HR: 1340h
AN: H43E-1668 [Abstracts]
TI: Characterising the Geomorphology of Forested Floodplains Using High Resolution Terrestrial Laser Scanning
AU: Sear, D A
EM: d.sear@soton.ac.uk
AF: School of Geography, University of Southampton, Southampton, SO17 1BJ, United
Kingdom
AU: Brasington, J
EM: jtb@aber.ac.uk
AF: Institute of Geography and Earth Sciences, The University of Wales, Aberystwyth, SY23
3DB, United Kingdom
AU: * Darby, S E
EM: s.e.darby@soton.ac.uk
AF: School of Geography, University of Southampton, Southampton, SO17 1BJ, United
Kingdom
AB:
Forested floodplain environments represent the undisturbed land cover of most temperate and tropical river
systems, but they are under threat from human resource management (Hughes et al., 2005, FLOBAR II Project
report). A scientific understanding of forest floodplain processes therefore has relevance to ecosystem
conservation and restoration, and the interpretation of pre-historic river and floodplain evolution. Empirical
research has highlighted how overbank flows are relatively shallow and strongly modified by floodplain
topography and the presence of vegetation and organic debris on the woodland floor [Jeffries et al., 2003,
Geomorphology, 51, 61-80; Millington and Sear, 2007, Earth. Surf. Proc. Landforms, 32, doi: 10.1002/esp.1552].
In such instances flow blockage and diversions are common, and there is the possibility of frequent switches
from sub-critical to locally super-critical flow. Such conditions also favour turbulence generation, both by wakes
and by shear. Consequently, the floodplain terrain (where we take ‘terrain' to include the underlying topography,
root structures, and organic debris) plays a key role in modulating the processes of erosion and sedimentation
that underpin the physical habitat diversity and hydraulic characteristics of complex wooded floodplain surfaces.
However, despite the importance of these issues, as yet there are no formal, quantitative, descriptions of the
highly complex and spatially diverse micro- and meso-topography that appears to be characteristic of forested
floodplain surfaces.
To address this gap, we have undertaken detailed surveys on a small floodplain reach within the Highland Water
Research Catchment (HWRC: see http://www.geog.soton.ac.uk/research/nfrc/default.asp), which is a UK national
reference site for lowland floodplain forest streams. This involved the deployment of a Leica ScanStation
terrestrial laser-scanner from 14 setups and ranges of less than 30 m to acquire an extremely high resolution,
accurate (185 million xyz observations, with absolute mean registration errors of 2 mm) 3-d point cloud model of
the floodplain. These raw data were processed using a combination of Leica CYCLONE and bespoke filtering
algorithms to construct a multi-resolution DTM of the forested floodplain at hitherto unprecedented detail (median
point density ~4500 pts m-2). A key point is that the extreme precision and point density permit relevant features of
the terrain (micro-topography, protruding roots, branches and stems, and surficial debris) that contribute to the
floodplain roughness, to be readily and directly be incorporated in the DTM as topographic features.
To characterise the morphology of the floodplain surface we have used the DTM to analyse a range of floodplain
morphometric indices, in particular focusing on derivative surface roughness metrics (including roughness
height) which are relevant in the parameterization of flow resistance. These are analysed at the floodplain scale to
show the spatial distribution of roughness, and at a patch scale selected from a simple classification of
floodplain surface. The analysis demonstrates spatial variability in roughness metrics at both scales, which have
implications for parameterising flow resistance in models of wooded floodplains.
DE: 0594 Instruments and techniques
DE: 1820 Floodplain dynamics
DE: 1856 River channels (0483, 0744)
DE: 1895 Instruments and techniques: monitoring
SC: Hydrology [H]
MN: 2007 Fall Meeting