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Numerical analysis of wind turbines blade in deep dynamic stall

Version 2 2024-03-12, 20:30
Version 1 2023-12-20, 12:08
journal contribution
posted on 2024-03-12, 20:30 authored by Hamid Reza Karbasian, Javad Abolfazli Esfahani, Aliyu AliyuAliyu Aliyu, Kyung Chun Kim

This study numerically investigates kinematics of dynamic stall, which is a crucial matter in wind turbines. Distinct movements of the blade with the same angle of attack (AOA) profile may provoke the flow field due to their kinematic characteristics. This induction can significantly change aerodynamic loads and dynamic stall process in wind turbines. The simulation involves a 3D NACA 0012 airfoil with two distinct pure-heaving and pure-pitching motions. The flow field over this 3D airfoil was simulated using Delayed Detached Eddy Simulations (DDES). The airfoil begins to oscillate at a Reynolds number of Re?=?1.35?×?105. The given attack angle profile remains unchanged for all cases. It is shown that the flow structures differ notably between pure-heaving and pure-pitching motions, such that the pure-pitching motions induce higher drag force on the airfoil than the pure-heaving motion. Remarkably, heaving motion causes excessive turbulence in the boundary layer, and then the coherent structures seem to be more stable. Hence, pure-heaving motion contains more energetic core vortices, yielding higher lift at post-stall. In contrast to conventional studies on the dynamic stall of wind turbines, current results show that airfoils’ kinematics significantly affect the load predictions during the dynamic stall phenomenon.

History

School affiliated with

  • School of Engineering (Research Outputs)

Publication Title

Renewable Energy

Volume

197

Pages/Article Number

1094-1105

Publisher

Elsevier

ISSN

0960-1481

eISSN

1879-0682

Date Submitted

2022-10-26

Date Accepted

2022-07-21

Date of First Publication

2022-08-11

Date of Final Publication

2022-09-01

Date Document First Uploaded

2022-08-11

ePrints ID

50417

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    University of Lincoln (Research Outputs)

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