Estimating Energy Efficient Design Parameters for Trash Racks at Low Head Hydropower Stations
Abstract
:1. Introduction
2. Materials and Methods
3. Modelling with CFD Code FLOW-3D
4. Model Setup
5. Sensitivity Analysis
5.1. Sensitivity Analysis for Grid Size
5.2. Sensitivity Analysis for Boundary Conditions
5.3. Sensitivity Analysis to Turbulence Model
6. Model Validation
6.1. Scenario Modeling
6.2. Development of Equation for Head Loss through Trash Racks
7. Results and Discussion
7.1. Model Validation
7.2. Flow Characteristic through Rack Bars
7.2.1. Impact of Bar Spacing (Category-1 of Scenario Modeling)
7.2.2. Impact of the Inclination Angle of Bars (Category-2 of Scenario Modeling)
7.2.3. Impact of Blockage Ratio (Category-3 of Scenario Modeling)
7.3. Derivation of an Empirical Equation
7.4. Comparison of the Proposed Equation with Existing Head Loss Equations
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
u, v, and w | velocities in the x-, y-, and z-directions; |
V | volume fraction of fluid in each cell; |
Ax, Ay, and Az | fractional areas open to flow in the subscript directions; |
ρ | density; |
P′ | pressure; |
gi | gravitational force in the subscript direction; |
fi | Reynolds stresses; |
Aj | cell face areas; |
Stl | stereo lithographic; |
s | clear spacing between bars; |
α | inclination angle of the trash racks with channel bed; |
p | blockage ratio; |
head loss; | |
head loss by Kirschmer; | |
Kirschmer shape factor; | |
Escande head loss coefficient; | |
Fellenius head loss coefficient; | |
Shape factor | |
Bar thickness for Orsborn equation | |
net area through rack bars; | |
gross are through rack bars; | |
head loss coefficient; | |
v | velocity of approaching flow; |
g | gravitational acceleration; |
U/S | upstream; |
thickness of vertical rack; | |
determination coefficient; | |
adjusted determination coefficient; |
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Set No. | X | Y | Z | |||
---|---|---|---|---|---|---|
Xmin. | Xmax. | Ymin. | Ymax. | Zmin. | Zmax. | |
Set 1 | Specified Pressure | Outflow | Symmetry | Symmetry | Wall | Specified Pressure |
Set 2 | Specified Pressure | Specified Pressure | Symmetry | Symmetry | Wall | Specified Pressure |
Set 3 | Volume Flow Rate | Outflow | Symmetry | Symmetry | Symmetry | Specified Pressure |
Set 4 | Specified Velocity | Outflow | Symmetry | Symmetry | Wall | Specified Pressure |
Parameter | Existing Trash Rack | Category 1 | Category 2 | Category 3 | ||||
---|---|---|---|---|---|---|---|---|
(a) | (b) | (c) | (a) | (b) | (c) | (a) | ||
Clear spacing ‘s’ (mm) | 100 | 50 | 75 | 125 | 100 | 100 | 100 | 100 |
Inclination angle ‘α’ | 75° | 75° | 75° | 75° | 60° | 70° | 80° | 75° |
Blockage ratio ‘p’ | 0.09 | 0.17 | 0.12 | 0.07 | 0.09 | 0.09 | 0.09 | 0.13 |
Equation Developed by | Formulation for Head Loss |
---|---|
Kirschmer | |
USBR | |
Orsborn | |
Fellenius | |
Escande |
CFD Results | Site Data | % Difference in Flow Depth | % Difference in Hydraulic Head | ||
---|---|---|---|---|---|
U/S Hydraulic Head (m) | Flow Depth (m) | U/S Hydraulic Head (m) | Flow Depth (m) | ||
232.78 | 8.6 | 233.59 | 9.4 | 8.6 | 0.35 |
Approach Velocity (m/s) | Upstream of Trash Rack | Downstream of Trash Rack | Head Loss (m) | ||||
---|---|---|---|---|---|---|---|
Observation Points (m) | Total Hydraulic Head (m) | Observation Points (m) | Total Hydraulic Head (m) | ||||
x | y | x | y | ||||
0.5 | 27.32 | 11.85 | 233.313 | 29.62 | 11.85 | 233.310 | 0.0030 |
0.6 | 27.32 | 11.85 | 233.318 | 29.62 | 11.85 | 233.314 | 0.0043 |
0.7 | 27.32 | 11.85 | 233.323 | 29.62 | 11.85 | 233.317 | 0.0060 |
0.8 | 27.32 | 11.85 | 233.330 | 29.62 | 11.85 | 233.323 | 0.0074 |
0.9 | 27.32 | 11.85 | 233.338 | 29.62 | 11.85 | 233.328 | 0.0010 |
1 | 27.32 | 11.85 | 233.346 | 29.62 | 11.85 | 233.334 | 0.0120 |
Term | Coefficient | p-Value |
---|---|---|
Constant | 0.21419 | 0.000 |
(90 − α) | −0.0441 | 0.035 |
× (α) | −0.02104 | 0.002 |
p × (α) | 0.04622 | 0.000 |
Equation for Trash Racks Losses | MRE (%) |
---|---|
Kirschmer | 46.8 |
USBR | 36.5 |
Orsborn | 40.8 |
Fellenius | 19.1 |
Escande | 71.3 |
Present Study | 3.6 |
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Latif, M.A.; Sarwar, M.K.; Farooq, R.; Shaukat, N.; Ali, S.; Hashmi, A.; Tariq, M.A.U.R. Estimating Energy Efficient Design Parameters for Trash Racks at Low Head Hydropower Stations. Water 2022, 14, 2609. https://doi.org/10.3390/w14172609
Latif MA, Sarwar MK, Farooq R, Shaukat N, Ali S, Hashmi A, Tariq MAUR. Estimating Energy Efficient Design Parameters for Trash Racks at Low Head Hydropower Stations. Water. 2022; 14(17):2609. https://doi.org/10.3390/w14172609
Chicago/Turabian StyleLatif, Muhammad Ahsan, Muhammad Kaleem Sarwar, Rashid Farooq, Nadeem Shaukat, Shoaib Ali, Abrar Hashmi, and Muhammad Atiq Ur Rehman Tariq. 2022. "Estimating Energy Efficient Design Parameters for Trash Racks at Low Head Hydropower Stations" Water 14, no. 17: 2609. https://doi.org/10.3390/w14172609
APA StyleLatif, M. A., Sarwar, M. K., Farooq, R., Shaukat, N., Ali, S., Hashmi, A., & Tariq, M. A. U. R. (2022). Estimating Energy Efficient Design Parameters for Trash Racks at Low Head Hydropower Stations. Water, 14(17), 2609. https://doi.org/10.3390/w14172609