Skip to main content

Research Repository

Advanced Search

High-resolution direct numerical simulations of flow structure and aerodynamic performance of wind turbine airfoil at wide range of Reynolds numbers

Nakhchi, M. E.; Win Naung, S.; Rahmati, M.

High-resolution direct numerical simulations of flow structure and aerodynamic performance of wind turbine airfoil at wide range of Reynolds numbers Thumbnail


Authors

M. E. Nakhchi

M. Rahmati



Abstract

The objective of this study is to develop direct numerical simulations (DNS) to investigate the aerodynamic performance, transition to turbulence, and to capture the laminar separation bubble occurring on a wind turbine blade. Simulations are conducted with spectral/hp element method to investigate the details of flow separation bubble over wind turbine blades with NACA-4412 airfoil at wide range of design parameters. This airfoil is chosen because recent studies have shown that it is challenging to capture the details of the flow instabilities and pressure fluctuations in the separated shear layer of wind turbines by experimental methods. Furthermore, owing to more accurate development of DNS, the separated bubbles at high Reynolds numbers are captured. The results show that the vortex structures shed from the trailing edge of the airfoil by raising the angle of attack (α). Consequently, the fully turbulent flow develops downstream of the trailing edge (Karman vortex). Moreover, the pressure fluctuation significantly increased by raising α. However, some rolling up of the flow structures, similar to Kelvin–Helmholtz rolls, on the pressure surface near the trailing edge, are observed at α>12°. The separation point was delayed from Xsep/C = 0.19 to 0.58 by decreasing α from 16 to 0 at Re = 5 × 104.

Citation

Nakhchi, M. E., Win Naung, S., & Rahmati, M. (2021). High-resolution direct numerical simulations of flow structure and aerodynamic performance of wind turbine airfoil at wide range of Reynolds numbers. Energy, 225, Article 120261. https://doi.org/10.1016/j.energy.2021.120261

Journal Article Type Article
Acceptance Date Feb 26, 2021
Online Publication Date Mar 4, 2021
Publication Date Jun 15, 2021
Deposit Date Oct 18, 2023
Publicly Available Date Oct 19, 2023
Journal Energy
Print ISSN 0360-5442
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 225
Article Number 120261
DOI https://doi.org/10.1016/j.energy.2021.120261
Public URL https://uwe-repository.worktribe.com/output/11184410

Files







You might also like



Downloadable Citations