Experimental Study of Flow Field of an Aerofoil Shaped Diffuser with a Porous Screen Simulating the Rotor

Experimental Study of Flow Field of an Aerofoil Shaped Diffuser with a Porous Screen Simulating the Rotor

J. Tang F. Avallone G.J.W. Van Bussel

Wind Energy Research Group, Faculty of Aerospace Engineering, Delft University of Technology, The Netherlands

Page: 
502-512
|
DOI: 
https://doi.org/10.2495/CMEM-V4-N4-502-512
Received: 
N/A
| |
Accepted: 
N/A
| | Citation

OPEN ACCESS

Abstract: 

This study presents an experimental investigation on a diffuser augmented wind turbine (DAWT). A screen mesh is used to simulate the energy extraction mechanisms of a wind turbine in experiment. Different screen porosities corresponding to different turbine loading coefficients are tested. Measurements of the axial force and of the velocity distribution in radial direction are reported. The general purpose is to highlight the dependency between the diffuser and the screen, and to compare the radial velocity distributions in the diffuser between unloaded and loaded conditions. It is shown that the thrust on an unshrouded screen is lower than on a shrouded screen, under the same inflow condition. Moreover, the thrust on the diffuser largely depends on the screen loading. For the present configuration, the thrust on the screen with high loading coefficient contributes for more than 70% of the total thrust on the DAWT. Smoke visualizations and radial velocity profiles reveal that the high loading screen induces flow separation on the outer surface of the diffuser, justifying the results of the thrust measurements. It is also inferred that the flow separation leads to loss of thrust and has a great effect on the total pressure drag. It should be emphasized that the experimental results indicate that the flow field around the diffuser is strongly affected by the choice of screen porosity, that is, turbine loading. And that, the thrust coefficient of the diffuser does not show a linear dependence on the thrust coefficient of the screen. The axial momentum theory, therefore, is not a solid predictor for DAWT performance with high loaded screens.

Keywords: 

actuator disc, axial momentum theory, diffuser, ducted wind turbine

  References

[1] de Vries, O., Fluid Dynamic Aspects of Wind Energy Conversion, 1979.

[2] Gilbert, B.L. & Foreman, K.M., Experiments with a diffuser-augmented model wind turbine. Journal of Energy Resource Technology, 105(1), pp. 46–53, 1983. http://dx.doi.org/10.1115/1.3230875

[3] Foreman, K., Preliminary design and economic investigations of Diffuser Augmented Wind Turbines (DAWT). Final Report, 15 May 1979-31 Mar. 1980, 1981. http://dx.doi.org/10.1016/0038-092X(78)90122-6

[4] Foreman, K.M., Gilbert, B. & Oman, R.A., Diffuser augmentation of wind turbines. Solar Energy, 20, pp. 305–311, 1978.

[5] Foreman, K.M. & Gilbert, B.L., Further investigations of diffuser augmented wind turbines part II, 1979.

[6] Igra, O., Design and performance of a turbine suitable for an aerogenerator. Energy Convers, 15(3–4), pp. 143–151, 1976. http://dx.doi.org/10.1016/0013-7480(76)90026-7

[7] Igra, O., The shrouded aerogenerator. Energy, 2(4), pp. 429–439, 1977. http://dx.doi.org/10.1016/0360-5442(77)90006-8

[8] Igra, O., Research and development for shrouded wind turbines. Energy Conversion Management, 21(1), pp. 13–48, 1981. http://dx.doi.org/10.1016/0196-8904(81)90005-4

[9] Fletcher, C.A.J., Computational analysis of diffuser-augmented wind turbines. Energy Conversion and Management, 21(3), pp. 175–183, 1981. http://dx.doi.org/10.1016/0196-8904(81)90012-1

[10] Bontempo, R. & Manna, M., Effects of the duct thrust on the performance of ducted wind turbines. Energy, 99, pp. 274–287, 2016. http://dx.doi.org/10.1016/j.energy.2016.01.025

[11] Werle, J., Shroud and ejector augmenters for subsonic propulsion & power systems. Journal of Propulsion and Power, 25(1), pp. 228–236, 2009. http://dx.doi.org/10.2514/1.36042

[12] Hansen, M.O.L., Sørensen, N.N. & Flay, R.G.J., Effect of placing a diffuser around a wind turbine. Wind Energy, 3(4), pp. 207–213, 2000. http://dx.doi.org/10.1002/we.37

[13] Van Bussel, G.J.W., The science of making more torque from wind: Diffuser experiments and theory revisited. Journal of Physics: Conference Series, 75, p. 012010, 2007. http://dx.doi.org/10.1088/1742-6596/75/1/012010

[14] Werle, M.J. & Presz, W.M., Ducted wind/water turbines and propellers revisited. Journal of Propulsion and Power, 24(5), pp. 1146–1150, 2008. http://dx.doi.org/10.2514/1.37134

[15] Lignarolo, L.E.M., Ragni, D., Krishnaswami, C., Chen, Q., Simão Ferreira, C.J. & van Bussel, G.J.W., Experimental analysis of the wake of a horizontal-axis wind-turbine model. Renewable Energy, 70, pp. 31–46, 2014. http://dx.doi.org/10.1016/j.renene.2014.01.020

[16] Dighe, V.V., Avallone, F. & van Bussel, G.J.W., Computational study of diffuser augmented wind turbine using actuator disc force method. In AFM2016 11th International Conference on Advances in Fluid Mechanics, p. 12, 2016.

[17] Igra, O., Compact shrouds for wind turbines. Energy Conversion, 16(4), pp. 149–157, 1977. http://dx.doi.org/10.1016/0013-7480(77)90022-5