Suspended Sediment Grains Transport in Open-Channel Flow: A Flume-Based Validation of Mixing Length Theory.
Keywords:
Low-concentration flows, Flow turbulence, Mixing-length, Suspended Sediment transportAbstract
The transport of suspended sediment in low-concentration flows is fundamentally
governed by flow turbulence generated through basal shear stress. Traditional
interpretations of sediment suspension and turbulent mixing have largely relied
on the classical mixing-length turbulence theory developed by Prandtl, von
Kármán, and subsequent researchers. Although more sophisticated turbulence
models have emerged over recent decades, the mixing-length approach remains
widely employed in hydraulic engineering, fluvial geomorphology, and
sedimentology because of its conceptual simplicity, computational efficiency, and
practical applicability. In particular, the theory continues to play an important
role in the reconstruction and interpretation of ancient sedimentary
environments. Despite its extensive application, the predictive capability of
mixing-length theory has not been comprehensively reassessed using modern
high-resolution flow measurement techniques. This study therefore evaluates
the validity of the classical turbulence-suspension framework through a series
of controlled open-channel flume experiments utilizing advanced Acoustic
Doppler Velocimeter (ADV) technology. High-frequency velocity measurements
were acquired to characterize turbulent flow structures and to assess the
correspondence between observed flow behaviour and theoretical predictions.
The experimental results demonstrate a strong agreement between measured
and model-predicted velocity profiles, indicating that mixing-length theory
provides a reliable representation of the time-averaged vertical velocity
distribution in turbulent open-channel flows. The findings further confirm the
continued usefulness of the theory for estimating basal shear stress and
predicting suspended sediment transport under low-concentration conditions.
Furthermore, analysis of the velocity data suggests that a von Kármán constant
of approximately 0.29 yields a more accurate description of low-concentration
sand-laden flows than the conventionally adopted value of 0.41. These results
provide new experimental support for the continued application of classical
turbulence theory while highlighting the need for revised parameterization in
sediment-laden flow systems.
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