Numerical Analysis of Water-Injection Drag Reduction on a Flat Plate
Abstract
1. Introduction and Existing Literature
2. Simulation Methodology
2.1. Geometry and Fluid Properties
2.2. Numerical Method and Mesh Setup
3. Verification and Validation
3.1. Sensitivity Studies
3.2. Validation of Flat-Plate Correlations
4. Parametric Investigation
4.1. Definition of Parameters
- Injection velocity ratio,
- Injection flow rate ratio,
4.2. Effect of Injection Angle
4.3. Scaling Parameters: Velocity Ratio vs. Flow-Rate Ratio
4.4. Effect of Injection at Fixed Bulk Velocity
5. Effect of Plate Orientation
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| AMG | Algebraic Multigrid |
| CFD | Computational Fluid Dynamics |
| DR | Drag Reduction |
| ITTC | International Towing Tank Conference |
| JBC | Japan Bulk Carrier |
| LJMU | Liverpool John Moores University |
| RANS | Reynolds-Averaged Navier–Stokes |
| Re | Reynolds number |
| SST | Shear Stress Transport |
| VOF | Volume of Fluid |
Symbols
| AInj | Cross-sectional area of the injection slot |
| BInj | Width of the injection slot |
| BTank | Width of the tank |
| BWL | Width of the flat plate |
| Cf | Skin frictional coefficient |
| CP | Pressure coefficient |
| εF | Relative uncertainty |
| FD | Skin frictional drag force with injection |
| FD0 | Skin frictional drag force without injection |
| FFit | Best fit curve |
| K | Turbulent kinetic energy |
| L | Length of the flat plate |
| Linj | Length of the injection slot |
| LTank | Length of the tank |
| P | Pressure |
| Pref | Reference pressure |
| QInj | Volumetric injection rate |
| QInj/Qw | Injection flow rate ratio |
| Qw | Volumetric flow within the boundary layer |
| ReL | Reynolds number on the plate |
| T | Height of the flat plate |
| TTank | Height of the tank |
| Ub | Bulk velocity/Freestream velocity |
| UInj | Injection velocity |
| UInj/Ub | Injection velocity ratio |
| y+ | Non-dimensional wall distance |
| Δt | Time step size |
| Δx | Base cell size |
| ν | Kinematic viscosity |
| ρ | Density of water |
| τw | Wall shear stress |
Appendix A. Dimensional Analysis
Appendix A.1. List Down All Variables and Choose Repeating Variables
| Variables | Dimensions |
|---|---|
| Dependent: | |
| Skin friction drag force, FD | ML/T2 |
| Independent: | |
| Bulk Velocity, U | [L/T] |
| Density of water, | [M/L3] |
| Knematic viscosity, | [L2/T] |
| Injection velocity, Uinj | [L/T] |
| Injection area, Ainj | [L2] |
| Length of plate, L | [L] |
| Width of plate, BWL | [L] |
Appendix A.2. Dimensionless Groups
| Derived From | Dimensionless Groups | Variables | Formula |
|---|---|---|---|
| Dependent: Skin friction coefficient | |||
| Independent: Reynolds number Injection velocity ratio Injection area ratio Plate aspect ratio |
Appendix B. Tabulated Results
| Injection Angle, [o] | No Injection Drag Force, [N] | With Injection Drag Force, [N] | Drag Reduction, DR [%] |
