The Interplay between Flow Field, Suspended Sediment Concentration, and Net Deposition in a Channel with Flexible Bank Vegetation
Abstract
:1. Introduction
- (i)
- Characterize the mean and turbulent flow field at the lateral interface between the unvegetated (UP) and vegetated parts (VP) of the channel to support analyses on suspended sediment transport and lateral mixing. We aimed to provide insights on sediment transport and mixing efficiencies by linking the velocity differences with the drag induced by the vegetation.
- (ii)
- Quantify the vertical and lateral distribution of suspended sediment concentration in the unvegetated, vegetated, and interfacial region of the flow. The linkage between the flow velocities and turbulence intensities with the suspended sediment concentration (SSC) provide the means to explain the distributions of SSC and sediment transport.
- (iii)
- Quantify net deposition in the vegetated areas of the channel considering its spatial variability. This provides insights in both the longitudinal and lateral components patterns of net deposition, which is related to the vegetation densities.
2. Materials and Methods
2.1. Experimental Conditions
2.2. Vegetated Cross-Section and Characteristics
2.3. Instantaneous Flow Velocities and Turbulence Characteristics
2.4. Sediments: Physical Properties, Suspended Sediment Concentrations, and Transport
2.4.1. Physical Sediment Properties: Size, Shape, Specific Gravity, and Fall Velocities
2.4.2. Sediment Transport Modes and Mechanisms
2.4.3. Suspended Sediment Concentration by Optical Backscatter Techniques
2.4.4. Net Deposition in the Vegetated Areas
2.4.5. Describing Laterally and Vertically Suspended Sediment Transport in Vegetated Mixing Layers
3. Results and Discussion
3.1. Lateral Distributions of Key Flow Parameters, SSC, and Net Deposition in the Fully Developed Flow Region
3.1.1. Mean Flow Velocity and Turbulent Flow Characteristics
3.1.2. Lateral Variation of Suspended Sediment Concentration and Fluctuation Component IC
3.1.3. Characterizing the Lateral Distribution of Suspended Sediment Concentration in the Vegetated Mixing Layer
3.1.4. Lateral Patterns of Net Deposition in the Fully Developed Flow Region (x > LT)
3.2. Vertical Distributions of the Key Flow Parameters and SSC in the Fully Developed Flow Region
3.2.1. Vertical Profiles of the Time-Averaged Flow Velocity u and Turbulent Flow Characteristics
3.2.2. Vertical Profiles of SSC
3.3. Net Deposition and the Influences of Mean Bulk Flow Velocity and Foliation
3.3.1. Total Net Deposition
3.3.2. Longitudinal and Lateral Patterns of Net Deposition
3.3.3. The Influences of Bulk Flow Velocity, the Seasonal Differences of the Vegetation, and Patch Dimensions on Sediment Transport
4. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
List of Symbols
Symbol | Units | Fund. Dim. | Description |
A | m2 | L2 | cross-sectional area; |
Aveg | m2 | L2 | vegetated surface area; |
a | m−1 | L−1 | frontal vegetated area per unit volume; |
aL | m−1 | L−1 | frontal projected leaf area per unit volume; |
aS | m−1 | L−1 | frontal projected stem area per unit volume; |
CD | - | - | drag coefficient; |
CDa | m−1 | L−1 | vegetative drag; |
Cf | N m−2 | ML−2 | bed drag coefficient; |
C0 | mg L−1 | ML−3 | initial SSC; |
Cref | mg L−1 | ML−3 | reference SSC; |
mg L−1 | ML−3 | time-averaged squared fluctuation of SSC; | |
mg L−1 | ML−3 | spatial and time-averaged SSC; | |
δ | m | L | shear layer width; |
g | m s−2 | LT−2 | gravitational acceleration; |
h | m | L | water depth; |
I | - | - | turbulence intensity; |
IC | - | - | intensity of fluctuation of SSC; |
k | m2 s−2 | L2T−2 | turbulent kinetic energy; |
κ | - | - | von Kármán coefficient; |
λ | - | - | differential velocity ratio; |
λc | - | - | differential concentration ratio; |
λd | - | - | drag differential; |
g cm−2 | ML−2 | net deposition per unit area; | |
g cm−2 | ML−2 | spatial-averaged net deposition; | |
ρp | g cm−3 | ML−3 | solid particle density; |
Q | L s−1 | L3T−1 | discharge; |
g s−1 | ML−2T−1 | time-averaged reference SS flux; | |
qss | g s−1 | ML−2T−1 | time-averaged SS flux; |
Rep | - | - | particle Reynolds number; |
