[1]
J.Y. Zhu: Sediment Design in Water Resources and Hydropower Engineering. China Water Power Press, Beijing 2010. (in Chinese).
Google Scholar
[2]
Z.Y. Wang, H. Zhao, S. Qi: Sedimentation Management Assessment of Sanmenxia Reservoir Based on RESCON Model. Yellow River. 2011, 33(9): pp.25-27. (in Chinese).
Google Scholar
[3]
Ministry of Water Resources: China river sediment Gazette of 2011. China Water Power Press, Beijing 2012. (in Chinese).
Google Scholar
[4]
S.X. Li, J.Q. Xia, J.H. Zhang, P.Q. Liu, Y.P. Wang, Prediction criterion of turbidity current formation in reservoir.Advances in Water Science, 2012, 23(3): pp.363-368. (in Chinese).
Google Scholar
[5]
Carl F. Nordin Jr.J.C. Stevens and the silt problem a review. international journal of sediment research. Vol6. No. 3. 1991. 12: 1-3.
Google Scholar
[6]
Q.S. Zhang, Open channel flow and sediment diffusion process and its application. Sediment Research. 1980: 37-52. (in Chinese).
Google Scholar
[7]
Q.W. Han, Theoretical study of nonequililrium transportation of nonuniform suspended load. Water Resources And Hydropower Engineering. , 2007, 38(1). (in Chinese).
Google Scholar
[8]
Q.W. Han, M.M. He. A Mathematical Model for Reservoir Sedimentation and Fluvial Processes. Inter. J. of Sediment Research, 1990, 5, (2): 43-84. (in Chinese).
Google Scholar
[9]
J.H. Zhang, S.K. Chen, S.X. Li, Y.P. Wang, H.B. Ma. Sediment transport and morphological changes of the Xiaolangdi Reservoir in early sediment impoundment period. Journal of Hydraulic Engineering. 2007. 12.
Google Scholar
[10]
Y.P. Wang, P.Q. Liu, J.H. Zhang, Interface resistance coefficient of turbidity current. Journal of Hydraulic Engineering. 2007, 38(12). (in Chinese).
Google Scholar
[11]
H.B. Ma, J.H. Zhang, S.K. Chen, S.X. Li, et. al. 2005 pre-flood water and sediment regulation of Xiaolangdi Reservoir sediment density current program design. 6th National Symposium on Sediment basic theoretical research. 2005. 10. (in Chinese).
Google Scholar
[12]
H.Q. Huang, K.Y. Zhao, Sediment Management of the Small-and-medium-sized Reservoirs in the Mountainous Regions in South of Shaanxi Province. Sediment Research. 2000, (1). (in Chinese).
Google Scholar
[13]
Claudia O. Espinosa-Villegas etal. Comparison of Long-Term Observed Sediment Trap Efficiency with Empirical Equations for Coralville Reservoir, Iowa[J]. J. Environ. Eng. 2009. 135: 518-525.
DOI: 10.1061/(asce)0733-9372(2009)135:7(518)
Google Scholar
[14]
L. Bengtsson, R.W. Herschy, R.W. Fairbridge (eds. ), RESERVOIR AND LAKE TRAP EFFICIENCY. Encyclopedia of Lakes and Reservoirs[J], Springer Science Business Media B.V. 2012: 620-625.
Google Scholar
[15]
B. Han, L.Z. Zhang, J. Shu, Optimal Scheduling of Cascade Hydropower Survey. Modern Power. 2007,24(1):pp.78-82.(in Chinese).
Google Scholar
[16]
X.H. Bai, X.D. Li, H.W. Zhou, Fen River Basin Runoff cascade reservoirs adjustment calculation. Water Resources and Power. 2002, 20(3): pp.51-53. (in Chinese).
Google Scholar
[17]
LI GuoYing, SHENG LianXi. Model of water-sediment regulation in Yellow River and its effect. Sci China Tech Sci, 2011, 41(6): 826-832. (in Chinese).
Google Scholar
[18]
Konrad C P. Monitoring and Evaluation of Environmental Flow Prescriptions for Five Demonstration Sites of theSustainable Rivers Project[R]. Reston: U.S. Geological Survey, (2010).
DOI: 10.3133/ofr20101065
Google Scholar
[19]
Z.Y. Wang, Outlook for Sediment Research. Acta Geographica Sinica. 1998, (5). 245-255. (in Chinese).
Google Scholar
[20]
Bahar Firoozabadi; Hossein Afshin; Ehsan Aram. Three-Dimensional Modeling of Density Current in a Straight Channel[J]. Journal of Hydraulic Engineering, 2009,135(6): 393-402.
DOI: 10.1061/(asce)hy.1943-7900.0000026
Google Scholar
[21]
X.F. Zhang, Z.J. Yao, J.Q. Lu, Stratified reservoir density flow test. Journal of Wuhan University Engineering Science. 2011, 44(4): 409-413. (in Chinese).
Google Scholar
[22]
Tao Li, Jun Hua Zhang, Guang Ming Tan, Huai Bao Ma, Shu Xia Li. Study on turbidity current head going through the changing width section[J]. Procedia Environmental Sciences , 2012,13 : 214 - 220.
DOI: 10.1016/j.proenv.2012.01.020
Google Scholar
[23]
Y.Y. Chen, D.F. Liu, Z.J. Yang, Y.C. Wang, et. al., Stratified density current on Xiangxi Bay main role of nutrient supply. Environmental Science. 2013, 33(3): pp.762-770. (in Chinese).
Google Scholar
[24]
Stefan Haun* and Nils Reidar B. Olse. Three-dimensional numerical modelling of the flushing process of the Kali Gandaki hydropower reservoir[J]. Lakes & Reservoirs: Research and Management 2012 17: 25-33.
DOI: 10.1111/j.1440-1770.2012.00491.x
Google Scholar
[25]
J.H. Zhang, S.K. Chen, S.X. Li, Y.P. Wang, H.B. Ma, Sediment transport and morphological changes of the Xiaolangdi Reservoir in early sediment impoundment period. (Yellow River Water Conservancy Press, Zhengzhou 2007). (in Chinese).
Google Scholar
[26]
L.B.S. Souza1, H.E. Schulz, S.M. Villela, J.S. Gulliver. Experimental Study and Numerical Simulation of Sediment Transport in a Shallow Reservoir[J]. Journal of Applied Fluid Mechanics, 2010 Vol. 3, No. 2, pp.9-21.
Google Scholar
[27]
S.X. Li, J.Q. Xia, J.H. Zhang, P.Q. Liu, Y.P. Wang, Quantitative criterion of continuous motion conditions of turbid density current in reservoirs. Engineering Journal of Wuhan University. 2011, 44(5) pp.599-603. (in Chinese).
Google Scholar
[28]
X.L. Tang, Z.C. Chen, Y.J. Lu, L.Q. Zuo, Numerical simulations of 3-D flows in the reach of the Xiaolangdi Project. Journal of Tsinghua University (Science and Technology). 2007, Vol. 47, (9). P. 1447-1451. (in Chinese).
Google Scholar
[29]
M. Wang, M. Wang, M. yang, Parallel Computing Research of Xiaolangdi Reservoir Three-Dimensional Mathematical Model. Yellow River. 2012. 5: pp.25-27. (in Chinese).
Google Scholar