Development of a Numerical Investigation Framework for Ground Vehicle Platooning
Abstract
:1. Introduction
2. Governing Equations
2.1. Reynolds Averaged Navier-Stokes (RANS) Approach
SST (SST) Model
2.2. Detached Eddy Simulation (DES)
3. Computational Setup and Boundary Conditions
4. Results and Discussion
5. Conclusions
- The wake of the fully detailed models extends much father down stream than the simplified geometries such as the Ahmed body. This causes the effects lead vehicles wake to be felt by the trailing vehicle even past 4L, unlike in the Ahmed body studies.
- Unlike simplified geometries, the DrivAer trailing vehicle saw a reduction in drag at the closest separations instead of an increase. This is believed to be because the vortices of the leading vehicle were impinged upon by the front area of the trailing vehicle, decreasing the pressure on the front of the vehicle, reducing the drag.
- The pressure on the front of the trailing vehicle was seen to decrease significantly throughout all separations tested. This implies that for vehicles with downforce producing devices, such as splitters, a significant decreasing in front downforce may be experienced which following in the wake of another vehicle. In addition to a loss in downforce a reduction in cooling efficiency may also be seen due to the reduction in pressure on the front of the radiator.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
AMG | Algebraic Multi-grid |
CAD | Computer Aided Design |
Drag Coefficient = | |
CFD | Computational Fluid Dynamics |
CFL | Courant–Friedrichs–Lewy |
DDES | Delayed Detached Eddy Simulation |
DES | Detached Eddy Simulation |
DNS | Direct Numerical Simulation |
EU | European Union |
GIS | Grid Induced Separation |
HVP | Heavy Vehicle Platoons |
IDDES | Improve Delayed Detached Eddy Simulation |
LD | Linear dichroism |
RANS | Reynolds Average Navier-Stokes |
RKE | Realizeable |
SST | Shear-stress Transport |
TKE | Turbulence Kinetic Energy |
TPLT | Total Prism Layer Thickness |
TUM | Technische Universitat Munchen |
URANS | Unsteady RANS |
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Cube | DrivAer | |
---|---|---|
Reynolds Number | 22.5 × | 4870 × |
URANS | 1 × | NA |
IDDES | 0.25 × | 0.15 × |
Surface | (in mm) | No. of Layers | TPLT (in mm) |
---|---|---|---|
Cube-Surface and Ground | 0.0165 | 7 | 2 |
DrivAer-Body surfaces | 0.0125 | 9 | 6 |
DrivAer-Underbody | 0.0250 | 8 | 6 |
DrivAer-Wheels and Exhaust system | 0.0205 | 7 | 3 |
DrivAer-Ground | 0.1000 | 7 | 12 |
Case | 1 | 2 | 3 | 4 | 5 |
---|---|---|---|---|---|
0.07 | 0.09 | 0.1125 | – | – | |
(cube lengths) | 4.95 | 5.30 | 6.00 | – | – |
0.4 | 0.5 | 0.55 | 0.65 | 1.10 | |
(cube lengths) | 5.4 | 5.3 | 5.3 | 5.10 | 4.60 |
0.8 | 0.856 | 1.05 | 1.10 | 1.70 | |
(cube lengths) | 5.5 | 5.3 | 4.6 | 4.50 | 4.20 |
DNS [43] | Current CFD | Percent Difference (%) | |
---|---|---|---|
1.317 | 1.221 | +7.29 | |
0.533 | 0.563 | −5.63 |
Current | Expt. Heft | Percent Difference (%) | |
---|---|---|---|
0.268 | 0.275 | −2.54 |
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Bounds, C.P.; Rajasekar, S.; Uddin, M. Development of a Numerical Investigation Framework for Ground Vehicle Platooning. Fluids 2021, 6, 404. https://doi.org/10.3390/fluids6110404
Bounds CP, Rajasekar S, Uddin M. Development of a Numerical Investigation Framework for Ground Vehicle Platooning. Fluids. 2021; 6(11):404. https://doi.org/10.3390/fluids6110404
Chicago/Turabian StyleBounds, Charles Patrick, Sudhan Rajasekar, and Mesbah Uddin. 2021. "Development of a Numerical Investigation Framework for Ground Vehicle Platooning" Fluids 6, no. 11: 404. https://doi.org/10.3390/fluids6110404
APA StyleBounds, C. P., Rajasekar, S., & Uddin, M. (2021). Development of a Numerical Investigation Framework for Ground Vehicle Platooning. Fluids, 6(11), 404. https://doi.org/10.3390/fluids6110404