Spatiotemporal Evolution of Wind Turbine Wake Characteristics at Different Inflow Velocities

Author:

Xu Qian1,Yang Hui1,Qian Yuehong23,Wei Yikun1ORCID

Affiliation:

1. Key Laboratory of Fluid Transmission Technology of Zhejiang Province, Zhejiang Sci-Tech University, Hangzhou 310018, China

2. School of Mathematcial Sciences, Soochow University, Suzhou 215006, China

3. College of Mathematics and Computer Science, Zhejiang Normal University, Jinhua 321004, China

Abstract

In this paper, the spatiotemporal evolution of wind turbine (WT) wake characteristics is studied based on lattice Boltzmann method-large eddy simulations (LBM-LES) and grid adaptive encryption at different incoming flow velocities. It is clearly captured that secondary flow occurs in the vortex ring under shear force in the incoming flow direction, the S-wave and the Kelvin–Helmholtz instability occur in the major vortex ring mainly due to the unstable vortex ring interface with small disturbance of shear velocity along the direction of flow velocity. The S-wave and Kelvin–Helmholtz instability are increasingly enhanced in the main vortex ring, and three-dimensional disturbances are inevitable along the mainstream direction when it evolves along the flow direction. With increasing incoming flow, the S-wave and Kelvin–Helmholtz instability are gradually enhanced due to the increasing shear force in the flow direction. This is related to the nonlinear growth mechanism of the disturbance. The analysis of the velocity signal, as well as the pressure signal with a fast Fourier transform, indicates that the interaction between the vortices effectively accelerates the turbulence generation. In the near-field region of the wake, the dissipation mainly occurs at the vortex at the blade tip, and the velocity distribution appears asymmetric around the turbine centerline under shear and the mixing of fluids with different velocities in the wake zone also leads to asymmetric distributions.

Funder

National Natural Science Foundation of China

Natural Science Foundation Key Projects of Zhejiang Province

Zhejiang Province Science and Technology Innovation Team Project

Natural Science Foundation of Zhejiang Province

Publisher

MDPI AG

Reference30 articles.

1. Investigation of wake characteristics of the MEXICO wind turbine using lattice Boltzmann method;Li;Wind. Energy,2021

2. Measurements on a wind turbine wake: 3D effects and bluff body vortex shedding;Medici;Wind. Energy,2010

3. Similarity of wake meandering for different wind turbine designs for different scales;Foti;J. Fluid Mech.,2018

4. Instability of helical tip vortices in rotor wakes;J. Fluid Mech.,2011

5. Comparison of the development of a wind turbine wake under different inflow conditions;Neunaber;Prog. Turbul. VII,2017

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