Title of article :
Kelvin Waves Structure Analysis of a Horizontal Axis Wind Turbine Tip Vortices
Author/Authors :
Oueslati, M. M Laboratory of Wind Energy Management and Waste Energy Recovery - Research and Technologies Center of Energy - Tunisia , Dahmouni, A. W Laboratory of Wind Energy Management and Waste Energy Recovery - Research and Technologies Center of Energy - Tunisia , Ben Nasrallah, S National Engineering School of Monastir - Tunisia
Abstract :
The optimization of the wind energy conversion is one of the most important domains which was widely
interested researchers. The instabilities in the wind turbine wake are one of the sources of energy loss which
strongly influenced the helical tube vortex structure and are generally difficult to be quantified using
experimental facilities. This paper presents a numerical investigation on the wake downstream of a horizontal
axis wind turbine (HAWT) model using the Fluent software. Results were validated using experimental
measurements conducted in the CRTEn wind tunnel. The Kelvin wave’s theory was, also, used to analyze the
deformations acting on the tip vortices. The cartography of the velocity gradient tensor components of the
first tip vortex and the different families of Kelvin wave’s were studied and classified according to the
azimuth wavenumber. The obtained results confirm that the tip vortices meandering correspond to the helical
mode of Kelvin wave’s and the stretching-compression phenomenon is the most important deformation acting
on the tip vortex tubes during the development of HAWT wake.
Keywords :
Horizontal axis wind turbine , Three-dimensional wake , Kelvin waves , velocity gradient tensor , Flow separation , Stretching-compression