ReD | - | - | cylinder Reynolds number; |
Ro | - | - | Rouse number; |
S | - | - | bed slope; |
σ | mg L−1 | M L−1 | standard deviation between SSC; |
τxy | kg∙m−1 s−2 | ML−1T−2 | lateral Reynolds stress; |
U | m s−1 | LT−1 | mean streamwise flow velocity; |
Um | m s−1 | LT−1 | mean cross-sectional streamwise flow velocity; |
∆U | m s−1 | LT−1 | differential streamwise flow velocity; |
u | m s−1 | LT−1 | instantaneous horizontal velocity; |
m s−1 | LT−1 | time-averaged streamwise flow velocity; | |
kg∙m−1 s−2 | ML−1T−2 | bed-shear velocity; | |
v | m s−1 | LT−1 | instantaneous lateral velocity; |
W | m | L | flume width; |
w | m s−1 | LT−1 | instantaneous vertical velocity; |
ws | m s−1 | L T−1 | sediment settling velocity; |
x | m | L | spatial position in streamwise direction; |
y | mm | L | spatial position in lateral direction; |
yint | mm | L | Lateral position of the main channel-floodplain interface; |
yUP | mm | L | width of the unvegetated part of the channel; |
yVP | mm | L | width of the vegetated part of the channel; |
z | mm | L | spatial position in vertical direction; |
za | mm | L | reference location in Rouse equation; |
χ | - | - | reconfiguration parameter; |
Appendix A. Formulas Used for Calculating Temporally and Laterally Averaged Suspended Sediment Concentrations
Equation | Explanation | Formula | Example of two 60 s Measurements at 20 Hz with Two Points Over the Profile |
---|---|---|---|
A1 | Mean of time series of n samples | ||
A2 | Standard deviation of time series of n samples | ||
A3 | Average of M replicate measurements | ||
A4 | Standard deviation of M replicate measurements | ||
A5 | Average of M replicate measurements normalized by the maximum of P point measurements over the profile. Number of points indicated by the second subscript | ||
A6 | Standard deviation of M replicate measurements normalized by the maximum of P points over the profile | . |
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Experimental Run | Vegetated Condition | aS (m−1) | aL (m−1) | S (%) | Q (L/s) | Um (m/s) | ∆U (m/s) | λ (-) | |
---|---|---|---|---|---|---|---|---|---|
MQ-L | Leafless plants + understory grasses | 0.13 | 0 | 0.17 | 50 | UP | 0.67 | 0.27 | 0.25 |
VP | 0.40 | ||||||||
MQ-F | Foliated plants + understory grasses | 0.13 | 4.1 | 0.34 | 50 | UP | 0.79 | 0.57 | 0.57 |
VP | 0.22 | ||||||||
HQ-L | Leafless plants + understory grasses | 0.13 | 0 | 0.41 | 83 | UP | 1.13 | 0.46 | 0.26 |
VP | 0.67 | ||||||||
HQ-F | Foliated plants + understory grasses | 0.13 | 4.1 | 0.71 | 83 | UP | 1.27 | 0.74 | 0.41 |
VP | 0.53 |
Experimental Run | (mg/L) | UP/VP | (mg/L) | (-) | (-) | (%) | λc (-) | λd (-) |
---|---|---|---|---|---|---|---|---|
MQ-L | 113 | UP | 91 | 0.93 | 0.006 | 0.7 | 0 | 0.41 |
VP | 90 | 0.93 | ||||||
MQ-F | 90 | UP | 165 | 0.93 | 0.43 | 46 | 0.32 | 0.84 |
VP | 54 | 0.50 | ||||||
HQ-L | 233 | UP | 103 | 0.92 | 0.12 | 13 | 0.07 | 0.43 |
VP | 90 | 0.81 | ||||||
HQ-F | 172 | UP | 104 | 0.94 | 0.21 | 23 | 0.14 | 0.66 |
VP | 81 | 0.73 |
Experimental Run | (g/s) | (g/cm2) | (%) | (%) |
---|---|---|---|---|
MQ-L | 8 | 0.15 | 11 | 97 |
MQ-F | 4.8 | 0.17 | 22 | |
HQ-L | 21 | 0.47 | 14 | -5 |
HQ-F | 20.5 | 0.43 | 13 |
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Box, W.; Västilä, K.; Järvelä, J. The Interplay between Flow Field, Suspended Sediment Concentration, and Net Deposition in a Channel with Flexible Bank Vegetation. Water 2019, 11, 2250. https://doi.org/10.3390/w11112250
Box W, Västilä K, Järvelä J. The Interplay between Flow Field, Suspended Sediment Concentration, and Net Deposition in a Channel with Flexible Bank Vegetation. Water. 2019; 11(11):2250. https://doi.org/10.3390/w11112250
Chicago/Turabian StyleBox, Walter, Kaisa Västilä, and Juha Järvelä. 2019. "The Interplay between Flow Field, Suspended Sediment Concentration, and Net Deposition in a Channel with Flexible Bank Vegetation" Water 11, no. 11: 2250. https://doi.org/10.3390/w11112250
APA StyleBox, W., Västilä, K., & Järvelä, J. (2019). The Interplay between Flow Field, Suspended Sediment Concentration, and Net Deposition in a Channel with Flexible Bank Vegetation. Water, 11(11), 2250. https://doi.org/10.3390/w11112250