Numerical simulation of wind turbine blade-tower interaction
Qiang Wang , Hu Zhou , Decheng Wan
Journal of Marine Science and Application ›› 2012, Vol. 11 ›› Issue (3) : 321 -327.
Numerical simulation of wind turbine blade-tower interaction
Numerical simulations of wind turbine blade-tower interaction by using the open source OpenFOAM tools coupled with arbitrary mesh interface (AMI) method were presented. The governing equations were the unsteady Reynolds-averaged Navier-Stokes (RANS) which were solved by the pimpleDyMFoam solver, and the AMI method was employed to handle mesh movements. The National Renewable Energy Laboratory (NREL) phase VI wind turbine in upwind configuration was selected for numerical tests with different incoming wind speeds (5, 10, 15, and 25 m/s) at a fixed blade pitch and constant rotational speed. Detailed numerical results of vortex structure, time histories of thrust, and pressure distribution on the blade and tower were presented. The findings show that the wind turbine tower has little effect on the whole aerodynamic performance of an upwind wind turbine, while the rotating rotor will induce an obvious cyclic drop in the front pressure of the tower. Also, strong interaction of blade tip vortices with separation from the tower was observed.
NREL phase VI / wind turbine / pimpleDyMFoam / arbitrary mesh interface (AMI) / blade-tower interaction
| [1] |
|
| [2] |
Beaudoin M, Jasak H (2008). Development of a generalized grid interface for turbomachinery simulations with OpenFOAM. Open Source CFD International Conference, Berlin, Germany, 4–5. |
| [3] |
|
| [4] |
Cao HJ, Cha JJ, Wan DC (2011). Numerical simulation of wave run-up around a vertical cylinder. Proceedings of the 21st International Offshore and Polar Engineering Conference, Maui, Hawaii, USA, 726. |
| [5] |
|
| [6] |
Duque EPN, Van Dam C, Hughes S (1999). Navier-Stokes simulations of the NREL combined experiment phase II rotor. Proceedings of the 18th ASME Wind Energy Symposium, Reno, AIAA-99-0037. |
| [7] |
EWEA (2010). Wind energy factsheets. European Wind Energy Association. |
| [8] |
EWEA (2011). Wind in our sails. European Wind Energy Association. |
| [9] |
|
| [10] |
Hand MM, Simms DA, Fingersh LJ, Jager DW, Cotrell JR, Schreck S, Larwood SM (2001). Unsteady aerodynamics experiment phase VI: Wind tunnel test configurations and available data campaigns. National Renewable Energy Laboratory, Lakewood. Technical report, NREL/TP-500-29955. |
| [11] |
Hunt J, Wray A, Moin P (1988). Eddies, streams, and convergence zones in turbulent flows. Center for Turbulence Research Report, CTR-S88, 193-208. |
| [12] |
|
| [13] |
Jasak H, Jemcov A, Tukovic Z (2007). Openfoam: A C++ library for complex physics simulations. International Workshop on Coupled Methods in Numerical Dynamics, Dubrovnik, Croatia, 1–20. |
| [14] |
|
| [15] |
|
| [16] |
|
| [17] |
|
| [18] |
Potsdam MA, Mavriplis DJ (2009). Unstructured mesh CFD aerodynamic analysis of the NREL Phase VI rotor. 47th AIAA Aerospace Sciences Meeting, Orlando, Florida. |
| [19] |
Shen ZR, Wan DC (2012). RANS computations of added resistance and motions of ship inhead waves. Proceedings of the Twenty-second International Offshore and Pollarding Conference (ISOPE), Rhodes, Greece, 1096–1103. |
| [20] |
|
| [21] |
|
| [22] |
Zhou H, Wang Q, Wan DC (2012). Numerical simulations of the 3D viscous flows around wind turbine blade. Proceedings of 21st National Conference of Hydrodynamics. (in Chinese, in press). |
/
| 〈 |
|
〉 |