3D float tracking: in situ floodplain roughness estimation
Publication date
2009
Authors
Straatsma, M.W.
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Document Type
Article
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(c) UU Universiteit Utrecht, 2009
Abstract
This paper presents a novel technique to quantify in situ hydrodynamic roughness of submerged floodplain vegetation: 3D
float tracking. This method uses a custom-built floating tripod that is released on the inundated floodplain and tracked from
shore by a robotic total station. Simultaneously, an acoustic Doppler current profiler (ADCP) collects flow velocity profiles
and water depth data. Roughness values are derived from two methods based on (1) run-averaged values of water depth,
slope and flow velocity to compute the roughness based on the Ch´ezy equation, assuming uniform flow, (2) the equation for
one-dimensional free surface flow in a moving window. A sensitivity analysis using synthetic data proved that the median
value of the roughness, derived using method 2, is independent of (1) the noise in water levels, up to 9 mm, (2) bottom
surface slope, and (3) topographic undulations. The window size should be at least 40 m for a typical lowland river setup.
Field measurements were carried out on two floodplain sections with an average vegetation height of 0Ð030 (Arnhem) and
0Ð043 m (Dreumel). Method 1 resulted in a Nikuradse roughness length of 0Ð08 m for both locations. Method 2 gave 0Ð12 m
for Arnhem and 0Ð19 m for Dreumel. In Arnhem, a spatial pattern of roughness values was present, which might be related
to fractional vegetation cover or vegetation density during the flood peak. 3D float tracking proved a flexible and detailed
method for roughness determination in the absence of waves, and provided an unrestricted view from shore.
Keywords
hydrodynamic friction, submerged vegetation, robotic total station, ADCP, in situ measurements, instrumentation