Stabilising large grains in self-forming steep channels

Author:

Booker William H.,Eaton Brett C.

Abstract

Abstract. It is understood that the interaction between sediment supply and discharge drives first-order behaviour of alluvial deposits. The influence of the grain size distribution over the mobility and resultant evolution is, however, unclear. Four experiments were conducted in a scaled physical model for two grain size distributions, analogous to a one-dimensional self-formed alluvial fan. We demonstrate the unsuitability of the median grain size as a predictor of deposit behaviour at flows when the material is not equally mobile. The results instead suggest, during conditions of unequal mobility, that the largest grains control the transport efficiency of the overall sediment mixture, and thus also the morphodynamics of the deposit and its tendency to store or evacuate material. Deposits appear to show a dependence upon the rate of material supply more strongly when the likelihood of its motion is less equally distributed (i.e. under partial transport conditions). If the coarse fraction (e.g. greater than 84th percentile) is instead mobile due to increased discharge or because of their relative size, transport rates will increase and the behaviour of the mixtures converge to a common state, with morphology influenced by the material's mobility.

Publisher

Copernicus GmbH

Subject

Earth-Surface Processes,Geophysics

Reference91 articles.

1. Ancey, C., Bigillon, F., Frey, P., Lanier, J., and Ducret, R.: Saltating Motion of a Bead in a Rapid Water Stream, Phys. Rev. E, 66, 036306, https://doi.org/10.1103/PhysRevE.66.036306, 2002. a

2. Andrews, E. D.: Entrainment of Gravel from Naturally Sorted Riverbed Material, Geol. Soc. Am. Bull., 94, 1225–1231, https://doi.org/10.1130/0016-7606(1983)94<1225:EOGFNS>2.0.CO;2, 1983. a, b

3. Andrews, E. D. and Parker, G.: Formation of a Coarse Surface Layer as the Response to Gravel Mobility, in: Sediment Transport in Gravel-Bed Rivers, edited by: Thorne, C., Bathurst, J., and Hey, R., Wiley, New York, 269–300, 1987. a

4. Ashmore, P. E.: Laboratory Modelling of Gravel Braided Stream Morphology, Earth Surf. Proc. Land., 7, 201–225, https://doi.org/10.1002/esp.3290070301, 1982. a

5. Ashmore, P. E.: How Do Gravel-Bed Rivers Braid?, Can. J. Earth Sci., 28, 326–341, https://doi.org/10.1139/e91-030, 1991. a, b

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