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Computing Pier Scour With The CSU Equation
The CSU equation predicts maximum pier scour depths for both live-bed and clear-water pier scour. The equation is:
1) | y_s = 2.0 K_1 K_2 K_3 K_4 a^{0.65} y^{0.35}_1 Fr^{0.43}_1 |
Symbol | Description | Units |
---|---|---|
y_s | Depth of scour | feet (meters) |
K_1 | Correction factor for pier nose shape | |
K_2 | Correction factor for angle of attack of flow | |
K_3 | Correction factor for bed condition | |
K_4 | Correction factor for armoring of bed material | |
a | Pier width | feet (meters) |
y_1 | Flow depth directly upstream of the pier. This is taken from the flow distribution output for the cross section just upstream from the bridge. | |
Fr_1 | Froude Number directly upstream of the pier. This is taken from the flow distribution output for the cross section just upstream from the bridge. |
Note
For round nose piers aligned with the flow, the maximum scour depth is limited as follows:
ys ≤ 2.4 times the pier width (a) for Fr1 ≤ 0.8
ys ≤ 3.0 times the pier width (a) for Fr1 > 0.8
An optional correction factor, Kw for wide piers in shallow water can be applied to the CSU equation.
\displaystyle K_w = 2.58 \left( \frac{y}{a} \right) ^{0.34} F^{0.65} for \displaystyle \frac{V}{V_c} < 1
\displaystyle K_w = 1.0 \left( \frac{y}{a} \right) ^{0.13} F^{0.25} for \displaystyle \frac{V}{V_c} ≥ 1
Because this correction factor was developed based on limited flume data, it is not automatically accounted for in HEC-RAS. The user, however, can manually apply this factor to the computed scour depth, or can combine it with one of the user-entered correction factors (K1 through K4). See section 6.3 of HEC-18.
The correction factor for pier nose shape, K1, is given in Table 10-1 below:
Table 10-1 Correction Factor, K1, for Pier Nose Shape
Shape of Pier Nose | K1 |
---|---|
(a) Square nose | 1.1 |
(b) Round nose | 1.0 |
(c) Circular cylinder | 1.0 |
(d) Group of cylinders | 1.0 |
(e) Sharp nose (triangular) | 0.9 |
The correction factor for angle of attack of the flow, K_2, is calculated in the program with the following equation:
2) | \displaystyle K_2 = \left( cos \theta + \frac{L}{a} sin \theta \right) ^{0.65} |
Symbol | Description | Units |
---|---|---|
L | Length of the pier along the flow line | feet (meters) |
\theta | Angle of attack of the flow, with respect to the pier |
Note
If L/a is larger than 12, the program uses L/a = 12 as a maximum in (2). If the angle of attack is greater than 5 degrees, K2 dominates and K1 should be set to 1.0 (the software does this automatically).
The correction factor for bed condition, K3, is shown in table 10-2.
Table 10-2 Increase in Equilibrium Pier Scour Depth, K3, For Bed Condition
Bed Condition | Dune Height H feet | K3 |
---|---|---|
Clear-Water Scour | N/A | 1.1 |
Plane Bed and Antidune Flow | N/A | 1.1 |
Small Dunes | 10 > H ≥ 2 | 1.1 |
Medium Dunes | 30 > H ≥ 10 | 1.1 to 1.2 |
Large Dunes | H ≥ 30 | 1.3 |
The correction factor K4 decreases scour depths for armoring of the scour hole for bed materials that have a D50 equal to or larger than 0.007 feet (0.002 m) and a D95 equal to or larger than 0.066 feet (0.020 m). The correction factor results from recent research by A. Molinas at CSU, which showed that when the velocity (V1) is less than the critical velocity (Vc90) of the D90 size of the bed material, and there is a gradation in sizes in the bed material, the D90 will limit the scour depth. The equation developed by J. S. Jones from analysis of the data is:
3) | K_4 = 0.4 (V_R)^{0.15} |
4) | \displaystyle V_R = \left[ \frac{V_1 - V_{i50}}{V_{c50} - V_{i95}} \right] |
5) | V_{i50} = -0.645 \left[ \frac{D_{50}}{a} \right] ^{0.053} V_{c50} |
Symbol | Description | Units |
---|---|---|
V_{i95} | \displaystyle 0.645 \left[ \frac{D_{95}}{a} \right] ^{0.053} V_{c95} | |
V_R | Velocity ratio | |
V_1 | Average velocity in the main channel or overbank area at the cross section just upstream of the bridge | ft/s (m/s) |
V_{i50} | Approach velocity required to initiate scour at the pier for grain size D50 | ft/s (m/s) |
V_{i95} | Approach velocity required to initiate scour at the pier for grain size D95 | ft/s (m/s) |
V_{c50} | Critical velocity for D50 bed material size | ft/s (m/s) |
V_{c95} | Critical velocity for D95 bed material size | ft/s (m/s) |
a | Pier width | ft (m) |
6) | V_{c50} = K_u y^{1/6} D^{1/3}_{50} |
V_{c95} = K_u y^{1/6} D^{1/3}_{95} |
Symbol | Description | Units |
---|---|---|
y | The depth of water just upstream of the pier | ft (m) |
K_u | 11.17 (English Units), 6.19 (S.I. Units) |
Limiting K_4 values and bed material size are given in Table 10-3.
Table 10-3 Limits for Bed Material Size and K4 Values
Factor | Minimum Bed Material Size | Minimum K4 Value |
---|---|---|
K4 | D50 ≥ 0.006 ft (0.002 m) | 0.4 |