. L. (2003). “Redundancy and the choice of hydrologic indices for characterizing streamflow regimes.” River Res. Appl., 19(2), 101–121.
Peng, T., Yan, H., Guo, J. L., Wang, G. X., and Li, K. (2016). “Impact of Danjiangkou Reservoir operation on downstream hydrological regime.” Yangtze River, 47(6), 22–26 (in Chinese).
Poff, L. R., et al. (1997). “The natural flow regime: A paradigm for river conservation and restoration.” Bioscience, 47(11), 769–784.
Richter, B. D., Baumgartner, J. V., Braun, D. P., and Powell, J. (1998). “A spatial assessment of hydrologic alteration within a river network.” Regul. River, 14(4), 329–340.
Richter, B. D., Baumgartner, J. V., Powell, J., and Braun, D. P. (1996). “A method for assessing hydrologic alteration within ecosystems.” Conserv. Biol., 10(4), 1163–1174.
Richter, B. D., Baumgartner, J. V., Wigington, R., and Braun, D. P. (1997). “How much water does a river need?” Freshwat. Biol., 37(1), 231–249.
Shiau, J. T., and Wu, F. C. (2004). “Feasible diversion and instream flow release using range of variability approach.” J. Water. Res. Plann. Manage., 395–404.
Shiau, J. T., and Wu, F. C. (2007). “Pareto-optimal solutions for environmental flow schemes incorporating the intra-annual and interannual variability of the natural flow regime.” Water Resour. Res., 43(6), 813–816.
Smith, N. D., Morozova, G. S., Pérez-Arlucea, M., and Gibling, M. R. (2016). “Dam-induced and natural channel changes in the Saskatchewan River below the E.B. Campbell Dam, Canada.” Geomorphology, 269, 186–202.
Sohrabi, M. M., Benjankar, R., Tonina, D., Wenger, S. J., and Isaak, D. J. (2017). “Estimation of daily stream water temperatures with a Bayesian regression approach.” Hydrol. Process., 31(9), 1719–1733.
SPSS version 18.0 [Computer software]. IBM, Armonk, NY.
Stanford, J. A., et al. (2015). “A general protocol for restoration of regulated rivers.” River Res. Appl., 12(4–5), 391–413.
Wang, D., Yin, Z. J., Fang, J. J., and Zhou, Y. L. (2016a). “Influence of reservoir water diversion on four major Chinese carps in middle and lower Hanjiang River.” J. Water Res. Resear., 5(6), 553–563 (in Chinese).
Wang, G., Wu, B., and Wang, Z. Y. (2005). “Sedimentation problems and management strategies of Sanmenxia Reservoir, Yellow River, China.” Water Resour. Res., 41(9), 477–487.
Wang, K., Liu, S., Duan, X., Sun, M., Ye, C., and Chen, D. (2013). “Fishway effect of Cuijiaying navigation-power junction project.” Trans. Chin. Soc. Agr. Eng., 29(3), 184–189 (in Chinese).
Wang, Y., Rhoads, B. L., and Wang, D. (2016b). “Assessment of the flow regime alterations in the middle reach of the Yangtze River associated with dam construction: Potential ecological implications.” Hydrol. Process., 30(21), 3949–3966.
Wang, Y. G., Zhang, W. S., Zhao, Y. X., Peng, H., and Shi, Y. Y. (2016c). “Modelling water quality and quantity with the influence of inter-basin water diversion projects and cascade reservoirs in the Middle-lower Hanjiang River.” J. Hydrol., 541, 1348–1362.
Wang, Y. K., Wang, D., and Wu, J. C. (2015). “Assessing the impact of Danjiangkou Reservoir on ecohydrological conditions in Hanjiang River, China.” Ecol. Eng., 81, 41–52.
Ward, J. V., and Stanford, J. A. (1995). “Ecological connectivity in alluvial river ecosystems and its disruption by flow regulation.” Regul. River, 11(1), 105–119.
Wen, W., Li, T., and Han, L. (2016). “Analysis of influence of water environment on development of hydropower cascade downstream of the Hanjiang River.” J. Environ. Eng. Tech., 6(3), 259–265 (in Chinese).
Wu, G., de Leeuw, J., Skidmore, A. K., Prins, H. H., Best, E. P., and Liu, Y. (2009). “Will the Three Gorges Dam affect the underwater light climate of Vallisneria spiralis L. and food habitat of Siberian crane in Poyang Lake?” Hydrobiologia, 623(1), 213–222.
Xu, X. L., Pang, Z. G., and Yu, X. F. (2005). Spatial-temporal pattern analysis of land use/cover change: Methods & applications, Science and Technology Literature Press, Beijing.
Yang, T., Zhang, Q., Chen, Y. D., Tao, X., Xu, C. Y., and Chen, X. (2008). “A spatial assessment of hydrologic alteration caused by dam construction in the middle and lower Yellow River, China.” Hydrol. Process., 22(18), 3829–3843.
Yin, D., Zheng, L., and Song, L. (2011). “Spatio-temporal distribution of phytoplankton in the Danjiangkou Reservoir, a water source area for the South-to-North Water Diversion Project (Middle Route), China.” Chin. J. Oceanol. Limnol., 29(3), 531–540.
Yin, K., Yuan, H., Liao, Q., and Ya, R. (2001). “Impact of middle route S-N water transfer project on algae bloom in middle and lower reach of Hanjiang River.” Yangtze River, 32(7), 31–36 (in Chinese).
Yin, X. A., Yang, Z. F., and Petts, G. E. (2014). “A new method to assess the flow regime alterations in riverine ecosystems.” River Res. Appl., 31(4), 497–504.
Yu, S., Yang, J., and Liu, G. (2014). “Impact assessment of Three Gorges Dam’s impoundment on river dynamics in the north branch of Yangtze River estuary, China.” Environ. Earth. Sci., 72(2), 499–509.
Yue, S., Pilon, P., Phinney, B., and Cavadias, G. (2002). “The influence of autocorrelation on the ability to detect trend in hydrological series.” Hydrol. Process., 16(9), 1807–1829.
Zhang, L., Dawes, W. R., and Walker, G. R. (2001). “Response of mean annual evapotranspiration to vegetation changes at catchment scale.” Water Resour. Res., 37(3), 701–708.
Zhao, Q., Liu, S., Deng, L., Dong, S., Yang, J., and Wang, C. (2012). “The effects of dam construction and precipitation variability on hydrologic alteration in the Lancang River Basin of southwest China.” Stochastic Environ. Res. Risk Assess., 26(7), 993–1011.

