The Physics of Sediment Transport Initiation, Cessation, and Entrainment Across Aeolian and Fluvial Environments Academic Article uri icon

abstract

  • AbstractPredicting the morphodynamics of sedimentary landscapes due to fluvial and aeolian flows requires answering the following questions: Is the flow strong enough to initiate sediment transport, is the flow strong enough to sustain sediment transport once initiated, and how much sediment is transported by the flow in the saturated state (i.e., what is the transport capacity)? In the geomorphological and related literature, the widespread consensus has been that the initiation, cessation, and capacity of fluvial transport, and the initiation of aeolian transport, are controlled by fluid entrainment of bed sediment caused by flow forces overcoming local resisting forces, whereas aeolian transport cessation and capacity are controlled by impact entrainment caused by the impacts of transported particles with the bed. Here the physics of sediment transport initiation, cessation, and capacity is reviewed with emphasis on recent consensuschallenging developments in sediment transport experiments, twophase flow modeling, and the incorporation of granular physics' concepts. Highlighted are the similarities between dense granular flows and sediment transport, such as a superslow granular motion known as creeping (which occurs for arbitrarily weak driving flows) and systemspanning force networks that resist bed sediment entrainment; the roles of the magnitude and duration of turbulent fluctuation events in fluid entrainment; the traditionally overlooked role of particlebed impacts in triggering entrainment events in fluvial transport; and the common physical underpinning of transport thresholds across aeolian and fluvial environments. This sheds a new light on the wellknown Shields diagram, where measurements of fluid entrainment thresholds could actually correspond to entrainmentindependent cessation thresholds.

published proceedings

  • REVIEWS OF GEOPHYSICS

altmetric score

  • 21.55

author list (cited authors)

  • Pahtz, T., Clark, A. H., Valyrakis, M., & Duran, O.

citation count

  • 108

complete list of authors

  • Pahtz, Thomas||Clark, Abram H||Valyrakis, Manousos||Duran, Orencio

publication date

  • March 2020