|---|---|---|---|
| 15 | 3.683 | 132.213 | −3489.8% |
| 30 | 3.549 | 27.863 | −685.1% |
| 45 | 3.560 | 7.761 | −118.0% |
| 60 | 3.36 | 3.150 | 10.9% |
| 75 | 3.547 | 2.978 | 16.1% |
| 90 | 3.670 | 2.917 | 20.5% |
| Injection Velocity Ratio, | Injection Flow Rate Ratio, | No Injection Drag Force, [N] | With Injection Drag Force, [N] | Drag Reduction, DR [%] |
|---|---|---|---|---|
| 0.1 0.2 0.3 0.4 0.5 1.0 1.2 1.4 1.45 1.5 1.6 1.8 2 2.5 3 | 0.07 0.15 0.22 0.30 0.37 0.74 0.89 1.04 1.07 1.11 1.19 1.33 1.48 1.85 2.22 | 3.67 | 3.505 3.432 3.357 3.260 3.156 2.762 2.679 2.662 2.312 2.245 2.651 2.749 2.917 3.231 3.433 | 4.5% 6.5% 8.5% 11.2% 14.0% 24.7% 27.0% 27.5% 37.0% 38.8% 27.8% 25.1% 20.5% 12.0% 6.5% |
| Bulk Velocity, | Injection Velocity Ratio, | Injection Flow Rate Ratio, | No Injection Drag Force, [N] | With Injection Drag Force, [N] | Drag Reduction, DR [%] |
|---|---|---|---|---|---|
| 1.0 m/s | 0.1 0.2 0.3 0.4 0.5 1.0 1.2 1.4 1.45 1.5 1.6 1.8 2 2.5 3 | 0.07 0.15 0.22 0.30 0.37 0.74 0.89 1.04 1.07 1.11 1.19 1.33 1.48 1.85 2.22 | 3.67 | 3.505 3.432 3.357 3.260 3.156 2.762 2.679 2.662 2.312 2.245 2.651 2.749 2.917 3.231 3.433 | 4.5% 6.5% 8.5% 11.2% 14.0% 24.7% 27.0% 27.5% 37.0% 38.8% 27.8% 25.1% 20.5% 12.0% 6.5% |
| 1.5 m/s | 0.124 0.373 0.622 0.871 1.120 1.369 1.618 1.867 | 0.1 0.3 0.5 0.7 0.9 1.1 1.3 1.5 | 7.822 | 7.704 7.478 6.739 5.983 5.835 5.864 5.931 6.298 | 2% 4% 14% 24% 25% 25% 24% 19% |
| Constant Non-Dimensional Unit | Reynolds Number, | No Injection Drag Force, [N] | With Injection Drag Force, [N] | Drag Reduction, DR [%] |
|---|---|---|---|---|
| = 1.5 | 1.68 × 106 3.37 × 106 4.49 × 106 5.61 × 106 6.73 × 106 | 0.446 1.465 2.455 3.670 5.198 | 0.307 0.893 1.488 2.245 3.139 | 31.2% 39.1% 39.4% 38.8% 39.6% |
| = 1.1 | 1.68 × 106 3.37 × 106 4.49 × 106 5.61 × 106 6.73 × 106 8.42 × 106 | 0.446 1.465 2.455 3.670 5.198 7.822 | 0.288 0.858 1.765 2.234 3.508 5.864 | 35.4% 41.4% 28.1% 39.1% 32.5% 25.0% |
| Plate Orientation | No Injection Drag Force, [N] | With Injection Drag Force, [N] | Drag Reduction, DR [%] |
|---|---|---|---|
| 0 15 30 45 60 75 90 | 8.141 8.129 8.146 8.144 8.148 8.135 8.105 | 5.842 5.835 5.787 5.802 6.256 5.814 5.795 | 28% 28% 29% 29% 23% 29% 28% |
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| Properties | Values |
|---|---|
| Fluid (Water) | |
| Density, ρ [kg/m3] | 997.561 |
| Kinematic viscosity, ν [m2/s] | 8.90883 × 10−7 |
| Freestream velocity, U [m/s] | 0.3–1.5 |
| Reynolds number on the plate, ReL (×106) | 1.68–8.42 |
| Injection velocity, Uinj [m/s] | 0.1–3.0 |
| Geometry | |
| Tank | |
| 30 |
| 8 |
| 8 |
| Flat plate | |
| 5 |
| 0.804 |
| 0.295 |
| Injection slot | |
| 0.05 |
| 0.78 |
| 15–90 |
| Parameter | Values |
|---|---|
| Mesh type | Trimmed hexahedral cells with a prism layer |
| Base size | 0.256 m |
| Prism layers | 28 layers, first layer thickness y+ < 5, stretching ratio 1.2 |