Information & Authors

Information

Published In

Go to Journal of Hydrologic Engineering
Journal of Hydrologic Engineering
Volume 23Issue 6June 2018

History

Received: Jul 1, 2017
Accepted: Nov 28, 2017
Published online: Apr 5, 2018
Published in print: Jun 1, 2018
Discussion open until: Sep 5, 2018

Permissions

Request permissions for this article.

Authors

Affiliations

Xinxin Song
Ph.D. Student, Univ. of Chinese Academy of Sciences, No.19A Yuquan Rd., Beijing 100049, China; Institute of Geodesy and Geophysics, Chinese Academy of Sciences, 340 XuDong Rd., Wuhan 430077, Hubei, China.
Yanhua Zhuang
Associate Professor, Hubei Key Laboratory of Environment and Disaster Monitoring and Evaluation, Institute of Geodesy and Geophysics, Chinese Academy of Sciences, 340 XuDong Rd., Wuhan 430077, Hubei, China.
Xuelei Wang [email protected]
Professor, Hubei Key Laboratory of Environment and Disaster Monitoring and Evaluation, Institute of Geodesy and Geophysics, Chinese Academy of Sciences, 340 XuDong Rd., Wuhan 430077, Hubei, China (corresponding author). E-mail: [email protected]
Enhua Li
Professor, Hubei Key Laboratory of Environment and Disaster Monitoring and Evaluation, Institute of Geodesy and Geophysics, Chinese Academy of Sciences, 340 XuDong Rd., Wuhan 430077, Hubei, China.

Metrics & Citations

Metrics

Citations

Download citation

If you have the appropriate software installed, you can download article citation data to the citation manager of your choice. Simply select your manager software from the list below and click Download.

Cited by

View Options

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Media

Figures

Other

Tables

Share

Share

Copy the content Link

Share with email

Email a colleague

Share