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18 - Theory of Minimum Energy Dissipation Rate

Published online by Cambridge University Press:  24 November 2022

Vijay P. Singh
Affiliation:
Texas A & M University
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Summary

A river constantly adjusts its geometry and morphology in response to the water and sediment load it receives from its watershed and to human activities, such as straightening, dredging, cutoff, levee construction, restoration, and diversion. The adjustment requires dissipation of energy. When the energy dissipation reaches a minimum rate the river tends to reach equilibrium. This chapter discusses the theory of minimum energy dissipation rate for deriving the hydraulic geometry when the river is in equilibrium state.

Type
Chapter
Information
Handbook of Hydraulic Geometry
Theories and Advances
, pp. 450 - 469
Publisher: Cambridge University Press
Print publication year: 2022

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References

Blench, T. (1957). Regime Behavior of Canals and Rivers. Butterworths, London.Google Scholar
Friedkin, J. F. (1945). A laboratory study of the meandering of alluvial rivers. U.S. Army Corps of Engineers Waterways Experiment Station, Vicksburg, MS.Google Scholar
Schumm, S. A. (1968). River adjustment to altered hydrologic regime-Murrumbidgee River and paleochannels, Australia. U.S. Geological Survey Professional Paper 598, Washington, DC.Google Scholar
Yang, C. T. (1973). Incipient motion and sediment transport. Journal of the Hydraulics Division, ASCE, Vol. 99, No. HY10, pp. 16971704.Google Scholar
Yang, C. T. and Molinas, A. (1982). Sediment transport and unit stream power function. Journal of the Hydraulics Division, ASCE, Vol. 108, No. 6, pp. 774793.CrossRefGoogle Scholar
Yang, C. T., Song, C. C. S., and Woldenberg, M. J. (1981). Hydraulic geometry and minimum rate of energy dissipation. Water Resources Research, Vol. 17, No. 4, pp. 10141018.Google Scholar

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