| Refinement regions | Around the flat plate, near the injection region and near the plate bottom |
| Surface size near the plate | 7.5% relative to base size |
| Surface size near the injection slot | 5.0% relative to base size |
| Surface size near the plate bottom | 2.5% relative to base size |
| Total cell count | 6.13–6.4 million (depending on injection angle) |
| Minimum surface quality | 0.05 |
| Parameter | Schemes/Settings |
|---|---|
| Pressure-velocity coupling | SIMPLE algorithm with Rhie-Chow interpolation |
| Temporal discretisation | Second-order implicit backwards scheme, fixed time step size, Δt and 10 inner iterations per time step. |
| Spatial discretisation (convection) | Second-order upwind |
| Solver type | Segregated (equations solved sequentially, re-coupled through pressure correction) |
| Linear solvers | Algebraic Multigrid (AMG) |
| Gradient schemes | Least-squares with Venkatakrishnan limiter |
| Level | Time Step Size, Δt (s) | Drag Force, FD (N) | Best Fit Curve, FFit (N) | Relative Uncertainty, εF/F (%) |
|---|---|---|---|---|
| Coarse | 0.02481 | 2.908 | 2.9106 | 0.6% |
| Medium | 0.01754 | 2.917 | 2.9106 | 0.7% |
| Fine | 0.0124 | 2.897 | 2.9106 | 0.9% |
| Finest | 0.00877 | 2.917 | 2.9106 | 0.6% |
| Level | Base Cell Size, Δx (m) | Number of cells (×106) | Drag Force, FD (N) | Best Fit Curve, FFit (N) | Relative Uncertainty, εF/F (%) |
|---|---|---|---|---|---|
| Coarse | 0.362 | 2.67 | 2.9 | 2.9040 | 0.9% |
| Medium | 0.256 | 6.13 | 2.917 | 2.9034 | 1.0% |
| Fine | 0.181 | 11.13 | 2.901 | 2.9032 | 0.6% |
| Finest | 0.128 | 25.5 | 2.901 | 2.9031 | 0.5% |
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Hitchmough, D.; Muhamad Pauzi, A.; Blanco-Davis, E.; Spiteri, A.; Shahrokhi, A.; Routledge, A.; Armson, R.; Tsoulakos, N.; Wang, J. Numerical Analysis of Water-Injection Drag Reduction on a Flat Plate. J. Mar. Sci. Eng. 2025, 13, 2271. https://doi.org/10.3390/jmse13122271
Hitchmough D, Muhamad Pauzi A, Blanco-Davis E, Spiteri A, Shahrokhi A, Routledge A, Armson R, Tsoulakos N, Wang J. Numerical Analysis of Water-Injection Drag Reduction on a Flat Plate. Journal of Marine Science and Engineering. 2025; 13(12):2271. https://doi.org/10.3390/jmse13122271
Chicago/Turabian StyleHitchmough, David, Anas Muhamad Pauzi, Eddie Blanco-Davis, Andrew Spiteri, Ava Shahrokhi, Alex Routledge, Roger Armson, Nikolaos Tsoulakos, and Jin Wang. 2025. "Numerical Analysis of Water-Injection Drag Reduction on a Flat Plate" Journal of Marine Science and Engineering 13, no. 12: 2271. https://doi.org/10.3390/jmse13122271
APA StyleHitchmough, D., Muhamad Pauzi, A., Blanco-Davis, E., Spiteri, A., Shahrokhi, A., Routledge, A., Armson, R., Tsoulakos, N., & Wang, J. (2025). Numerical Analysis of Water-Injection Drag Reduction on a Flat Plate. Journal of Marine Science and Engineering, 13(12), 2271. https://doi.org/10.3390/jmse13122271

