HR: 1330h
AN: H52A-1148 [PDF]
TI: Pool Formation in Boulder-Bed Streams: Implications From 1-D and 2-D Numerical Modeling
AU: * Harrison, L R
EM: lharrison@umail.ucsb.edu
AF: Department of Geological Sciences, University of California- Santa Barbara
Building 526, Santa Barbara, CA 93106-9630 United States
AU: Keller, E A
EM: keller@geol.ucsb.edu
AF: Department of Geological Sciences, University of California- Santa Barbara
Building 526, Santa Barbara, CA 93106-9630 United States
AB:
In mountain rivers of Southern California, boulder-large roughness elements strongly influence flow hydraulics and pool
formation and maintenance. In these systems, boulders appear to control the stream morphology by converging flow and
producing deep pools during channel forming discharges. Our research goal is to develop quantitative relationships between
boulder roughness elements, temporal patterns of scour and fill, and geomorphic processes that are important in producing
pool habitat.
The longitudinal distribution of shear stress, unit stream power and velocity were estimated along a 48 m reach on
Rattlesnake Creek, using the HEC-RAS v 3.0 and River 2-D numerical models. The reach has an average slope of 0.02 and
consists of a pool-riffle sequence with a large boulder constriction directly above the pool. Model runs were performed for
a range of stream discharges to test if scour and fill thresholds for pool and riffle environments could be identified.
Results from the HEC-RAS simulations identified that thresholds in shear stress, unit stream power and mean velocity occur
above a discharge of 5.0 cms. Results from the one-dimensional analysis suggest that the reversal in competency is likely
due to changes in cross-sectional width at varying flows. River 2-D predictions indicated that strong transverse velocity
gradients were present through the pool at higher modeled discharges. At a flow of 0.5 cms (roughly 1/10th bankfull
discharge), velocities are estimated at 0.6 m/s and 1.3 m/s for the pool and riffle, respectively. During discharges of 5.15
cms (approximate bankfull discharge), the maximum velocity in the pool center increased to nearly 3.0 m/s, while the maximum
velocity over the riffle is estimated at approximately 2.5 cms. These results are consistent with those predicted by
HEC-RAS, though the reversal appears to be limited to a narrow jet that occurs through the pool head and pool center.
Model predictions suggest that the velocity reversal is produced by a boulder-bedrock constriction that rapidly decreases the
channel width above the pool by roughly 25 percent. The width constriction creates highly turbulent flow capable of
scouring bed material through the pool. The high velocity core that is produced through the pool center appears to be
enhanced by the formation of a large eddy directly below the boulder. Values of unit stream power and shear stress indicate
that the pool exit is an area of deposition of bed material due to a decrease in tractive force.
The presence of a strong transverse velocity gradient suggests that only a portion of the flow is responsible for scouring
bed material. After we eliminate the dead water zone, the lowest five percent of the velocity range, patterns of effective
width between pools and riffles begin to emerge. The ratio of flow width between adjacent pools and riffles is one measure
of flow convergence. At a discharge of 0.5 cms, the ratio of effective width between pools and riffles is roughly 1:1,
implying that there is uniform flow with little flow convergence. At a discharge of 5.15 cms the width ratio between the
pool and riffle is about 1:3, demonstrating the strong convergent flow patterns at the pool head. The observed effective
width relationship suggests that when considering restoration designs, boulders should be placed in areas that replicate
natural convergence and divergence patterns in order to maximize pool area and depth.
DE: 1625 Geomorphology and weathering (1824, 1886)
DE: 1803 Anthropogenic effects
DE: 1815 Erosion and sedimentation
DE: 1824 Geomorphology (1625)
DE: 1886 Weathering (1625)
SC: Hydrology [H]
MN: 2003 Fall Meeting