4.7 Review Book Chapter

Turbulence Processes Within Turbidity Currents

期刊

ANNUAL REVIEW OF FLUID MECHANICS, VOL 53
卷 53, 期 -, 页码 59-83

出版社

ANNUAL REVIEWS
DOI: 10.1146/annurev-fluid-010719-060309

关键词

turbidity current; basal drag coefficient; entrainment ratio; sinuous channel; convective sedimentation; Coriolis force

资金

  1. Natural Environment Research Council [NE/S014535/1]
  2. Natural Sciences and Engineering Research Council [RGPIN-2016-06542]
  3. NERC [NE/S014535/1] Funding Source: UKRI

向作者/读者索取更多资源

Turbidity currents are density-driven flows that transport vast quantities of particulate material across lake and ocean floors, sometimes generated by slope failure. The dynamics of turbidity currents, including internal turbulent mixing and flow around channel bends, are influenced by internal density and velocity structure, as well as the Coriolis force. Understanding these processes is crucial for comprehending some of the largest sedimentary structures on Earth's surface.
Sediment-laden gravity currents, or turbidity currents, are density-driven flows that transport vast quantities of particulate material across the floor of lakes and oceans. Turbidity currents are generated by slope failure or initiated when a sediment-laden flow enters into a lake or ocean; here, lofting or convective sedimentation processes may control flow dynamics. Depending upon the internal turbulent mixing, which keeps particles in suspension, turbidity currents can travel for thousands of kilometers across the seafloor. However, despite several competing theories, the process for the ultralong runout of these flows remains enigmatic. Turbidity currents often generate large sinuous channel-levee systems, and the dynamics of how turbidity currents flow around channel bends are strongly influenced by internal density and velocity structure, with large-scale flows being modified by the Coriolis force. Therefore, understanding some of the largest sedimentary structures on the Earth's surface depends on understanding the turbulence processes within turbidity currents.

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